Structures and Antioxidant and Intestinal Disaccharidase Inhibitory

Journal of Natural Products 2015 78 (1), 77-84 ... Joseph M. Egan , Mary J. Garson , Grégory Genta-Jouve , William H. Gerwick , Harald Gross , Mary K...
0 downloads 0 Views 663KB Size
Subscriber access provided by Old Dominion University Libraries & VIVA (Virtual Library of Virginia)

Article

Structures, Antioxidant and Intestinal Disaccharidase Inhibitory Activities of A-type Proanthocyanidins from Peanut Skin Huiwen Zhang, Rigui Ye, Yumei Yang, and Chaomei Ma J. Agric. Food Chem., Just Accepted Manuscript • DOI: 10.1021/jf402518k • Publication Date (Web): 26 Aug 2013 Downloaded from http://pubs.acs.org on August 31, 2013

Just Accepted “Just Accepted” manuscripts have been peer-reviewed and accepted for publication. They are posted online prior to technical editing, formatting for publication and author proofing. The American Chemical Society provides “Just Accepted” as a free service to the research community to expedite the dissemination of scientific material as soon as possible after acceptance. “Just Accepted” manuscripts appear in full in PDF format accompanied by an HTML abstract. “Just Accepted” manuscripts have been fully peer reviewed, but should not be considered the official version of record. They are accessible to all readers and citable by the Digital Object Identifier (DOI®). “Just Accepted” is an optional service offered to authors. Therefore, the “Just Accepted” Web site may not include all articles that will be published in the journal. After a manuscript is technically edited and formatted, it will be removed from the “Just Accepted” Web site and published as an ASAP article. Note that technical editing may introduce minor changes to the manuscript text and/or graphics which could affect content, and all legal disclaimers and ethical guidelines that apply to the journal pertain. ACS cannot be held responsible for errors or consequences arising from the use of information contained in these “Just Accepted” manuscripts.

Journal of Agricultural and Food Chemistry is published by the American Chemical Society. 1155 Sixteenth Street N.W., Washington, DC 20036 Published by American Chemical Society. Copyright © American Chemical Society. However, no copyright claim is made to original U.S. Government works, or works produced by employees of any Commonwealth realm Crown government in the course of their duties.

Page 1 of 30

Journal of Agricultural and Food Chemistry

1

Structures, Antioxidant and Intestinal Disaccharidase Inhibitory Activities of

2

A-type Proanthocyanidins from Peanut Skin

3

Huiwen Zhang,†,‡ Rigui Ye,† Yumei Yang,‡ and Chaomei Ma*,†

4 5



School of Life Sciences, Inner Mongolian University, Huhhot, China ‡

Baotou Medical College, Baotou, Inner Mongolia, China

6 7 8 9 10 11 12 13 14 15 16

Corresponding Author

17

*Telephone: +86 471 4992435. Fax: +86 471 4992435. E-mail: [email protected]

18

1

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 2 of 30

19 20

ABSTRACT: Nine compounds including a new A-type proanthocyanidin trimer,

21

epicatechin-(2β→O→7,4β→8)-[catechin-(6→4β)]-epicatechin (8), and a known

22

trimer,

23

reported for peanut skin for the first time, were isolated and purified. Their structures

24

were determined by spectroscopic methods and by degradation reactions with

25

L-cysteine in acidic conditions. The DPPH radical scavenging activity and the

26

inhibitory activity on maltase and sucrase of the isolated compounds were

27

investigated. All compounds showed strong DPPH scavenging activities (EC50 < 20

28

µg/ml). Compound 8 showed the strongest inhibitory activity on maltase with an

29

IC50 value of 0.088 mg/ml, while compound 9 exhibited the strongest inhibition on

30

sucrase with an IC50 value of 0.091 mg/ml.

epicatechin-(4β→8)-epicatechin-(2β→O→7,4β→8)-catechin

(9),

being

31 32

Keywords: peanut skin, condensed tannin, proanthocyanidin trimer, inhibition on

33

intestinal disaccharidases

34 35

2

ACS Paragon Plus Environment

Page 3 of 30

Journal of Agricultural and Food Chemistry

36 37

INTRODUCTION Peanut (Arachis hypogaea L. Fabaceae), the fourth oleaginous plant in the world, is

38

known to be one of the most important economical crop owing to its wide distribution,

39

nutritional characteristics and its great application in the food industry for centuries.

