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Zinc Oxide Nanoparticle as a Novel Class of Antifungal Agents: Current Advances and Future Perspectives Qi Sun, Jianmei Li, and Tao Le J. Agric. Food Chem., Just Accepted Manuscript • DOI: 10.1021/acs.jafc.8b03210 • Publication Date (Web): 09 Oct 2018 Downloaded from http://pubs.acs.org on October 10, 2018
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Journal of Agricultural and Food Chemistry
Title Zinc Oxide Nanoparticle as a Novel Class of Antifungal Agents: Current Advances and Future Perspectives
Author names and affiliations Qi Sun1, *, Jianmei Li1, Tao Le1, ** 1
College of Life Sciences, Chongqing Normal University, No.37 Chengzhong Road,
Chongqing, 401331, People’s Republic of China
CORRESPONDENCE College of Life Sciences, Chongqing Normal University, No. 37 Chengzhong Road, Chongqing, 401331, People’s Republic of China Tel.: +86 23 65910315; fax: +86 23 67301531 E-mail:
[email protected] (Dr. Qi Sun);
[email protected] (Dr. Tao Le)
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ABSTRACT 1
Certain types of nanoparticles, especially nanoscale zinc oxide (ZnONP), are widely
2
reported to be capable of the inhibition of harmful bacteria, yeasts and filamentous
3
fungi. The unique physicochemical and biological properties of ZnONP also make
4
them attractive to the food industry for use as a promising antifungal agent. This
5
review thoroughly introduced the preparation methods and antifungal properties of
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ZnONP, and analyzed its possible antifungal mechanisms. The applicability of
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ZnONP in food packaging, nutritional supplements and as an antimicrobial additive
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are also documented. Moreover, evaluations for biological safety of ZnONP are
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objectively reviewed in this paper. The discussions addressed in this paper not only
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have theoretical significance, but also are conducive to the development of food
11
safety, nutrition, and human health. The summarized knowledge and future
12
perspectives outlined here are expected to promote and guide the new research
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developing and optimizing the application of ZnONP as a novel class of antifungal
14
agents to help improve food quality as well as food safety in the near future.
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Keywords: Zinc oxide nanoparticle; Physicochemical properties; Antifungal activity;
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Mechanism of action; Application; Risk assessment
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INTRODUCTION
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Emerging fungal infections and fungal contamination have been at the forefront of
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worldwide safety affairs in the last few years. Taking the food industry as a notable
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example, fungal contamination cannot only cause the deterioration of product quality,
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economic loss, but also severely threaten food safety and public health. In the
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meantime, improper use of antibiotics nowadays has further aggravated this issue and
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resulting in a noteworthy rise in the prevalence of drug-resistant fungi. For this reason
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scientists around the world are endeavoring to develop various measures to prevent
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and control fungal contamination, including applications of plant essential oils,1-4
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antimicrobial peptides5-7 and even predatory microorganisms.8,
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methods have been confirmed to have better antifungal performances in the laboratory,
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while exposing some shortcomings like high cost, poor stability, interference with
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food components, and unpredictability in human health risks. On the other hand,
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research on nanotechnology has grown substantially for the last few years. Many
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studies have been devoted to the preparation of new forms for nanoscale particle (NP)
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with anticipated utilizations in all fields of food science, from food processing to
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preservation and nutrient supplementations.10, 11 Nanoparticles are also regarded as the
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most promising substitute for traditional antibiotics in the control of pathogenic
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microbes.12, 13
9
Most of these
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As depicted in Figure 1, a nanoparticle (or nanopowder or nanocluster or
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nanocrystal) is a microscopic particle with at least one dimension less than 100 nm.
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They pose physical and chemical characteristics that differ considerably compared to
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those of macroscale particles.14, 15 In fact, it is not difficult to find published articles
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on NP with good antimicrobial activity, including silver nanoparticle (AgNP),16-18
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nanocarbons such as single-walled carbon nanotube (SWCNT), multiwalled carbon
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nanotube (MWCNT), and graphene materials (GMs).19-22 Among these nanosized
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antimicrobial agents, various AgNP-containing compounds are now commonly used
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in several healthcare products or clinical medicines.23,
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include high price, easy agglomeration in tissue and biological side effects which may
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impede the use of AgNP-based antifungal substances in food field. On the other hand,
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carbon nanomaterials, especially graphene-based NPs, are rapidly emerging as a novel
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class of antimicrobial agents due to their unique physicochemical properties.20 Yet,
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these nanocarbons, like carbon nanotubes, graphene, graphene oxide (GO) and
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reduced GO (rGO), are in their infancy as nano-additives in comparison to AgNP, so
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there are still a lot of uncertainty about their future applications. Economic and facile
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preparation of such nanoscale carbon materials is also a barrier that will need to be
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overcome to ensure the development of antifungal nanoagents. Indeed, compared to
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their conventional bulk counterparts, NPs possess completely different or enhanced
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characteristics such as decreased size, enhanced specific surface area, and thus
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strengthened reactivity. These features make NPs more pronounced and auspicious
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for diverse industrial uses including food field but meanwhile make them a potential
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threat to human health.25 While public awareness about the applications of general
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nanotechnology have ranged from neutral to slightly positive,11, 26 the screening and
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Disadvantages to AgNP
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development of novel antifungal agents based on NPs with high efficiency, economy,
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and innocuity should be considered in future research.
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Figure 1. Various types of nanoscale materials
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Considering this background, nano-sized zinc oxide particles (ZnONP) are
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currently considered to be the most promising antibiotic nanoscale agent due to their
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unique properties. ZnO has been registered as “Generally Recognized as Safe” by the
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Food and Drug Administration of the United States (21CFR182.8991);27 nanosized
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ZnO may have better biocompatibility than other NPs.28,
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scientific evidence suggests that the use of ZnONP has no or negligible potential
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threat to public health.30, 31 These particles are widely used in sunscreens, toothpastes,
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anti-dandruff shampoos, anti-fouling paints and other modern personal products due
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to their unique physicochemical properties.32, 33 Moreover, ZnONP is valued for its
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putative anticancer activity and for potential in drug delivery.34 Therefore, the global
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production of ZnONP ranks third among diverse metal-containing NPs only after
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silica and titanium dioxides.35 Distinct ZnO-based nanostructures can be obtained
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Importantly, current
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through various approaches which effectively solve cost issues.36-39 Additionally,
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although the exact mechanisms of action are not yet entirely understood, ZnONP may
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exhibit excellent antiseptic performance compared to other antimicrobial agents due
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to its multimodal manner. For these reasons, scientists and entrepreneurs have already
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identified potential activities and utilizations of ZnONP in many aspects of diverse
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fields.
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Figure 2. Schematic diagram of the scope of the current review
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Despite explosive growth in this area of research, the development of antifungal
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nano-additives for food-related systems is currently very limited. This article aims to
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bridge this information gap by contributing an extensive discussion of the current
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advances about the antifungal activity of ZnONP covering its characteristics and
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preparation methods (see the schematic demonstration in Figure 2). In the subsequent
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sections, we cover topics on ZnONP including antifungal performance, factors related
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with antifungal efficiency, and the major mode of antifungal action. A special focus
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has been given to the antifungal mechanism of ZnONP at the molecular level. We
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further elaborate on the potential applications of ZnONP as a promising antifungal
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additive in different food fields. Concerns about human health with ZnONP are also
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critically discussed based on existing information. Finally, this report concludes with
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a further perspective that ZnONP has developed as a promising nanoscale antifungal
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agent. Hopefully, this article may act as a useful reference for researchers actively
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involved in the fabrication and development of nanomaterial-based antifungal agents.
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BASIC CHARACTERISTICS AND PREPARATION STRATEGIES FOR
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ZINC OXIDE NANOPARTICLE
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In order to understand the antifungal performance of ZnONP, the physico-chemical
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activities of these nanoscale materials should be fully evaluated by some certain
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testing. In fact, ZnONP has received extensive attention owing to their noteworthy
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properties in a variety of fields, including biotechnology, in recent years. ZnONP is a
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known II–VI semiconductor which has a direct wide band-gap (~3.37 eV), high
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excitonic binding energy (60 meV) and various other advantages as shown in Figure 3
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including high transparency, a polar surface, natural abundance and excellent
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photocatalysis.40-43 There are mainly three crystal structures of ZnONP in which
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wurtzite zinc oxide is the most common because of its highest thermodynamic
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stability.44 As an important technological material, ZnONP can be prepared with a
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growing number of synthetic routes. Such preparation strategies can be divided into
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physical methods (e.g. thermal evaporation, ultrasonic irradiation and vapor
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deposition),45, 46 chemical methods (hydrothermal, sol-gel and precipitation)
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biological methods (from plant extracts, microbes and other biomolecules).36, 50, 51
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Recently, great progress has been made in the synthesis of nanostructed ZnO particles
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but each of these reported approaches have their own drawbacks. It is thus extremely
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important to develop other strategies with high efficiency, low cost and
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eco-friendliness to prepare ZnONP at the industrial scale.
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and
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Figure 3. Properties of nanostructed zinc oxide particle (ZnONP). Flower-like
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ZnONP as shown in inset is fabricated via a facile one-pot precipitation strategy in
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our laboratory.
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INHIBITORY PERFORMANCE OF ZINC OXIDE NANOPARTICLE ON
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THE GROWTH AND METABOLISM OF FUNGI
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The versatility of ZnONP has allowed it be applied as an antimicrobial substance for
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the inhibition of microbial pathogen growth and metabolism. The antibacterial
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activity of ZnO and other metal-containing NPs have been previously reported in a
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vast number of articles. There is no doubt that the sensitivity pattern of fungi to metal
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oxide NPs is very different from that of bacteria due to their distinct biological
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structures. Therefore, the inhibitory effect of ZnONP and other nanosized materials
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on fungi has gradually been given more attention by researchers. Currently,
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prevention and control fungi contamination with nanotechnology is a focus of the
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following studies. A number of literatures have shown that various assays can be
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applied for antifungal testing with NPs in practice, such as agar or broth dilution, disk
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diffusion and the microtiter plate-based methods.52-54 ZnONP can also effectively
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inhibit various pathogenic fungi as listed in Table 1.
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Meanwhile, the synergistic antifungal activity of ZnONP was evaluated along with
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common antibiotics (e.g. ciprofloxacin, ampicillin, fluconazole and amphotericin B).
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Their inhibitory efficiency can be enhanced in combination with ZnONP, which could
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possibly reduce the overuse of antibiotics.70 Moreover, researchers have developed
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various NP-based nanocomposites via surface modification using polymers,
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biomolecules and carbon nanomaterials to reduce toxicity and enhance their
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antifungal activity. For example, Barad et al. have shown that ZnONP coated by
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chitosan-linoleic acid has significant efficacy compared with fluconazole in inhibitory
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action on the growth and biofilm formation of C.albicans.56 It is worth noting that
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many filamentous fungi can produce secondary metabolites known as mycotoxins,
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which can induce immunosuppression, as well as embryonic and even carcinogenic
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effects on human health.71, 72 Thus, the most important application value of ZnONP
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lies in blocking and inhibiting synthesis of mycotoxins.73 For instance, inhibitory
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performance of synthesized ZnONP on mycotoxin production was investigated by
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Hassan and his co-workers.61 They found that the existence of aflatoxigenic fungi and
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aflatoxin production were inhibited by the addition of 8 μg/mL of ZnONP, while the
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inhibitory results were also observed for ochratoxin A and fumonisin B1 when the
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concentration of ZnONP was increased to 10 μg/mL. These findings indicated that the
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involvement of ZnONP in the food matrix may not only effectively inhibit the growth
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of harmful fungi, but importantly decrease the content of mycotoxins produced by
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toxigenic fungi.
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FACTORS AFFECTING ANTIFUNGAL PERFORMANCE
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INFLUENCE OF INTERNAL (NANOPARTICLE) FACTORS
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The physicochemical characteristics of ZnONP play a major role in its antifungal
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efficiency. Various inherent characteristics including particle size, concentration,
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morphology, superstructure as well as surface activity have also been shown to affect
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the application of ZnONP as a nano-additive in food-related products. For both
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fundamental reasons and future applications, internal factors affecting nanoparticle
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antimicrobial performance have been documented in many studies. For example,
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Deepali et al. have found that the inhibitory action of ZnONP on the fungus
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(Fusarium sp.) was concentration-dependent, and this dependency was also affected
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by particle size.63 In a subsequent study, Padmavathy et al. reached to similar
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conclusions that antifungal efficiency of ZnONP commonly increases with a decrease
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of particle size and at enhanced concentrations.28 Moreover, they also reported that
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ZnONP with a smaller particle size could induce more hydrogen peroxide ascribing
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its higher specific surface area, which would further enhance its antifungal efficiency.
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Compared to the large amount of the literature about ZnO acting against bacteria,52,
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74-76
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antifungal activity appears to be more complex considering the bioactivity, crystalline
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structure, concentration of ZnONP and some specific external factors. For example,
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scholars have pointed out that the effect of particle solubility on the inhibition of some
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aquatic microorganisms is more critical than particle size.74 Recently, Hui et al.
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successfully prepared cerium-doped flower-shaped ZnONP through a facile
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microwave-mediated hydrothermal route, and illustrated a morphology-related
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antifungal effect of these crystallites.69 These flower-shaped ZnO crystallites had
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stronger antifungal performance against pathogenic fungi (e.g. C.albicans and A.
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flavus) than pure ZnO crystals. This finding makes clear evident that the crystalline
we speculate that correspondence between nanoparticle size and the respective
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morphology and structure can also affect nanoparticle antifungal activity. The desired
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synthesized ZnONP structures for best antifungal activity could be made by
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regulating the synthesis parameters, such as surface stabilizing agents, solvents,
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precursor types, temperature as well as preparation ways.77, 78 Actually, Prasun et al.
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have revealed that the microwave-assisted green synthesis could prepare ZnONP with
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higher antifungal efficiency in contrast to those obtained by conventional chemical
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methods.60 The shape-dependent antifungal activity of NPs has also been examined in
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a few studies, and the correlation between both should be illustrated in terms of the
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presence of different active facets in metal oxides.79 In this regard, polar facets of
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nanostructed ZnO seem to be able to improve particle antifungal activity. The higher
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level of polar surfaces has more oxygen vacancies, which consequently can generate a
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higher amount of reactive oxygen species (ROS).80,
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biological activities attributing to their highly reactivity and oxidizing properties. In
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addition, the inhibitory role of ZnONP on the tested microorganism may be closely
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associated with particle surface defects and orientations.28 It has been proposed that
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the orientation of nanosized ZnO possesses higher antimicrobial efficiency due to its
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various randomly oriented spatial configurations compared to those of regularly
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arranged structures.79, 82, 83 However, in another comparative study, Tam et al. came to
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conclusion diametrically opposed to the above results.84 While no consensus has been
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reached yet, these results provide an encouraging insight on the role of affecting
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factors in nanoparticle antifungal activity.
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INFLUENCE OF EXTERNAL FACTORS
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ROS are proven to affect
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Metal oxides, particularly for ZnONP, are well-known to exhibit high photocatalytic
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efficiencies. The application of ZnO photocatalysts on decomposing organic
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pollutants in contaminated environment has been demonstrated in many studies.85, 86
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Theoretically, the illumination factor for ZnONP should be closely related to the
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performance of ZnONP against harmful fungi considering its photocatalytic property.
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As illustrated in Figure 4, photo-excitation with energy greater than 3.37 eV could
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induce the desorption of the oxygen molecules from the active surface of ZnONP, and
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consequently a series of ROS including hydrogen peroxide (H2O2), superoxide ions
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(O2•−) and hydroxyl radicals (OH·) were formed on the surface of ZnO nanocrystal.87,
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88
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the targeted microbes. Not only that, researchers have also begun to investigate the
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antimicrobial activity of these nanoparticles even under dark conditions.89 Till now,
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however, relatively limited amounts of data are available on nanoparticle
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antimicrobial activity in the absence of irradiation and the data on ZnONP were
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especially scarce. On the other hand, functionalization and surface treatment of these
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nanoparticles may be critical issues for high-added value applications involving
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antifungal nano-additives.90,
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should be functionalized so as to improve the stability, biocompatibility, functionality,
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sensitivity, and selectivity for various biospecies.92 Functionalization of ZnONP
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surface through direct molecule attachment or by functional groups grafted on the
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surface is considered a promising strategy for improving the overall antifungal
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activity of these nanoparticles for targeted microbes. The process of nanoparticles
The photo-induced oxidation process can cause further damage and inactivation of
91
To use these NPs in bio-applications, their surface
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functionalization by different methods (e.g. surface encapsulation, in situ synthesis,
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plasma
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characteristics has been described in many reports over the years.93-96 Recent studies
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demonstrated that ZnONP incorporated with essential oils,97, 98 polysaccharide,99, 100
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and protein-based biopolymers
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against foodborne pathogens. Therefore, the synergistic antifungal effect of ZnONP
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can be obtained by incorporating or functionalizing with bioactive substances.
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Figure 4. Mechanism of the photo-induced existence of reactive oxygen species on
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the active surface of ZnONP.
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ANTIFUNGAL MECHANISMS OF ZINC OXIDE NANOPARTICLE
technology
or
self-assembly)
101-103
for
changing
their
physicochemical
can present significant antimicrobial potential
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Antimicrobial efficiency of ZnONP has been explored in numerous studies.
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Unfortunately, inequalities in terms of synthetic approaches to NPs, inhibitory modes,
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and experimental conditions have impeded clarification on antifungal mechanism of
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ZnONP. Until now, how fungal cells sense and respond to nanoparticles associated
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with cellular physiological alterations remains unresolved. According to the existing
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information and the above-mentioned discussion, nanosized ZnO can be characterized
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by two features: one is its excellent photocatalytic property among all inorganic
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photocatalysts, and the other is the presence of zinc ions (Zn2+) in medium. Therefore,
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the photon-induced generation of ROS and a poisoning effect due to Zn2+ release are
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the two main contributors to the antifungal activity of ZnONP.
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ROS-DEPENDENT ANTIFUNGAL ACTIVITY
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The antimicrobial mechanisms of ZnONP, according to investigations by Hirota et al.
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104
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hydrogen peroxide on the surface of ZnONP via oxygen defect sites. Oxidative stress
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generated by the production of ROS may be the major cause of NPs’ physiological
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effect, especially in the presence of illumination.106-108 In 2012, Yongsheng’s group
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reported that the photo-generated ROS kinetics were closely related to the type of
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metal oxides.109 Remarkably, they established quantitative correlations between the
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level of NPs-generated ROS and microbial survival rates. In a follow-up work,
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researchers found that the addition of nanoparticles could promote ROS production in
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a time- or dose-dependent way. 62 The application of the scavenger of ROS could
and Xu et al.,105 are generally dependent on the presence of oxygen radicals or
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conversely eliminate the antifungal performance of ZnONP. Meanwhile, a serious of
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biochemical analysis was performed by scholars in order to delineate the mechanism
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of ROS-determined inhibitory effect.60 Investigators suggested that the hyphal cell
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attempted to alleviate this ROS burden caused by ZnONP treatment through the
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enhancement of oxidative stress reactions, such as superoxide dismutase and
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ascorbate peroxidase activities. However, a higher concentration of ZnONP could
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lead to the rupture of hyphal cells and the oxidation of protein. Intensification of
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carbonyl concentration in NPs-treated fungus mediated by the production of ROS
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were clearly observed through dinitrophenylhydrazine binding assay and fourier
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transform infrared spectroscopy detection. Recently, the generation of intracellular
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ROS, induced by metal oxide nanoparticles (including ZnONP) against C. krusei, has
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been detected by Bhaskar’s group using a fluorescent dye dichlorodihydrofluorescein
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diacetate.66 They proposed that metal oxide nanoparticles could rupture the cell
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membrane thereby leading to momentous oxidative stress and yielding ROS which
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conclusively promotes DNA damage. Obviously, the appearance of ROS induced by
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ZnONP treatment should trigger other important physiological changes besides the
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above specified cellular responses. Noticeably, on the other hand, ZnONP-induced
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antifungal action should be explained by some other mechanisms. After all, oxidative
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stress driven by illumination may not be accomplished when the light source is absent
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for engineered nanoparticles.
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METAL-CONTAINING PARTICLE-MEDIATED ANTIFUNGAL EFFECT
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In previous studies, the antimicrobial action of engineered nanoparticles driven by
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oxidative stress was examined under dark conditions ascribing oxygen vacancies in
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ZnO nanocrystals.104, 105 However, there is little direct evidence for ZnONP-induced
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ROS production in biological tissues using microscopic observation and luminescent
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probes. Apparently, the mechanism for the antifungal activity of ZnONP in the
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absence of light is still somewhat unclear and remains under debate. Better
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understanding of the NP’s inhibitory performance in the dark is essential. The
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solubility of ZnO and other metallic compounds (e.g. silver and copper oxide) may be
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a pivotal parameter for physicochemical properties relevant to the antimicrobial
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efficiency of metal-containing NPs.30, 110 The most important common feature is that
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almost metal-containing NPs could be dissolved in aqueous solution to some extent.