40

China, being the largest producer and exporter of peanut, has a production of

41

14,385,000 tons every year and almost 60% of the peanut is consumed as feedstock

42

for oil, which is one of the main vegetal oils in Chinese daily life. However, over the

43

years, the skin of peanut is generally neglected and considered as useless byproduct

44

and, for the yearly generated peanut skin, only small part of it is used in traditional

45

Chinese medicine (TCM) to treat illness such as chronic hemorrhage and

46

bronchitis,etc.1 Early investigations have shown that the most important chemical

47

constituents of peanut skin are proanthocyanidins, particularly the A-type, in which

48

the subunits are connected by a 4→8 or 4→6 carbon bond and a 2→O→7 ether

49

bond.2-3

50

Proanthocyanidins in general have shown notable potentials of health benefits, e.g.,

51

antioxidant4-5 and insulin action potentiation6 activities. Moreover, consumption of

52

plant extract containing A-type proanthocyanidins has been shown to increase sugar

53

tolerance in type II diabetes patients.7 Disaccharidase (or α-glucosidase) inhibitors

54

could control postprandial hyperglycemia by delaying the absorption of intestinal

55

carbohydrates as does the prototype clinically used anti-diabetic α-glucosidase

56

inhibitor drug, acarbose.8

57

In our further systematic search for proanthocyanidins, 9 compounds were isolated

3

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 4 of 30

58

from the water-soluble fraction of peanut skin, including a novel trimer (compound 8)

59

and another trimer (compound 9) which is being reported from peanut skin for the

60

first time. Bioassays were carried out to test the antioxidant and intestinal

61

disaccharidase inhibitory activities of the 9 compounds from peanut skin. This paper

62

describes the isolation, structure elucidation, antioxidant activity and intestinal

63

disaccharidase inhibitory activity of these proanthocyanidins to provide scientifically

64

valuable information for better utilization of peanut skin.

65

MATERIALS AND METHODS

66

Materials and Apparatus. Solvents used for the extraction and isolation were of

67

analytical grade. L-Cysteine hydrochloride was pursed from Sigm-Aldrich

68

Corporation (St. Louis, MO, USA). High performance liquid chromatography (HPLC)

69

grade solvents used for UPLC were purchased from Fisher scientific company (New

70

Jersey, USA). The sources of other materials are: octadecylsilane (ODS, 38-63µm,

71

wako Pure Chemcial Industries, td., Osaka, Japan), Sephadex LH-20 (GE Healthcare

72

Bio-Sciences AB, Uppsala, Sweden) and high porous polymer from Mitsubishi

73

Chemical Corporation (MCI CHP 20, Mitsubishi Chemical Corporation, Tokyo,

74

Japan). TLC was performed on silica gel plates (GF254, 0.2mm, Rushan Taiyang

75

Desiccant co., Itd, China). NMR spectra were obtained from a Bruker Avance III 500

76

spectrometer with tetramethylsilane as internal standard. UPLC-DAD-ESI-MS

77

experiments were carried out on an Agilent 1290 infinity UPLC-DAD system [Agilent

78

Technologies Singapore (International) Pte. Ltd., Singapore] with an auto-sampler and

79

a photo-diode array detector (DAD) coupled with an Agilent 6340 triple Quad MS.

4

ACS Paragon Plus Environment

Page 5 of 30

Journal of Agricultural and Food Chemistry

80

Fast atom bombardment mass spectrometry (FAB-MS) were measured with a Xevo

81

G2 Q-TOF mass spectrometer (Waters). Circular dichroism (CD) was recorded with

82

JASCO-J-18 spectro-polarimeter (Waters). UV and IR. Spectra were taken using a

83

Shimadzu UV 240 spectrophotometer and a Shimadzu IR spectrophotometer,

84

respectively.

85

Plant Materials. Peanut skin used in this research was purchased from Weikang

86

drug store, Huhhot, Inner Mongolia, China and identified by the authors to be the seed

87

skin of Arachis hypogaea L. Fabaceae.

88

Extraction and Purification. Peanut skin (2kg) was soaked with 70% acetone

89

(32L) for 24h, and extracted with ultrasonication for 30 minutes. After filtration, the

90

residue was extracted once again by repeating the above procedure. The solvent was

91

evaporated under reduced pressure and the ensuing extract (276 g) fractionated by

92

chromatography over Sephadex LH-20 with ethanol (7500 ml) to give 8 fractions

93

(E1-E8). TLC and LC-MS analysis revealed that E2 contained proanthocyanidin

94

monomers, while E3 and E5 contained dimeric and trimeric proanthocyanidins

95

respectively. E2 was subjected to further chromatography on ODS, eluted with a

96

0-100% methanol/water gradient to give compounds 1 (122 mg) and 2 (63 mg).