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Hence, nanostructured ZnO are reckoned to be a limited source of zinc ions which is
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one possible reason for the fungitoxic effect of nanoparticles. 60, 109, 111, 112 Researchers
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have found that the anti-biological activity of ZnONP under dark condition was
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introduced by the toxicity of zinc ions released from metal oxide particles.74, 113 In this
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case, the property of the water-soluble and the existences of the intact particles, metal
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ions or metal complexes, became key issues for metal-containing particle-mediated
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antifungal effects. The fact that the solubility of inorganic nanoparticles depends
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largely on the testing environment and the surrounding substances has been addressed
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in a review by Casals et al.114 The most significant environmental factors influencing
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testing were water hardness, components of the complex test media and pH.115-117 For
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example, researchers have reported on the reduced solubility and toxicity of selected
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manufactured NPs toward crustaceans in natural waters.118, 119 Also, the interaction
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between NPs and the organic components in the medium, e.g. proteins, amino acids
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and some other natural organic substances, has been shown to remarkably change the
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dispersion of these metal-containing nanomaterials.30 Moreover, the solubility of the
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aforementioned nanoparticles including ZnONP is enhanced at a more acidic pH.120,
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121
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NPs when antifungal tests are performed. On the other hand, whether the
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concentration of released ions is sufficient to produce the corresponding antimicrobial
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effects is also questioned by researchers.52,
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discovered that though the concentration of released Zn2+ might not threat bacterial
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growth and activity, the attachment of nanoparticles to the bacterial cell wall could in
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turn promote the antimicrobial effect of ZnONP. 105 As a result, biotoxicity effect of
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zinc ions occurred because of the local dissolution of the attached ZnONP in
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cytoplasm via occupancy competition for influx metalloprotein channels between zinc
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and other metal ions. In the study by Eue-Soon et al., there was no in-depth
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explanation of how ZnONP attached to the cell wall dissolve or how metal ions are
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transported into the cytoplasm membrane.
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ANTIFUNGAL MOLECULAR MECHANISM
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According to the previous interpretations, the fungicidal mechanisms of ZnONP
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described as disrupting cellular structure (e.g. cell wall or membrane and organelles),
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prohibiting biological macromolecular activity (e.g. protein, enzyme), preventing
From the above discussion, it is apparently significant to evaluate the dispersion of
105, 122-124
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Recently, Eue-Soon et al.
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DNA replication, and disrupting the anti-oxidative system via a ROS and/or Zn2+
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mediated manner. However, research on the antifungal molecular mechanism of
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ZnONP has remained in its infancy. Until recently, scientists began to study the
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molecular mechanisms explaining NPs-induced inhibitory efficiency in filamentous
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fungi.67 They endorsed the previous conclusion that oxidative stress induced by ROS
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which is generated from NPs should be the dominant principle for the examined
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antifungal activity. 125, 126 They further suggested that ZnONP treatment could deplete
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glutathione (GSH) levels via the inhibition of GSH synthesizing enzymes, thereby
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weakening the antioxidant capacity in fungal cell. As a consequence, the alterations to
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redox state and further enhancement of ROS in hyphal cell significantly upregulated
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the transcript levels of ShSOD2 and Shgst1, which are mainly responsible for
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encoding superoxide dismutase and glutathione S-transferase. Researchers also
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identified the genes responsible for the stress response within filamentous fungi and
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the cell uptake of nanoparticles. For instance, a zinc transporter (Shzrt1) has been
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confirmed to be involved in cell uptake of fungitoxic nanoparticles as the over
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expression of Shzrt1 in yeast mutants could enhance the sensitivity of fungal cells to
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toxic metal oxides.67 Inspired by this finding, high throughput transcriptome
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sequencing of gene expression levels in mycelia cells treated with nanoparticles has
339
been conducted in our latest research (unpublished). After exposure to ZnONP,
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changes in gene expression to varying degrees were detected in A. flavus, including
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genes related to oxidative stress, zinc ion binding function, transmembrane transport
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and oxidative phosphorylation functions. Furthermore, the influence of ZnONP
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treatment on genes related to aflatoxin biosynthesis are also the focus of our
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laboratory. Identifying their intermolecular interaction network will be benefit to
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understand the mechanism of engineered nanoparticle antifungal activities in depth.
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ZINC OXIDE NANOPARTICLE AS AN ANTIFUNGAL ADDITIVE IN FOOD
347
People have already developed potential applications for nanotechnology in
348
practically every aspect of the food-related system; for example, as an agrichemical
349
deliver, new pesticides, nanoencapsulation of flavors or odor enhancers, anticaking,
350
UV-protection film, drinking water purification and nutritional supplements. Among
351
these applications, NPs are widely employed as an effective antimicrobial candidate
352
as part of the food matrix to prevent the growth of foodborne microbes thereby
353
improving the shelf life of products. Compared with other nanostructured particles,
354
ZnONP should exhibit more advantage due to their unique nano-properties, including
355
excellent bioavailability and self-sterilization.127 Most importantly, ZnO has been
356
reckoned as “Generally Recognized as Safe" (GRAS)” as a supplement that can
357
replenish essential zinc for human health. By analyzing the literature, the most active
358
area of development for ZnONP as a promising nano-additive is that of fabrication
359
and improvement in packaging. This may be due to the case that the public still
360
remain wary about “nanofoods” considering the uncertainty about the safety of
361
nanomaterials. Consumers are more willing to embrace nanomaterials in “out of food”
362
uses than those where NPs are directly applied to food.128, 129 As reported elsewhere,
363
one successful strategy to reinforce mechanical, barrier and structural activities of
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food packaging is to incorporate ZnONP into polysaccharides, lipid and protein-based
365
biopolymers.99,
366
substrate, such a novel nanomaterial could be used as the antimicrobial agent to make
367
food matrix free from microbial contamination. By avoiding food spoilage, nanoscale
368
ZnO in packaging could slow down the oxidation rate of food components and
369
maintain product quality, including color, flavor as well as nutritional value.132, 133
370
Some researchers think that the creation of active or smart sensor systems containing
371
ZnO and other NPs could be used to detect food-relevant analytes (e.g. small organic
372
molecules, vapor or gas content and food-borne pathogens), which would be
373
revolutionary for the food industry.134-137 As a supplement, compared with other
374
sources of zinc, nano-scaled ZnO is more conducive to human absorption and has a
375
certain degree of antioxidant activity. In theory, they can be used as a nutritional
376
supplement for the production of food or health care products. However, the
377
application of nanostructed zinc oxide in the field of food additives has rarely been
378
reported, which may be related to the potential toxicity of these nanoparticles.
379
Research on the toxicity and bio-safety of NPs has become a new focus in
380
nanotechnology.
381
RISK ASSESSMENT OF ZINC OXIDE NANOPARTICLE ON HUMAN
382
HEALTH
383
Although ZnONP is a promising substitute for traditional antifungal agents in the food
384
industry, questions have been raised concerning the potential risks of human health
100, 130, 131
Once these molecules are emerged in the polymeric
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upon exposure to nano-sized materials, including ZnONP. In general, topically
386
engineered nanoparticles may pose systemic health threats via inhalation, skin
387
absorption, ingestion, and injection ways. Recent in vitro or in vivo studies have
388
shown the possible danger of ZnONP range from genotoxicity to reproductive toxicity,
389
as well as immunotoxicity and side effects on the nervous system of different
390
organisms and mammalian cells.138-143 Comprehensive reviews on biokinetics,144
391
particle translocation145 and toxicity mechanism146,
392
When analyzing these reports, we first noticed that the application concentration and
393
exposure conditions of ZnONP during in vivo and in vitro tests were performed under
394
acute exposure conditions with relatively high doses.138,
395
assessments may be relevant with regard to acute toxicity, but it is unclear whether
396
these engineered NPs can really be reached at such high levels in human target
397
tissues.152 In contrast, several long-term or chronic studies employing low or
398
non-toxic concentrations found that ZnONP did not pose significant danger to human
399
health.153,
400
exposure.155 Due to the different research approaches used, such these conflicting
401
documents indicate that the potential toxicity of ZnONP and other nanomaterials
402
should be interpreted with caution. Although size and shape of NPs have been proved
403
to be influential, Srivastav et al. reported that the difference in toxicity among ZnO
404
nanoparticles, micro-particles and zinc sulfate was relatively small and these particles
405
were essentially non-toxic.156 Toxicity studies on other nano-sized materials, such as
406
titanium dioxide, concluded that the toxicity performance of these nanoparticles is
154
147
have also been published.
148-151
Thus, these risk
And there has never been reported case of disease related to NPs
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primarily correlated with their chemical properties rather than their particle size. 157-159
408
Toxicologically, perhaps the most important focus is on the toxic mechanism of
409
nanoparticles. Although the generation of reactive oxygen species, the behavior of
410
released metal ions, and the reactions catalyzed by particle surface properties may be
411
the chief contributors to the biological toxicity of ZnONP and other nanoscale metal
412
oxides.160-164 These mechanisms of action may also be applicable to those of
413
traditional chemical substances and not a sole nano-specific toxic mechanism has
414
been determined until now.165 Overall, there is no definite evidence that ZnONP or
415
other metal-containing NPs used in industrial products pose a health hazard, but
416
instead provide obvious health benefits due to their unique physicochemical
417
properties.30,
418
inevitably raise some issues regarding food safety. Since safety data on long-term
419
adverse effects or risks of many nanomaterials are not available or are very limited, a
420
bio-safety assessment of NPs still needed and should be further explored through
421
more in vivo and in vitro studies.
422
SUMMARY AND PROSPECTIVE
423
In this review, we endeavored to give a comprehensive account of current
424
fundamental and application-driven discussions about the protective effects of
425
ZnONP against harmful fungi. We found that more progress has been made in
426
fundamental rather than translational research. Our extensive analysis was centered on
427
ZnONP due to its spectacular properties like a crystalline architecture, nanoscale
166
Expectedly, the application of NPs in food-related industries will
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effect and photocatalytic activity. Also, the inhibitory activity of ZnONP on the
429
growth and metabolism of fungi was reviewed along with a large number of factors
430
affecting its antifungal efficacy. The improvement in the antifungal performance of
431
ZnONP was achieved by adjusting particle parameters like crystalline structure, size
432
and concentration, and even preparation method. Additionally, both illumination and
433
surface modification have been shown to improve the fungicidal performance of
434
ZnONP. Identification of these factors has led to better understanding of a growing
435
number of photogenerated ROS-mediated antifungal mechanisms. One could
436
reasonably conclude that not all of these mechanisms represent independent targets
437
(as illustrated in Figure 5). The ROS-dependent mechanism may be more dominant
438
than nanoparticles-mediated mechanism, but the latter may further influence the effect
439
of the former. Furthermore, there is not enough evidence affirming the conclusion that
440
nano-sized particles are initially more hazardous than larger particles, like
441
microparticles or bulk materials. Investigators should aim to fill the existing
442
knowledge gap in the study of toxic, genotoxic, or possible carcinogenic effect of
443
long-term treatment with ZnONP at sub-toxic doses.
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Figure 5. Plausible mechanistic aspect of nanoparticles-assisted ROS-dependent
445
antifungal activity of ZnONP. Nanostructed ZnO particles could adsorb on the surface
446
of fungal cells through a specific manner and then enter into the cell by transportation
447
or endocytosis. Once nanoparticles are in contact with the cytoplasm, they can affect
448
the initial function of mitochondria and benefit the production of ROS. ROS and the
449
released Zn2+ from ZnONP may trigger many irreversible biological damages and
450
alterations in some key genes expression level.
451
The antifungal and antimycotoxigenic activities of ZnONP are generally
452
recognized nowadays and promising achievements are mentioned in the above
453
discussion. Nevertheless, there are issues that need to be clarified in order to move
454
towards the application of nanoparticle-based antifungal additives in the food industry.
455
Outstanding topics of study mainly include: (i) preparation of ZnONP to match
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industrial needs, (ii) the difference in the inhibitory role of ZnONP on fungal growth
457
and mycotoxin production and the mechanism dictating such a difference, (iii)
458
regulation of antifungal properties via metabolism of ROS in fungal cells.
459
Additionally, mechanisms concerning the penetration, migration, accumulation and
460
biodegradation of nanoscale ZnO need further in-depth study in order to scientifically
461
and accurately evaluate the bio-safety of ZnONP. If the field can succeed in these
462
areas, then ZnONP may prove to play a vital role in many areas of the food industry
463
as a promising bioactive nano-agent.
464
ACKNOWLEDGEMENTS
465
Grants from the Science and Technology Research Program of Chongqing Municipal
466
Education Commission (Grant No. KJ 1758498); Chongqing Normal University
467
Foundation Program (Grant No. 17XL13006); the National Natural Science
468
Foundation of China (Grant No. 31671939). Sincerest thanks to the valuable
469
suggestions from Professor Changming Li (Institute for Clean Energy & Advanced
470
Materials, Faculty of Materials & Energy in Southwest University).
471
REFERENCES
472
1.
Miladi, H.; Mili, D.; Ben, S. R.; Zouari, S.; Ammar, E.; Bakhrouf, A.,
473
Antibiofilm formation and anti-adhesive property of three mediterranean
474
essential oils against a foodborne pathogen Salmonella strain. Microbial
475
Pathogenesis 2016, 93, 22-31.
476
2.
Reyes-Jurado, F.; López-Malo, A.; Palou, E., Antimicrobial Activity of
ACS Paragon Plus Environment
Page 26 of 60
Page 27 of 60
Journal of Agricultural and Food Chemistry
477
Individual and Combined Essential Oils against Foodborne Pathogenic Bacteria.
478
Journal of Food Protection 2016, 79, 309.
479
3.
Sun, Q.; Wang, L.; Lu, Z.; Liu, Y., Invitro anti-aflatoxigenic effect and mode of
480
action of cinnamaldehyde against aflatoxin B 1. International Biodeterioration &
481
Biodegradation 2015, 104, 419-425.
482
4.
Sun, Q.; Shang, B.; Wang, L.; Lu, Z.; Liu, Y., Cinnamaldehyde inhibits fungal
483
growth and aflatoxin B1 biosynthesis by modulating the oxidative stress
484
response of Aspergillus flavus. Applied Microbiology & Biotechnology 2015,
485
100, 1-10.
486
5. Andre, R.; Ines, N., Design and Application of Antimicrobial Peptide Conjugates. International Journal of Molecular Sciences 2016, 17, 701.
487 488
6.
Prevent Resistance Development in Bacteria. Plos One 2015, 10, 1-15.
489 490
Chernysh, S.; Gordya, N.; Suborova, T., Insect Antimicrobial Peptide Complexes
7.
Wimley, W. C., Describing the Mechanism of Antimicrobial Peptide Action with the Interfacial Activity Model. ACS Chemical Biology 2010, 5, 905-917.
491 492
8. Shanks, R. M. Q.; Davra, V. R.; Romanowski, E. G.; Stella, N. A.; Godboley, D.;
493
Kadouri, D. E., An Eye to a Kill: Using Predatory Bacteria to Control
494
Gram-Negative Pathogens Associated with Ocular Infections. PLOS ONE 2013,
495
8.
496
9.
Saleem, M.; Moe, L. A., Multitrophic microbial interactions for eco- and
497
agro-biotechnological processes: theory and practice. Trends in Biotechnology
498
2014, 32, 529-537.
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
499
10. Ghanbarzadeh, B.; Oleyaei, S. A.; Almasi, H., Nanostructured Materials Utilized
500
in Biopolymer-based Plastics for Food Packaging Applications. Critical Reviews
501
in Food Science and Nutrition 2015, 55, 1699-1723.
502
11. Duncan, T. V., Applications of nanotechnology in food packaging and food
503
safety: Barrier materials, antimicrobials and sensors. Journal of Colloid and
504
Interface Science 2011, 363, 1-24.
505
12. Yuan, X.; Setyawati, M. I.; Leong, D. T.; Xie, J., Ultrasmall Ag+-rich
506
nanoclusters as highly efficient nanoreservoirs for bacterial killing. Nano
507
Research 2014, 7, 301-307.
508
13. Zhang, H.; Hortal, M.; Dobon, A.; Jordabeneyto, M.; Bermudez, J. M., Selection
509
of Nanomaterial‐Based Active Agents for Packaging Application: Using Life
510
Cycle Assessment (LCA) as a Tool. Packaging Technology and Science 2017,
511
30, 575-586.
512 513
14. Herron, N.; Thorn, D. L., Nanoparticles: Uses and Relationships to Molecular Cluster Compounds. Advanced Materials 1998, 10, 1173-1184.
514
15. Kumar, A. P.; Depan, D.; Tomer, N. S.; Singh, R. P., Nanoscale particles for
515
polymer degradation and stabilization—Trends and future perspectives. Progress
516
in Polymer Science 2009, 34, 479-515.
517
16. Agnihotri, S.; Mukherji, S.; Mukherji, S., Size-controlled silver nanoparticles
518
synthesized over the range 5–100 nm using the same protocol and their
519
antibacterial efficacy. RSC Advances 2014, 4, 3974-3983.
520
17. Khurana, C.; Vala, A. K.; Andhariya, N.; Pandey, O. P.; Chudasama, B.,
ACS Paragon Plus Environment
Page 28 of 60
Page 29 of 60
Journal of Agricultural and Food Chemistry
521
Antibacterial activities of silver nanoparticles and antibiotic-adsorbed silver
522
nanoparticles against biorecycling microbes. Environmental Science: Processes
523
& Impacts 2014, 16, 2191-2198.
524
18. Rai, M.; Deshmukh, S.; Ingle, A. P.; Gade, A., Silver nanoparticles: the powerful
525
nanoweapon against multidrug ‐ resistant bacteria. Journal of Applied
526
Microbiology 2012, 112, 841-852.
527
19. Panda, S.; Rout, T. K.; Prusty, A. D.; Ajayan, P. M.; Nayak, S., Electron
528
Transfer Directed Antibacterial Properties of Graphene Oxide on Metals.
529
Advanced Materials 2018, 30, 1702149.
530
20. Karahan, H. E.; Wiraja, C.; Xu, C.; Wei, J.; Wang, Y.; Wang, L.; Liu, F.; Chen,
531
Y., Graphene Materials in Antimicrobial Nanomedicine: Current Status and
532
Future Perspectives. Advanced Healthcare Materials 2018, 1701406.
533
21. Chen, H.; Wang, B.; Gao, D.; Guan, M.; Zheng, L.; Ouyang, H.; Chai, Z.; Zhao,
534
Y.; Feng, W., Broad‐Spectrum Antibacterial Activity of Carbon Nanotubes to
535
Human Gut Bacteria. Small 2013, 9, 2735-2746.
536
22. Yang, C.; Mamouni, J.; Tang, Y.; Yang, L., Antimicrobial Activity of
537
Single-Walled Carbon Nanotubes: Length Effect. Langmuir 2010, 26,
538
16013-16019.
539
23. Huh, A. J.; Kwon, Y. J., “Nanoantibiotics”: A new paradigm for treating
540
infectious diseases using nanomaterials in the antibiotics resistant era. Journal of
541
Controlled Release 2011, 156, 128-145.
542
24. Allahverdiyev, A. M.; Kon, K. V.; Abamor, E. S.; Bagirova, M.; Rafailovich, M.,
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
Page 30 of 60
543
Coping with antibiotic resistance: combining nanoparticles with antibiotics and
544
other antimicrobial agents. Expert Review of Anti-infective Therapy 2011, 9,
545
1035-1052.
546 547
25. Nel, A. E.; Xia, T.; Madler, L.; Li, N., Toxic Potential of Materials at the Nanolevel. Science 2006, 311, 622-627.
548
26. Nohynek, G. J.; Dufour, E. K., Nano-sized cosmetic formulations or solid
549
nanoparticles in sunscreens: A risk to human health? Archives of Toxicology
550
2012, 86, 1063-1075.
551
27. Mishra, M.; Paliwal, J. S.; Singh, S. K.; Selvarajan, E.; Mohanashrinivasan, V.;
552
Devi, C. S., Studies on the inhibitory activity of biologically synthesized and
553
characterized ZnO nanoparticles using L.sporogens against Staphylococcus
554
aureus. Journal of Pure & Applied Microbiology 2013, 7.
555 556
28. Padmavathy,
N.;
Vijayaraghavan,
R.,
Enhanced
bioactivity
of
ZnO
nanoparticles-an antimicrobial study. Sci Technol Adv Mater 2016, 9, 035004.
557
29. Colon, G.; Webster, B. C. W. J., Increased osteoblast and decreased
558
Staphylococcus epidermidis functions on nanophase ZnO and TiO2. Journal of
559
Biomedical Materials Research Part A 2010, 78A, 595-604.
560
30. Bondarenko, O.; Juganson, K.; Ivask, A.; Kasemets, K.; Mortimer, M.; Kahru,
561
A., Toxicity of Ag, CuO and ZnO nanoparticles to selected environmentally
562
relevant test organisms and mammalian cells in vitro: a critical review. Archives
563
of Toxicology 2013, 87, 1181-1200.
564
31. Stern, S. T.; Mcneil, S. E., Nanotechnology Safety Concerns Revisited.
ACS Paragon Plus Environment
Page 31 of 60
Journal of Agricultural and Food Chemistry
565
Toxicological Sciences An Official Journal of the Society of Toxicology 2008,
566
101, 4.
567
32. Serpone, N.; Dondi, D.; Albini, A., Inorganic and organic UV filters: Their role
568
and efficacy in sunscreens and suncare products. Inorganica Chimica Acta 2007,
569
360, 794-802.
570
33. Dastjerdi, R.; Montazer, M., A review on the application of inorganic
571
nano-structured materials in the modification of textiles: focus on anti-microbial
572
properties. Colloids & Surfaces B Biointerfaces 2010, 79, 5-18.
573
34. Zhang, H.; Chen, B.; Jiang, H.; Wang, C.; Wang, H.; Wang, X., A strategy for
574
ZnO nanorod mediated multi-mode cancer treatment. Biomaterials 2011, 32,
575
1906-1914.
576
35. Piccinno, F.; Gottschalk, F.; Seeger, S.; Nowack, B., Industrial production
577
quantities and uses of ten engineered nanomaterials in Europe and the world.