97

Similarly E3 (27 g) was subjected to further chromatography on ODS, eluted with a

98

0-100% methanol/water gradient. The 20%-30% gradient fraction contained

99

polyphenols as indicated by TLC, and was further purified by repeated

100

chromatography on MCI gel (CHP20/P120) and Sephadex LH-20 with

101

methanol/water gradients to afford compounds 3-6. Compound 3 (780 mg) was

5

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 6 of 30

102

recrystallized from water as colorless needles, while 4 (56 mg), 5 (25 mg) and 6 (68

103

mg) were obtained as amorphous powders. Furthermore, E5 (20 g) was purified in the

104

same way as described for E3 to obtain compounds 7 (145 mg), 8 (54 mg) and 9 (72

105

mg) as amorphous powders.

106

Compound 1-2: amorphous powder, MS (ESI) m/z 289 ([M-H]-, 100). Compound

107

3-6: colorless needles (3) or amorphous powder (4-6), MS (ESI) m/z 575 ([M-H]-,

108

100), NMR see supporting material. Compound 7-9: amorphous powder, MS (ESI)

109

m/z 863 ([M-H]-, 100), NMR see supporting material.

110

Degradation of Proanthocyanidin Trimers. L-cysteine-induced degradations

111

of the trimeric proanthocyanidins were carried out according to the reported

112

methods9,10 with modification. The trimer and cysteine•HCl (1:2) were dissolved in

113

methanol in a centrifuge tube. The tube was tightly sealed and heated at 65 ºC for 24 h.

114

The reaction mixture was filtered though a 0.22 µm microfilter and analyzed by

115

UPLC-DAD-EIS-MS in comparison with standard 3 (procyanidins A1), and standards

116

catechin-cystein and epicatechin-cystein which were recently prepared in our earlier

117

work.11

118

DPPH Radical Scavenging Assay. We examined the DPPH radical scavenging

119

activity with the method described by Ma et al.12 The antioxidant activities were

120

examined at four different concentration (2.5, 5, 10 and 20 µg/ml) in 96-well plates.

121

10 µl of a compound solution (in DMSO) and 190 µl of DPPH solution

122

(1,1-diphenyl-2- picrylhydrazyl radical in ethanol, 0.1 mM) were added to each well.

123

For the color control, 10 µl of compound solution and 190 µl of ethanol were mixed in

124

each well. In the control wells, 10 µL DMSO and 190 µL DPPH were added. After 20

125

min at room temperature in the dark, the absorbance (A) was measured at 520 nm, and

6

ACS Paragon Plus Environment

Page 7 of 30

Journal of Agricultural and Food Chemistry

126

the activity was calculated as follow:

127

Effect %=100×[Acontrol - (Acompound -Acolor)] /Acontrol

128

IC50, the concentration of a sample that scavenged 50% of DPPH radical was obtained

129

from a curve of effect % versus sample concentration.

130

Determination of Inhibitory Activity against Maltase and Sucrase. To

131

determine the maltase and sucrase inhibitory activities of samples, we prepared the

132

stocking intestinal disaccharidases as reported before.11 The assay was carried out as

133

following: 3 µl of sample (dissolved by DMSO), 7µl of disaccharidase [the stocking

134

enzyme was diluted 10 times by phosphate buffer (pH 7)] and 20 µl maltose solution

135

(2 mg/ml) were added in each well of a 96-well plate to test the inhibition activity on

136

maltase. 3 µl DMSO was added instead of samples in the control wells. After 20

137

minutes of incubation at 37 ºC, 10 µl of DMSO and the glucose detecting reagents of

138

an assay kit from Nanjing Jiancheng Bio Company (Nan Jing, China) were added and

139

the absorbances (A) were measured at 520 nm with a plate reader. The activity was

140

calculated as follows:

141

Inhibition %=100 × [(Acontrol-Asample)] ⁄Acontrol

142

The inhibition activity on sucrase was tested in the same procedure as above,

143

except that 20 µl of sucrose instead of maltose was used as the substrate and the

144

concentration of the working enzyme solution was trice of that for the maltase assay.