578
Journal of Nanoparticle Research 2012, 14, 1109.
579
36. Singh, A.; Singh, N. B.; Afzal, S.; Singh, T.; Hussain, I., Zinc oxide
580
nanoparticles: a review of their biological synthesis, antimicrobial activity,
581
uptake, translocation and biotransformation in plants. Journal of Materials
582
Science 2018, 53, 185-201.
583
37. Fu, F.; Li, L.; Liu, L.; Cai, J.; Zhang, Y.; Zhou, J.; Zhang, L., Construction of
584
Cellulose Based ZnO Nanocomposite Films with Antibacterial Properties
585
through One-Step Coagulation. Acs Applied Materials & Interfaces 2015, 7,
586
2597.
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
587
38. Wang, Y.; Yang, Y.; Xi, L.; Zhang, X.; Jia, M.; Xu, H.; Wu, H., A simple
588
hydrothermal synthesis of flower-like ZnO microspheres and their improved
589
photocatalytic activity. Materials Letters 2016, 180, 55-58.
590
39. Pavithra, N. S.; Lingaraju, K.; Raghu, G. K.; Nagaraju, G., Citrus maxima
591
(Pomelo) juice mediated eco-friendly synthesis of ZnO nanoparticles:
592
Applications to photocatalytic, electrochemical sensor and antibacterial activities.
593
Spectrochimica Acta Part A Molecular & Biomolecular Spectroscopy 2017, 185,
594
11-19.
595 596
40. Moezzi, A.; Mcdonagh, A. M.; Cortie, M. B., Zinc oxide particles: Synthesis, properties and applications. Chemical Engineering Journal 2012, 185-186, 1-22.
597
41. Mallika, A. N.; Ramachandrareddy, A.; Sowribabu, K.; Reddy, K. V., Synthesis
598
and optical characterization of aluminum doped ZnO nanoparticles. Ceramics
599
International 2014, 40, 12171-12177.
600
42. Sabir, S.; Arshad, M.; Chaudhari, S. K., Zinc Oxide Nanoparticles for
601
Revolutionizing Agriculture: Synthesis and Applications. The Scientific World
602
Journal,2014,(2014-11-10) 2014, 2014, 1-8.
603 604
43. Wang, Z. L., Splendid one-dimensional nanostructures of zinc oxide: a new nanomaterial family for nanotechnology. Acs Nano 2008, 2, 1987.
605
44. Özgür, Ü.; Alivov, Y. I.; Liu, C.; Teke, A.; Reshchikov, M. A.; Doğan, S.;
606
Avrutin, V.; Cho, S. J.; Morkoç, H., A comprehensive review of ZnO materials
607
and devices. Journal of Applied Physics 2005, 98, 11-1.
608
45. Wang, H. Y.; Yang, Y. T.; Liu, X. J.; Zhang, S. Y. In Synthesis of zinc oxide
ACS Paragon Plus Environment
Page 32 of 60
Page 33 of 60
Journal of Agricultural and Food Chemistry
609
nanorods in ionic liquid via ultrasonic irradiation, Piezoelectricity, Acoustic
610
Waves, and Device Applications, 2009; 2009; pp 23-23.
611
46. Xing, Y. J.; Xi, Z. H.; Zhang, X. D.; Song, J. H.; Wang, R. M.; Xu, J.; Xue, Z. Q.;
612
Yu, D. P., Thermal evaporation synthesis of zinc oxide nanowires. Applied
613
Physics A 2005, 80, 1527-1530.
614
47. Zhou, Q.; Xie, B.; Jin, L.; Chen, W.; Li, J., Hydrothermal Synthesis and
615
Responsive Characteristics of Hierarchical Zinc Oxide Nanoflowers to Sulfur
616
Dioxide. Journal of Nanotechnology,2016,(2016-3-15) 2016, 2016, 1-6.
617
48. Kadhim, Q. A.; Shan, K. M.; Ali, R. A.; Mahdi, R. J.; Kassim, N. A.; Jassim, A.
618
N.; Alwan, R. M., Synthesis of zinc oxide nanoparticles via sol-gel route and
619
their characterization. Nanoscience & Nanotechnology 2015, 5, 1-6.
620
49. Ghorbani, H.; Mehr, F.; Pazoki, H.; Rahmani, B., Synthesis of ZnO
621
Nanoparticles by Precipitation Method. Oriental Journal of Chemistry 2015, 31,
622
1219-1221.
623
50. Jain, N.; Bhargava, A.; Tarafdar, J. C.; Singh, S. K.; Panwar, J., A biomimetic
624
approach towards synthesis of zinc oxide nanoparticles. Applied Microbiology &
625
Biotechnology 2013, 97, 859-869.
626
51. Ahmed, S.; Annu; Chaudhry, S. A.; Ikram, S., A review on biogenic synthesis of
627
ZnO nanoparticles using plant extracts and microbes: A prospect towards green
628
chemistry. Journal of Photochemistry & Photobiology B Biology 2017, 166,
629
272-284.
630
52. Raghupathi, K. R.; Koodali, R. T.; Manna, A. C., Size-dependent bacterial
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
Page 34 of 60
631
growth inhibition and mechanism of antibacterial activity of zinc oxide
632
nanoparticles. Langmuir 2011, 27, 4020-4028.
633
53. Premanathan, M.; Karthikeyan, K.; Jeyasubramanian, K.; Manivannan, G.,
634
Selective toxicity of ZnO nanoparticles toward Gram-positive bacteria and
635
cancer
636
Nanotechnology Biology & Medicine 2011, 7, 184-192.
cells
by
apoptosis
through
lipid
peroxidation.
Nanomedicine
637
54. Reddy, K. M.; Feris, K.; Bell, J.; Wingett, D. G.; Hanley, C.; Punnoose, A.,
638
Selective toxicity of zinc oxide nanoparticles to prokaryotic and eukaryotic
639
systems. Applied Physics Letters 2007, 90, 585.
640
55. Tiwari, N.; Pandit, R.; Gaikwad, S.; Gade, A.; Rai, M., Biosynthesis of zinc
641
oxide nanoparticles by petals extract of Rosa indica L., its formulation as nail
642
paint and evaluation of antifungal activity against fungi causing onychomycosis.
643
Iet Nanobiotechnology 2017, 11, 205-211.
644
56. Barad, S.; Roudbary, M.; Omran, A. N.; Daryasari, M. P., Preparation and
645
characterization of ZnO nanoparticles coated by chitosan-linoleic acid; fungal
646
growth and biofilm assay. Bratislavske Lekarske Listy 2017, 118, 169.
647
57. Auyeung, A.; Casillas-Santana, M. Á.; Martínez-Castañón, G. A.; Slavin, Y. N.;
648
Zhao, W.; Asnis, J.; Häfeli, U. O.; Bach, H., Effective Control of Molds Using a
649
Combination of Nanoparticles. Plos One 2017, 12, e0169940.
650
58. Sierra, F. A.; Sdc, D. L. R. G.; Gomez-Villalba, L. S.; Gomez-Cornelio, S.;
651
Rabanal, M. E.; Fort, R.; Quintana, P., Synthesis, photocatalytic, and antifungal
652
properties of MgO, ZnO and Zn/Mg oxide nanoparticles for the protection of
ACS Paragon Plus Environment
Page 35 of 60
653 654
Journal of Agricultural and Food Chemistry
calcareous stone heritage. Acs Appl Mater Interfaces 2017, 9. 59. He, L.; Liu, Y.; Mustapha, A.; Lin, M., Antifungal activity of zinc oxide
655
nanoparticles
against
Botrytis
cinerea
656
Microbiological Research 2011, 166, 207-215.
and
Penicillium
expansum.
657
60. Patra, P.; Mitra, S.; Debnath, N.; Goswami, A., Biochemical-, biophysical-, and
658
microarray-based antifungal evaluation of the buffer-mediated synthesized nano
659
zinc oxide: an in vivo and in vitro toxicity study. Langmuir 2012, 28,
660
16966-16978.
661
61. Hassan, A. A.; Howayda, M. E.; Mahmoud, H. H., Effect of Zinc Oxide
662
Nanoparticles on the Growth of Mycotoxigenic Mould. Studies in Chemical
663
Process Technology 2013, 1, 16-25.
664
62. Shoeb, M.; Singh, B. R.; Khan, J. A.; Khan, W.; Singh, B. N.; Singh, H. B.;
665
Naqvi, A. H., ROS-dependent anticandidal activity of zinc oxide nanoparticles
666
synthesized by using egg albumen as a biotemplate. Advances in Natural
667
Sciences Nanoscience & Nanotechnology 2013, 4, 035015.
668
63. Sharma, D.; Rajput, J. K.; Kaith, B. S.; Kaur, M.; Sharma, S., Synthesis of ZnO
669
nanoparticles and study of their antibacterial and antifungal properties. Thin
670
Solid Films 2010, 519, 1224-1229.
671
64. Mitra, S.; Patra, P.; Pradhan, S.; Debnath, N.; Dey, K. K.; Sarkar, S.;
672
Chattopadhyay, D.; Goswami, A., Microwave synthesis of ZnO@mSiOâ‚‚ for
673
detailed antifungal mode of action study: understanding the insights into
674
oxidative stress. Journal of Colloid & Interface Science 2015, 444, 97-108.
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
675
65. Jamdagni, P.; Rana, J. S.; Khatri, P.; Nehra, K., Comparative account of
676
antifungal activity of green and chemically synthesized Zinc Oxide nanoparticles
677
in combination with agricultural fungicides. international journal of nano
678
dimension 2018, 9, 198-208.
679
66. Das, B.; Khan, M. I.; Jayabalan, R.; Behera, S. K.; Yun, S. I.; Tripathy, S. K.;
680
Mishra, A., Understanding the Antifungal Mechanism of Ag@ZnO Core-shell
681
Nanocomposites against Candida krusei. Scientific Reports 2016, 6, 36403.
682
67. Li, J.; Sang, H.; Guo, H.; Popko, J. T.; He, L.; White, J. C.; Parkash, D. O.; Jung,
683
G.; Xing, B., Antifungal mechanisms of ZnO and Ag nanoparticles to Sclerotinia
684
homoeocarpa. Nanotechnology 2017, 28, 155101.
685
68. Gunalan, S.; Sivaraj, R.; Rajendran, V., Green synthesized ZnO nanoparticles
686
against bacterial and fungal pathogens. Progress in Natural Science:Materials
687
International 2012, 22, 695-702.
688
69. Hui, A.; Liu, J.; Ma, J., Synthesis and morphology-dependent antimicrobial
689
activity of cerium doped flower-shaped ZnO crystallites under visible light
690
irradiation. Colloids & Surfaces A Physicochemical & Engineering Aspects 2016,
691
506, 519-525.
692
70. Sharma, N.; Jandaik, S.; Kumar, S., Synergistic activity of doped zinc oxide
693
nanoparticles with antibiotics: ciprofloxacin, ampicillin, fluconazole and
694
amphotericin B against pathogenic microorganisms. Anais Da Academia
695
Brasileira De Ciencias 2016, 88, 1689.
696
71. Maeda, K.; Nakajima, Y.; Motoyama, T.; Kitou, Y.; Kosaki, T.; Saito, T.;
ACS Paragon Plus Environment
Page 36 of 60
Page 37 of 60
Journal of Agricultural and Food Chemistry
697
Nishiuchi, T.; Kanamaru, K.; Osada, H.; Kobayashi, T., Effects of acivicin on
698
growth, mycotoxin production and virulence of phytopathogenic fungi. Letters in
699
Applied Microbiology 2015, 59, 377-383.
700
72. Kong, W.; Wei, R.; Logrieco, A. F.; Wei, J.; Wen, J.; Xiao, X.; Yang, M.,
701
Occurrence of toxigenic fungi and determination of mycotoxins by HPLC-FLD
702
in functional foods and spices in China markets. Food Chemistry 2014, 146,
703
320-326.
704
73. Savi, G. D.; Bortoluzzi, A. J.; Scussel, V. M., Antifungal properties of Zinc‐
705
compounds against toxigenic fungi and mycotoxin. International Journal of
706
Food Science & Technology 2013, 48, 1834-1840.
707
74. Franklin, N. M.; Rogers, N. J.; Apte, S. C.; Batley, G. E.; Gadd, G. E.; Casey, P.
708
S., Comparative toxicity of nanoparticulate ZnO, bulk ZnO, and ZnCl2 to a
709
freshwater microalga (Pseudokirchneriella subcapitata): the importance of
710
particle solubility. Environmental Science & Technology 2007, 41, 8484-90.
711
75. Jones, N.; Ray, B.; Ranjit, K. T.; Manna, A. C., Antibacterial activity of ZnO
712
nanoparticle suspensions on a broad spectrum of microorganisms. Fems
713
Microbiology Letters 2010, 279, 71-76.
714
76. Zhang, L.; Jiang, Y.; Ding, Y.; Povey, M.; York, D., Investigation into the
715
antibacterial behaviour of suspensions of ZnO nanoparticles (ZnO nanofluids).
716
Journal of Nanoparticle Research 2007, 9, 479-489.
717
77. Stanković, A.; Dimitrijević, S.; Uskoković, D., Influence of size scale and
718
morphology on antibacterial properties of ZnO powders hydrothemally
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
719
synthesized using different surface stabilizing agents. Colloids & Surfaces B
720
Biointerfaces 2013, 102, 21-28.
721
78. Ma, J.; Liu, J.; Bao, Y.; Zhu, Z.; Wang, X.; Zhang, J., Synthesis of large-scale
722
uniform mulberry-like ZnO particles with microwave hydrothermal method and
723
its antibacterial property. Ceramics International 2013, 39, 2803-2810.
724
79. Ramani, M.; Ponnusamy, S.; Muthamizhchelvan, C.; Marsili, E., Amino
725
acid-mediated synthesis of zinc oxide nanostructures and evaluation of their
726
facet-dependent antimicrobial activity. Colloids & Surfaces B Biointerfaces 2014,
727
117, 233-239.
728
80. Li, G. R.; Hu, T.; Pan, G. L.; Yan, T. Y.; Gao, X. P.; Zhu, H. Y.,
729
Morphology−Function Relationship of ZnO: Polar Planes, Oxygen Vacancies,
730
and Activity. Journal of Physical Chemistry C 2008, 112, 11859.
731
81. Tong, G. X.; Du, F. F.; Yan, L.; Qian, H.; Wu, R. N.; Guan, J. G.; Xian, H.,
732
Polymorphous ZnO complex architectures: selective synthesis, mechanism,
733
surface area and Zn-polar plane-codetermining antibacterial activity. Journal of
734
Materials Chemistry B 2012, 1, 454-463.
735
82. Wang, X.; Yang, F.; Yang, W.; Yang, X., A study on the antibacterial activity of
736
one-dimensional ZnO nanowire arrays: effects of the orientation and plane
737
surface. Chemical Communications 2007, 42, 4419-4421.
738
83. Yang, H.; Liu, C.; Yang, D.; Zhang, H.; Xi, Z., Comparative study of
739
cytotoxicity, oxidative stress and genotoxicity induced by four typical
740
nanomaterials: the role of particle size, shape and composition. Journal of
ACS Paragon Plus Environment
Page 38 of 60
Page 39 of 60
741
Journal of Agricultural and Food Chemistry
Applied Toxicology 2010, 29, 69-78.
742
84. Tam, K. H.; Djurišić, A. B.; Chan, C. M. N.; Xi, Y. Y.; Tse, C. W.; Leung, Y. H.;
743
Chan, W. K.; Leung, F. C. C.; Au, D. W. T., Antibacterial activity of ZnO
744
nanorods prepared by a hydrothermal method. Thin Solid Films 2008, 516,
745
6167-6174.
746
85. Shima, H.; Hossain, M. M.; Lee, I.; Son, S.; Hahn, J. R., Carbon-ZnO core-shell
747
nanospheres: Facile fabrication and application in the visible-light photocatalytic
748
decomposition of organic pollutant dyes. Materials Chemistry & Physics 2017,
749
185, 73-82.
750
86. Qi, K.; Cheng, B.; Yu, J.; Ho, W., Review on the improvement of the
751
photocatalytic and antibacterial activities of ZnO. Journal of Alloys &
752
Compounds 2017, 727.
753
87. Liu, F.; Yu, H. L.; Djurišić, A. B.; Ng, A. M. C.; Chan, W. K., Native Defects in
754
ZnO: Effect on Dye Adsorption and Photocatalytic Degradation. Journal of
755
Physical Chemistry C 2013, 117, 12218–12228.
756
88. Baruah, S.; Mahmood, M. A.; Myint, M. T. Z.; Bora, T.; Dutta, J., Enhanced
757
visible light photocatalysis through fast crystallization of zinc oxide nanorods.
758
Beilstein Journal of Nanotechnology 2010, 1, 14-20.
759
89. Joe, A.; Park, S. H.; Shim, K. D.; Kim, D. J.; Jhee, K. H.; Lee, H. W.; Heo, C. H.;
760
Kim, H. M.; Jang, E. S., Antibacterial mechanism of ZnO nanoparticles under
761
dark conditions. Journal of Industrial & Engineering Chemistry 2016, 45.
762
90. Pelaz, B.; Del, P. P.; Maffre, P.; Hartmann, R.; Gallego, M.; Rivera-Fernández,
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
763
S.; Jm, D. L. F.; Nienhaus, G. U.; Parak, W. J., Surface Functionalization of
764
Nanoparticles with Polyethylene Glycol: Effects on Protein Adsorption and
765
Cellular Uptake. Acs Nano 2015, 9, 6996.
766
91. Ying, T. C.; Baabbad, M. M.; Mohammad, A. W.; Benamor, A.,
767
Functionalization of zinc oxide (ZnO) nanoparticles and its effects on
768
polysulfone-ZnO membranes. Desalination & Water Treatment 2016, 57,
769
7801-7811.
770
92. Yang, J. Y.; Bae, J.; Jung, A.; Park, S.; Chung, S.; Seok, J.; Roh, H.; Han, Y.; Oh,
771
J. M.; Sohn, S., Surface functionalization-specific binding of coagulation factors
772
by zinc oxide nanoparticles delays coagulation time and reduces thrombin
773
generation potential in vitro. Plos One 2017, 12, e0181634.
774
93. Azarshin, S.; Moghadasi, J.; Aboosadi, Z. A.; Azarshin, S.; Moghadasi, J.;
775
Aboosadi, Z. A.; Azarshin, S.; Moghadasi, J.; Aboosadi, Z. A.; Azarshin, S.,
776
Surface functionalization of silica nanoparticles to improve the performance of
777
water flooding in oil wet reservoirs. Energy Exploration & Exploitation 2017, 35,
778
014459871771628.
779 780
94. Hirsch, A.; Englert, J. M.; Hauke, F., Wet chemical functionalization of graphene. Acc Chem Res 2013, 46, 87-96.
781
95. Sivaramakrishnan, C.; Sherine, J. J.; Yadavalli, T., Surface functionalization of
782
gold nanoparticles for targeted drug delivery. International Journal of Chemtech
783
Research 2014, 7, 1198-1205.
784
96. Zhang, B.; Kong, T.; Xu, W.; Su, R.; Gao, Y.; Cheng, G., Surface
ACS Paragon Plus Environment
Page 40 of 60
Page 41 of 60
Journal of Agricultural and Food Chemistry
785
functionalization of zinc oxide by carboxyalkylphosphonic acid self-assembled
786
monolayers. Langmuir the Acs Journal of Surfaces & Colloids 2010, 26,
787
4514-22.
788
97. Ejaz, M.; Arfat, Y. A.; Mulla, M.; Ahmed, J., Zinc oxide nanorods/clove
789
essential oil incorporated Type B gelatin composite films and its applicability for
790
shrimp packaging. Food Packaging & Shelf Life 2017, 15.
791
98. Ahmed, J.; Hiremath, N.; Jacob, H., Antimicrobial efficacies of essential
792
oils/nanoparticles incorporated polylactide films against L. monocytogenes and S.
793
typhimurium on contaminated cheese. International Journal of Food Properties
794
2017, 20, 53-67.
795
99. Rahman, P. M.; Mujeeb, V. M. A.; Muraleedharan, K.; Thomas, S. K., Chitosan
796
/nano ZnO composite films; enhanced mechanical, antimicrobial and dielectric
797
properties. Arabian Journal of Chemistry 2016, 11.
798
100. Al-Naamani, L.; Dobretsov, S.; Dutta, J.; Burgess, J. G., Chitosan-zinc oxide
799
nanocomposite coatings for the prevention of marine biofouling. Chemosphere
800
2017, 168, 408-417.
801
101. Ali, A.; Ahmed, S., Recent Advances in Edible Polymer Based Hydrogels as a
802
Sustainable Alternative to Conventional Polymers. Journal of Agricultural &
803
Food Chemistry 2018.
804
102. Duncan, T. V., Applications of nanotechnology in food packaging and food
805
safety: barrier materials, antimicrobials and sensors. Journal of Colloid &
806
Interface Science 2011, 363, 1-24.
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
807
103. Ghanbarzadeh, B.; Oleyaei, S. A.; Almasi, H., Nanostructured Materials Utilized
808
in Biopolymer-based Plastics for Food Packaging Applications. Critical Reviews
809
in Food Science & Nutrition 2015, 55, 1699-1723.
810
104.Hirota, K.; Sugimoto, M.; Kato, M.; Tsukagoshi, K.; Tanigawa, T.; Sugimoto, H.,
811
Preparation of zinc oxide ceramics with a sustainable antibacterial activity under
812
dark conditions. Ceramics International 2010, 36, 497-506.