145

RESULTS AND DISCUSSION

146

Proanthocyanidins in Peanut Skin. Peanut skin was extracted with 70 % (v/v)

147

acetone and the extract was fractionated with Sephadex LH-20 column

148

chromatogaphy. The fraction obtained from 95% ethanol eluted part was then

149

subjected to repeated chromatography on ODS and MCI eluted with aqueous

7

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 8 of 30

150

methanol. Compounds 1-9 were obtained and their structures were determined by

151

interpretation of their spectral data and by L-cysteine-induced degradations (Figure 1).

152

Compounds 1 and 2 were identified as catechin and epicatechin by comparison

153

with authentic standards in UPLC-DAD-ESI-MS. Compounds 3~6 were identified as

154

procyanidins A1, A2, epicatechin-(2β→O→7,4β→8)-ent-epicatechin, and

155

epicatechin-(2β→O→7,4β→6)-catechin by comparison of their spectral data with

156

those reported in literature.3

157

Structural Elucidation of Compound 7. Compound 7 [circular dichroism (CD):

158

∆ε272.6 -3.93, ∆ε231 +21.57] was obtained as a white amorphous powderIt showed a

159

molecular formula of C45H36O18 from the negative FAB-MS (m/z [M-1]- 863.1823,

160

which revealed that 7 was a trimeric proanthocyanidin. Degradation of 7 (Scheme 1)

161

produced catechin and another compound with the poseudo-molecular weight of 694

162

in negative ESIMS, suggesting it is composed by an A-type procyanidins and a

163

catechin. By comparison of its 1H and 13C NMR spectral data with those preciously

164

reported, 10-11 compound 7 was confirmed as cinnamtannin D-1.14

165

Structural Elucidation of Compound 8. Compound 8 [UV (MeOH) λmax ( log

166

ε): 280 (4.13) nm; IR (ν, KBr, cm-1): 3350, 1610, 1520, 1450, 1290, 1150, 1100;

167

CD:∆ε273.8 -2.58, ∆ε239.4 +16.07] was obtained as a white amorphous powder. It

168

showed a molecular formula of C45H36O18 from the negative HRFAB-MS (m/z

169

[M-1]- 863.1823), which revealed that 8 was a trimeric proanthocyanidin. The

170

presence of three flavanyl units was also indicated by 13C resonances at δ 100.88

171

(C-2), 67.49 (C-3), 29.46 (C-4), 84.21 (C-2′), 68.02 (C-3′), 28.58 (C-4′), 77.21

8

ACS Paragon Plus Environment

Page 9 of 30

Journal of Agricultural and Food Chemistry

172

(C-2″), 67.49 (C-3″), 37.06 (C-4″) (Table 1), arising from the heterocyclic rings

173

(rings C, I and F). The existence of an A-type proanthocyanidin unit was supported

174

by the downfielded C-2 signal at δ 100.88 (Table 1) and an isolated AB coupling

175

system at δ 4.20 (br.s, H-3) and 4.35 (br.s, H-4) (C-ring) in 1H NMR spectrum. The

176

two flavan-3-ol units of the A-type entity in 8 were deduced to be linked through C4

177

(C ring) and C-8′ (D ring) based on the long-range correlations of H-4 (C-ring) at δ

178

4.35 with C-7′ at δ 150.1, C-8′ at δ 107.33, and C-9′ at δ 154.44 in the Heteronuclear

179

multiple-bond correlation (HMBC) spectrum. The long-range correlations of H-4″

180

(I-ring) at δ 4.63 with C-5′ at δ 149.29 , C-6′ at δ 120.08, and C-7′ at δ 150.1 in the

181

HMBC indicated the C-4″→C-6′ linkage (Figure 2). The C-4″→C-6′ linkage was

182

further confirmed by its complex NMR spectra arisen from conformational isomers

183

due to the steric hindrance for the free rotation of the epicatechin unit.

184

The terminal flavanol unit was determined to be 2,3-cis (I ring) from the singlet

185

at δ 5.33 (1H, s, H-2″) and the corresponding carbon at δ 77.21(C-2″), 4 while the

186

middle unit (the doubly-substituted terminal unit ) was deduced to have a 2,3-trans

187

configuration (F ring) from the proton signal at δ 4.79 (1H, d, J=6.5, H-2′) and the

188

corresponding carbon at δ 84.21 (C-2′) in 13C NMR.4

189

Treatment of 8 with cysteine•HCl in methanol (Scheme 2) yielded compound 3,

190

which was identified to be procyanidin A1 by direct comparison of its 1H and 13C

191

NMR spectral data with those preciously reported.4 The cystein conjugate derived

192

from the upper flavan-3-ol unit in the degradation of 8, was identified as

193

epicatechin-cystein by direct comparison by UHPLC-MS with a standard compound

9

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

194 195

Page 10 of 30

which had been prepared and reported in our laboratory recently11 (Figure 3). Of the three trimeric proanthocyanidins (7-9) with the same molecular weight (864),

196

the 1HNMR spectrum of 8 was observed to be relatively complicated compared to

197

those of 7 and 9. This relative complication is alludable to the presence of conformers

198

in 8, due to hindered free rotation across its 4″→6′ linkage, which the structures of 7

199

and 9 conspicuously lack.