813
105. Xu, X.; Chen, D.; Yi, Z.; Jiang, M.; Wang, L.; Zhou, Z.; Fan, X.; Wang, Y.; Hui,
814
D., Antimicrobial mechanism based on H2O2 generation at oxygen vacancies in
815
ZnO crystals. Langmuir 2013, 29, 5573-5580.
816 817
106. Nel, A.; Xia, T.; Mädler, L.; Li, N., Toxic potential of materials at the nanolevel. Science 2006, 311, 622-627.
818
107. Xia, ‡ Tian; Michael Kovochich, ‡; Jonathan Brant; Matt Hotze; Joan Sempf;
819
Terry Oberley; Constantinos Sioutas; Yeh, J. I.; And, M. R. W., §; †, A. E. N.,
820
Comparison of the Abilities of Ambient and Manufactured Nanoparticles To
821
Induce Cellular Toxicity According to an Oxidative Stress Paradigm. Nano
822
Letters 2006, 6, 1794-1807.
823 824
108. Colvin, V. L., The potential environmental impact of engineered nanomaterials. Nature Biotechnology 2003, 21, 1166-1170.
825
109. Li, Y.; Zhang, W.; Niu, J.; Chen, Y., Mechanism of photogenerated reactive
826
oxygen species and correlation with the antibacterial properties of engineered
827
metal-oxide nanoparticles. Acs Nano 2012, 6, 5164-5173.
828
110. Bondarenko, O.; Ivask, A.; Kakinen, A.; Kahru, A., Sub-toxic effects of CuO
ACS Paragon Plus Environment
Page 42 of 60
Page 43 of 60
Journal of Agricultural and Food Chemistry
829
nanoparticles on bacteria: kinetics, role of Cu ions and possible mechanisms of
830
action. Environmental Pollution 2012, 169, 81-89.
831
111. Wu, B.; Wang, Y.; Lee, Y.; Horst, A.; Wang, Z.; Chen, D. R.; Sureshkumar, R.;
832
Tang, Y. J., Comparative Eco-Toxicities of Nano-ZnO Particles under Aquatic
833
and Aerosol Exposure Modes. Environmental Science & Technology 2010, 44,
834
1484-1489.
835
112. Aruoja, V.; Dubourguier, H.; Kasemets, K.; Kahru, A., Toxicity of nanoparticles
836
of CuO, ZnO and TiO2 to microalgae Pseudokirchneriella subcapitata. Science of
837
The Total Environment 2009, 407, 1461-1468.
838
113. Li, M.; Zhu, L.; Lin, D., Toxicity of ZnO nanoparticles to Escherichia coli:
839
mechanism and the influence of medium components. Environmental Science &
840
Technology 2011, 45, 1977-1983.
841
114. Casals, E.; Gonzalez, E.; Puntes, V. F., Reactivity of inorganic nanoparticles in
842
biological environments: insights into nanotoxicity mechanisms. Journal of
843
Physics D Applied Physics 2012, 45, 443001.
844
115. Wiench, K.; Wohlleben, W.; Hisgen, V.; Radke, K.; Salinas, E.; Zok, S.;
845
Landsiedel, R., Acute and chronic effects of nano- and non-nano-scale TiO(2)
846
and ZnO particles on mobility and reproduction of the freshwater invertebrate
847
Daphnia magna. Chemosphere 2009, 76, 1356-1365.
848
116. Kasemets, K.; Suppi, S.; Kai, K.; Kahru, A., Toxicity of CuO Nanoparticles to
849
Yeast Saccharomyces cerevisiae BY4741 Wild-Type and Its Nine Isogenic
850
Single-Gene Deletion Mutants. Chemical Research in Toxicology 2013, 26,
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
851
356-367.
852
117. Fabrega, J.; Luoma, S. N.; Tyler, C. R.; Galloway, T. S.; Lead, J. R., Silver
853
nanoparticles: behaviour and effects in the aquatic environment. Environment
854
International 2011, 37, 517-531.
855
118. Gao, J.; Youn, S.; Hovsepyan, A.; Llaneza, V. L.; Wang, Y.; Bitton, G.;
856
Bonzongo, J. C., Dispersion and toxicity of selected manufactured nanomaterials
857
in natural river water samples: effects of water chemical composition.
858
Environmental Science & Technology 2009, 43, 3322-3328.
859
119. Blinova, I.; Ivask, A.; Heinlaan, M.; Mortimer, M.; Kahru, A., Ecotoxicity of
860
nanoparticles of CuO and ZnO in natural water. Environmental Pollution 2010,
861
158, 41-47.
862
120. Dimkpa, C. O.; Calder, A.; Britt, D. W.; Mclean, J. E.; Anderson, A. J.,
863
Responses of a soil bacterium, Pseudomonas chlororaphis O6 to commercial
864
metal oxide nanoparticles compared with responses to metal ions. Environmental
865
Pollution 2011, 159, 1749-1756.
866
121. Levard, C.; Hotze, E. M.; Lowry, G. V.; Jr, B. G., Environmental
867
transformations of silver nanoparticles: impact on stability and toxicity.
868
Environmental Science & Technology 2012, 46, 6900.
869
122. Applerot, G.; Lipovsky, A.; Dror, R.; Perkas, N.; Nitzan, Y.; Lubart, R.;
870
Gedanken, A., Enhanced Antibacterial Activity of Nanocrystalline ZnO Due to
871
Increased ROS‐Mediated Cell Injury. Advanced Functional Materials 2010, 19,
872
842-852.
ACS Paragon Plus Environment
Page 44 of 60
Page 45 of 60
Journal of Agricultural and Food Chemistry
873
123. Yin, H.; Casey, P. S.; Mccall, M. J.; Fenech, M., Effects of Surface Chemistry on
874
Cytotoxicity, Genotoxicity, and the Generation of Reactive Oxygen Species
875
Induced by ZnO Nanoparticles. Langmuir the Acs Journal of Surfaces &
876
Colloids 2010, 26, 15399.
877
124. Perelshtein, I.; Applerot, G.; Perkas, N.; Wehrschetz-Sigl, E.; Hasmann, A.;
878
Guebitz, G. M.; Gedanken, A., Antibacterial properties of an in situ generated
879
and simultaneously deposited nanocrystalline ZnO on fabrics. Acs Appl Mater
880
Interfaces 2009, 1, 361-366.
881
125. Hwang, I. S.; Lee, J.; Hwang, J. H.; Kim, K. J.; Lee, D. G., Silver nanoparticles
882
induce apoptotic cell death in Candida albicans through the increase of hydroxyl
883
radicals. Febs Journal 2012, 279, 1327-1338.
884
126. Xue, J.; Luo, Z.; Li, P.; Ding, Y.; Cui, Y.; Wu, Q., A residue-free green
885
synergistic antifungal nanotechnology for pesticide thiram by ZnO nanoparticles.
886
Scientific Reports 2014, 4, 5408.
887
127. Oehlke, K.; Adamiuk, M.; Behsnilian, D.; Gräf, V.; Mayermiebach, E.; Walz, E.;
888
Greiner, R., Potential bioavailability enhancement of bioactive compounds using
889
food-grade engineered nanomaterials: a review of the existing evidence. Food &
890
Function 2014, 5, 1341-1359.
891
128. Siegrist, M.; Cousin, M. E.; Kastenholz, H.; Wiek, A., Public acceptance of
892
nanotechnology foods and food packaging: the influence of affect and trust.
893
Appetite 2007, 49, 459-466.
894
129. Rogers, M. A., Naturally occurring nanoparticles in food. Current Opinion in
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
895
Food Science 2016, 7, 14-19.
896
130. Tankhiwale, R.; Bajpai, S. K., Preparation, characterization and antibacterial
897
applications of ZnO-nanoparticles coated polyethylene films for food packaging.
898
Colloids & Surfaces B Biointerfaces 2012, 90, 16-20.
899
131. Malini, M.; Thirumavalavan, M.; Yang, W. Y.; Lee, J. F.; Annadurai, G., A
900
versatile chitosan/ZnO nanocomposite with enhanced antimicrobial properties.
901
International Journal of Biological Macromolecules 2015, 80, 121-129.
902
132. Espitia, P. J. P.; Soares, N. D. F. F.; Coimbra, J. S. D. R.; Andrade, N. J. D.;
903
Cruz, R. S.; Medeiros, E. A. A., Zinc Oxide Nanoparticles: Synthesis,
904
Antimicrobial Activity and Food Packaging Applications. Food & Bioprocess
905
Technology 2012, 5, 1447-1464.
906
133. Babaei-Ghazvini, A.; Shahabi-Ghahfarrokhi, I.; Goudarzi, V., Preparation of
907
UV-protective starch/kefiran/ZnO nanocomposite as a food packaging film:
908
characterization. Food Packaging & Shelf Life 2018.
909
134. Zhang, X.; Zhao, H.; Xue, Y.; Wu, Z.; Zhang, Y.; He, Y.; Li, X.; Yuan, Z.,
910
Colorimetric sensing of clenbuterol using gold nanoparticles in the presence of
911
melamine. Biosensors & Bioelectronics 2012, 34, 112-117.
912
135. Lv, M.; Liu, Y.; Geng, J.; Kou, X.; Xin, Z.; Yang, D., Engineering
913
nanomaterials-based biosensors for food safety detection. Biosensors &
914
Bioelectronics 2018, 106, 122-128.
915
136. Stephen, B. I.; Chen, B. H., Nanomaterial-based sensors for detection of
916
foodborne bacterial pathogens and toxins as well as pork adulteration in meat
ACS Paragon Plus Environment
Page 46 of 60
Page 47 of 60
917 918
Journal of Agricultural and Food Chemistry
products. Journal of Food & Drug Analysis 2016, 24, 15-28. 137. Yamada, K.; Choi, W.; Lee, I.; Cho, B. K.; Jun, S., Rapid detection of multiple
919
foodborne
pathogens
using
a
nanoparticle-functionalized
920
biosensor. Biosensors & Bioelectronics 2016, 77, 137-143.
multi-junction
921
138. Yin, H.; Casey, P. S.; Mccall, M. J.; Fenech, M., Size-dependent cytotoxicity and
922
genotoxicity of ZnO particles to human lymphoblastoid (WIL2-NS) cells.
923
Environmental & Molecular Mutagenesis 2015, 56, 767-776.
924
139. Mozaffari, Z.; Parivar, K.; Roodbari, N. H.; Irani, S., Histopathological
925
Evaluation of the Toxic Effects of Zinc Oxide (ZnO) Nanoparticles on Testicular
926
Tissue of NMRI Adult Mice. Advanced Studies in Biology 2015, 7, 275-291.
927
140.Pasupuleti, S.; Alapati, S.; Ganapathy, S.; Anumolu, G.; Pully, N. R.; Prakhya, B.
928
M., Toxicity of zinc oxide nanoparticles through oral route. Toxicology and
929
Industrial Health 2012, 28, 675-686.
930
141. Li, C. H.; Shen, C.; Cheng, Y. W.; Huang, S. H.; Wu, C.; Kao, C. C.; Liao, J.;
931
Kang, J., Organ biodistribution, clearance, and genotoxicity of orally
932
administered zinc oxide nanoparticles in mice. Nanotoxicology 2012, 6, 746-756.
933
142. Liu, H.; Yang, D.; Yang, H.; Zhang, H.; Zhang, W.; Fang, Y.; Lin, Z.; Tian, L.;
934
Lin, B.; Yan, J., Comparative study of respiratory tract immune toxicity induced
935
by three sterilisation nanoparticles: Silver, zinc oxide and titanium dioxide.
936
Journal of Hazardous Materials 2013, 478-486.
937 938
143. Milivojevic, T.; Glavan, G.; Božic, J.; Sepcic, K.; Mesaric, T.; Drobne, D., Neurotoxic potential of ingested ZnO nanomaterials on bees. Chemosphere 2015,
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
939
120, 547-554.
940
144. Landsiedel, R.; Fabian, E.; Mahock, L.; Wohlleben, W.; Wiench, K.; Oesch, F.;
941
Van Ravenzwaay, B., Toxico-/biokinetics of nanomaterials. Archives of
942
Toxicology 2012, 86, 1021-1060.
943
145. Debia, M.; Bakhiyi, B.; Ostiguy, C.; Verbeek, J.; Brouwer, D. H.; Murashov, V.,
944
A Systematic Review of Reported Exposure to Engineered Nanomaterials.
945
Annals of Occupational Hygiene 2016, 60, 916-935.
946
146. Magdolenova, Z.; Collins, A.; Kumar, A.; Dhawan, A.; Stone, V.; Dusinska, M.,
947
Mechanisms of genotoxicity. A review of in vitro and in vivo studies with
948
engineered nanoparticles. Nanotoxicology 2014, 8, 233-278.
949
147. Sirelkhatim, A.; Mahmud, S.; Seeni, A.; Kaus, N. H. M.; Ann, L. C.; Bakhori, S.
950
K. M.; Hasan, H.; Mohamad, D., Review on Zinc Oxide Nanoparticles:
951
Antibacterial Activity and Toxicity Mechanism. Nano-micro Letters 2015, 7,
952
219-242.
953
148. Johnson, B. M.; Fraietta, J. A.; Gracias, D. T.; Hope, J. L.; Stairiker, C. J.; Patel,
954
P. R.; Mueller, Y. M.; Mchugh, M. D.; Jablonowski, L. J.; Wheatley, M. A.,
955
Acute exposure to ZnO nanoparticles induces autophagic immune cell death.
956
Nanotoxicology 2015, 9, 737-748.
957
149. Punnoose, A.; Kongara, M. R.; Wingett, D., Preferential killing of cancer cells
958
and activated human t cells using zno nanoparticles. Nanotechnology 2008, 19,
959
295103-295103.
960
150. Sharma, V.; Anderson, D.; Dhawan, A., Zinc oxide nanoparticles induce
ACS Paragon Plus Environment
Page 48 of 60
Page 49 of 60
Journal of Agricultural and Food Chemistry
961
oxidative stress and genotoxicity in human liver cells (HepG2). Journal of
962
Biomedical Nanotechnology 2011, 7, 98-99.
963
151. Guan, R.; Kang, T.; Fei, L.; Zhang, Z.; Shen, H.; Liu, M., Cytotoxicity, oxidative
964
stress, and genotoxicity in human hepatocyte and embryonic kidney cells
965
exposed to ZnO nanoparticles. Nanoscale Research Letters 2012, 7, 602-602.
966
152. Hristozov, D. R.; Gottardo, S.; Critto, A.; Marcomini, A., Risk assessment of
967
engineered nanomaterials: a review of available data and approaches from a
968
regulatory perspective. Nanotoxicology 2012, 6, 880-898.
969
153. Kermanizadeh, A.; Gaiser, B. K.; Hutchison, G. R.; Stone, V., An in vitro liver
970
model - assessing oxidative stress and genotoxicity following exposure of
971
hepatocytes to a panel of engineered nanomaterials. Particle & Fibre Toxicology
972
2012, 9, 28-28.
973
154. Annangi, B.; Rubio, L.; Alaraby, M.; Bach, J.; Marcos, R.; Hernández, A., Acute
974
and long-term in vitro effects of zinc oxide nanoparticles. Archives of Toxicology
975
2016, 90, 2201-2213.
976 977
155. Xia, T.; Li, N.; Nel, A. E., Potential Health Impact of Nanoparticles. Annual Review of Public Health 2009, 30, 137-150.
978
156. Srivastav, A. K.; Kumar, M.; Ansari, N. G.; Jain, A. K.; Shankar, J.; Arjaria, N.;
979
Jagdale, P.; Singh, D., A comprehensive toxicity study of zinc oxide
980
nanoparticles versus their bulk in Wistar rats: Toxicity study of zinc oxide
981
nanoparticles. Human & Experimental Toxicology 2016, 35.
982
157. Gebel, T., Small difference in carcinogenic potency between GBP nanomaterials
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
983 984 985
and GBP micromaterials. Archives of Toxicology 2012, 86, 995-1007. 158. Roberts, M. S., Nanotechnology, cosmetics and the skin: is there a health risk? Skin Pharmacology & Physiology 2008, 21, 136-149.
986
159. Karlsson, H. L.; Gustafsson, J.; Cronholm, P.; Möller, L., Size-dependent
987
toxicity of metal oxide particles—A comparison between nano- and micrometer
988
size. Toxicology Letters 2009, 188, 112-118.
989
160. Ivask, A.; Bondarenko, O.; Jepihhina, N.; Kahru, A., Profiling of the reactive
990
oxygen species-related ecotoxicity of CuO, ZnO, TiO 2 , silver and fullerene
991
nanoparticles using a set of recombinant luminescent Escherichia coli strains:
992
differentiating the impact of particles and solubilised metals. Analytical &
993
Bioanalytical Chemistry 2010, 398, 701-716.
994
161. Aruoja, V.; Dubourguier, H. C.; Kasemets, K.; Kahru, A., Toxicity of
995
nanoparticles of CuO, ZnO and TiO2 to microalgae Pseudokirchneriella
996
subcapitata. Science of the Total Environment 2009, 407, 1461-1468.
997
162. Xu, J.; Li, Z.; Xu, P.; Xiao, L.; Yang, Z., Nanosized copper oxide induces
998
apoptosis through oxidative stress in podocytes. Archives of Toxicology 2013, 87,
999
1067-1073.
1000
163. Trpkovic, A.; Todorovicmarkovic, B.; Trajkovic, V., Toxicity of pristine versus
1001
functionalized fullerenes: mechanisms of cell damage and the role of oxidative
1002
stress. Archives of Toxicology 2012, 86, 1809-1827.
1003
164. Morishige, T.; Yoshioka, Y.; Tanabe, A.; Narimatsu, S.; Yao, X.; Monobe, Y.;
1004
Imazawa, T.; Tsunoda, S. I.; Tsutsumi, Y.; Mukai, Y., Suppression of nanosilica
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particle-induced inflammation by surface modification of the particles. Archives
1006
of Toxicology 2012, 86, 1297-1307.
1007
165. Donaldson, K.; Poland, C. A., Nanotoxicity: challenging the myth of
1008
nano-specific toxicity. Current Opinion in Biotechnology 2013, 24, 724-734.
1009
166. Adamcakova-Dodd, A.; Stebounova, L. V.; Kim, J. S.; Vorrink, S. U.; Ault, A.
1010
P.; O’Shaughnessy, P. T.; Grassian, V. H.; Thorne, P. S., Toxicity assessment of
1011
zinc oxide nanoparticles using sub-acute and sub-chronic murine inhalation
1012
models. Particle and Fibre Toxicology 2014, 11, 15.
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Table 1. Major findings in the area of ZnONP against various pathogenic fungi
Tested fungi
ZnO preparation
ZnO characteristic
Reference
Petals extract-mediated bio-synthesis
50-100 nm in diameter size
55
Candida albicans
Chitosan-linoleic acid-assisted method
Spherical shape and 30 nm in average size
56
Aspergillus flavus
Commercial purchase
A heterogeneous combination of ZnO (477
57
Trichophyton
mentagrophytes
Microsporum canis
Aspergillus fumigatus Aspergillus niger, Penicillium oxalicum, sp.,
nm) and metallic particles (7 nm) Sol-gel method
Pseudo-hexagonal shape (90-170 nm)
58
Commercial purchase
Rod-like structure and 55-85 nm in size
59
Paraconiothyrium
and
Pestalotiopsis
maculans Botrytis cinerea
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Penicillium expansum Aspergillus niger
Microwave-assisted chemical route
Spherical shape and 30-40 nm in diameter
60
Wet chemical route
Spherical and granular morphology
61
Egg white-mediated biological strategy
Spherical morphology and 10–20 nm in size
62
Wet chemical route
Spherical shape and 2-28 nm in diameter
63
Microwave-assisted chemical method
ZnONP embedded in mesoporous nanosilica
64
Chemical reduction process
76.15 nm in average size
65
Liquid phase precipitation method
40 nm in average size
66
Commercial purchase
30 nm in average diameter
67
Fusarium oxysporum Aspergillus spp. Candida albicans Fusarium sp. Aspergillus niger Fusarium oxysporum A.
alternata,
A.
niger,
B.
cinerea, F. oxysporum and P. expansum Candida krusei Sclerotinia homoeocarpa
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Aspergillus flavus, Aspergillus nidulans,
Trichoderma
Leaf broth extract-mediated
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25-40 nm in diameter size
68
cerium doped flower-shaped crystal
69
bio-synthesis
harzianum, Rhizopus stolonifer Candida albicans, A.flavus
Chemical method
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Graphic for table of contents
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Figure 1. Various types of nanoscale materials 280x165mm (150 x 150 DPI)
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Figure 2. Schematic representation of the scope of the current review 262x218mm (150 x 150 DPI)
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Figure 3. Properties of nanostructed zinc oxide particle (ZnONP). Flower-like ZnONP as shown in inset is fabricated via a facile one-pot precipitation strategy in our laboratory. 243x204mm (150 x 150 DPI)
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Figure 4. Mechanism of the photo-induced production of reactive oxygen species on the active surface of ZnONP. 184x171mm (150 x 150 DPI)
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Figure 5. Plausible mechanistic aspect of nanoparticles-assisted ROS-dependent antifungal activity of ZnONP. Nanostructed ZnO particles could adsorb on the surface of fungal cells through a specific manner and then enter into the cell by transportation or endocytosis. Once nanoparticles are inside the cytoplasm, they can interfere with energy production in mitochondria and promote the generation of ROS. ROS and zinc ions released from ZnONP may trigger many irreversible biological damages and alterations in some key genes expression level. 252x177mm (150 x 150 DPI)
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