200

The diagnostic high amplitude positive cotton effect at 239 nm wavelength of the

201

CD spectrum of 8 informed the β-orientation assignment of the interflavonoid

202

bonds.15 Consequently, the structure of 8 was determined to be epicatechin-

203

(2β→O→7,4β→8)-[catechin-(6→4β)]-epicatechin. This is a branched A-type

204

proanthocyanidin with C4-C6, C4-C8 linkages to the same A ring of a flavanyl unit.

205

Structural Elucidation of Compound 9. Compound 9 (CD: ∆ε277.8 -4.67, ∆ε240

206

+5.39, ∆ε228.2 +2.86) was obtained as a white amorphous powder. It showed a

207

molecular formula of C45H36O18 from the negative FAB-MS (m/z [M-1]- 863.1823,

208

which revealed that 9 was a trimeric proanthocyanidin. Treatment of 9 with

209

cysteine•HCl in methanol yielded procyanidin A1 and epicatechin-cystein (Scheme 3,

210

Figure 3), the same results as for the degradation of compound 8. The result indicated

211

that compound 9 also composed of proanthocynidin A1 and epicatechin with

212

epicatechin being its upper flavan-3-ol unit. It was thus deduced that compounds 8

213

and 9 possess different linking positions between procyanidin A1 and epicatechin. The

214

epicatechin was determined to be linked through C4→C8 with proanthocynidin A1,

215

by direct comparison of the 1H and 13C NMR spectral data of 9 with references.16-17

10

ACS Paragon Plus Environment

Page 11 of 30

Journal of Agricultural and Food Chemistry

216

The high amplitude positive Cotton effect at a wavelength of 240 nm in the CD

217

spectrum of 9 confirmed its β-orientated interflavonoid bond. Compound 9 was thus

218

identified as epicatechin-(4β→8)-epicatechin-(2β→O→7,4β→8)-catechin, which is

219

reported from peanut skin for the first time.

220

Antioxidant activity. As shown in Table 2, all the isolated compounds, 1−9

221

demonstrated strong antioxidant activities. They scavenged 50% of the DPPH radical

222

at a concentration less than or near to10 µg/ml. The dimeric and trimeric

223

proanthocyanidins showed radical scavenging activity with the potencies similar to

224

those of the monomers, catechin and epicatechin, which are well known potent

225

anti-oxidants.

226

Inhibitory Activity Against Maltase and Sucrase. As shown in Table 3, five

227

compounds showed maltase inhibitory activity (>50% inhibition), and four

228

compounds showed sucrase inhibitory activity at concentrations of 1 mg/ml.

229

Compound 8, epicatechin-(2β→O→7,4β→8)-[catechin-(6→4β)]-epicatechin, showed

230

the strongest inhibition against maltase, with an IC50 value of 0.088 mg/ml. The

231

lowest IC50 value (0.091 mg/ml) observed in the sucrase inhibition experiment was

232

exhibited by 9, epicatechin-(4β→8)-epicatechin-(2β→O→7,4β→8)-catechin, making

233

it the strongest sucrase inhibitor of all the samples. It can be deduced from the results

234

that 8 and 9 have notable degrees of specificity for maltase and sucrase respectively.

235

As the component units of 8 and 9 are essentially the same, the variation in their

236

biological activities as by their observed differing enzyme specificities is alludable to

237

their different unit-connectivity, impacting chirality (though of same configuration) at

11

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 12 of 30

238

different positions. All the 3 trimeric proanthocyanidins showed inhibitory activities

239

on maltase and sucrase. Their inhibitory activities were greater than those of their

240

component dimeric proanthocyanidins. Further investigations are required to elucidate

241

the detail structure-activity relationships of A-type proanthocyanidins on intestinal

242

disaccharidases.

243

Degradation of the trimeric proanthocyanidins was carried out with a mild reagent,

244

L-cysteine, which also is relatively safe compared to the conventionally used thiolytic

245

degradation reagent, benzyl mercaptan with a strong irritating smell. LC-MS analysis

246

of the products of L-cysteine-induced degradation clearly indicated the component

247

units and their linking order in the structures of pranthocyanidin polymers. Some

248

L-cysteine conjugates of catechin/epicatechin and low-molecular-weight B-type

249

proanthocyanidins have been reported to have antioxidant,10 glucosidase inhibitory,11

250

and neuroprotective activities.18 However, no literature could be found for any A-type

251

proanthocyanidin-cysteine conjugate. In the present research, we detected an A-type

252

proanthocyanidin-cysteine conjugate for the first time from the degradation product of

253

cinnamtannin D-1 (7). Preparation, purification and bioactivity evaluation of novel

254

A-type proanthocyanidin-cysteine conjugates are planed to be carried out in our group

255

in the near future.

256

Proanthocyanidins are rich in hydrophobic aromatic rings and hydrophilic hydroxyl

257

groups, which could interact with biological molecules, especially proteins. It is

258

generally believed that the activity of proanthocyanidins becomes stronger as the

259

number of flavanol units increases. The result of our study confirmed that

12

ACS Paragon Plus Environment

Page 13 of 30

Journal of Agricultural and Food Chemistry

260

proanthocyanidins have strong antioxidant activities, which could provide protection

261

against oxidative stress and thereby prevent a variety of human diseases so

262

associated.19-21

263

In summary, we have isolated nine compounds, including one novel trimeric A-type

264

proanthocyanidin (8), and a known trimeric A-type proanthocyanidin (9) that was

265

reported for the first time for peanut skin. All these compounds showed antioxidant

266

activity and the 2 trimeric A-type proanthocyanidins, 8 and 9 showed considerable

267

inhibitory activities on the intestinal disaccharidases, maltase and sucrase.

268 269

ACKNOWLEDGMENTS

270

We are grateful to the Government of Inner Mongolia for financial support and to Mr.

271

Menghe (Inner Mongolian University, Huhhot, China) for measurement of NMR

272

spectra. We thank Dr.. Lijun (School of Pharmaceutical Sciences, Peking University,

273

Beijing, China) for performing the HRESI-MS.

274 275

ASSOCIATED CONTENT

276

Supporting information

277

Additional figures. This material is available free of charge via the Internet at

278

http://pubs.acs.org.

279 280

13

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 14 of 30

281

REFERENCES

282

(1) Jiansu Xin Medical College, 1977. Dictionary of Chinese MateriaMedica

283

Shanghai Science and Technology Publisher (JapaneseTranslation), pp. 2648−2649.

284

(2) Tatsuno, T.; Jinno, M.; Arima,Y.; Kawabata, T.; Hasegawa, T.; Yahagi, N.; Takano,

285

F.; Ohta, T. Anti-inflammatory and Anti-melanogenic Proanthocyanidin Oligomers

286

from Peanut Skin. Bio. Pharm .Bull. 2012, 35, 909−916.

287

(3) Lou, H.; Yamazaki, Y.; Sasaki, T.; Uchida, M.; Tanaka, H.; Oka, S. A-type

288

proanthocyanidins from peanut skins. Phytochemistry. 1999, 51, 297−308.

289

(4) Lou, H. X.; Yuan, H. Q.; Ma, B.; Ren, D. M.; Ji. M.; Oka, S. Polyphenols from

290

peanut skins and their free radical-scavenging effects. Phytochemistry. 2004, 65,

291

2391−2399.

292

(5) Monagas, M.; Garrido, I.; Lebron-Aguilar, R.; Gomez-Cordoves, M. C.;

293

Rybarczyk, A.; Amarowicz, R.; Bartolome, B. Comparative flavan-3-ol profile and

294

antioxidant capacity of roasted peanut, hazelnut, and almond skins. J. Agric. Food

295

Chem. 2009, 57, 10590−10599.

296

(6) Anderson, R.; Broadhurst, C.; Polansky, M.; Schemidt, W.; Khan, A.; Flanagan, V.;

297

Schoene, N.; Graves, D. Isolation and characterization of polyphenol type-A polymers

298

from Cinnamon with insulin-like biological activity. J. Agric. Food Chem. 2004, 52,

299

65-70.

300

(7) Wilson, T.; Luebke, J.; Morcomb, E.; Carrell, E.; Leveranz, M.; Kobs, L.; Schmidt,

301

T.; Limburg, P.; Vorsa, N.; Singh, A. Glycemic responses to sweetened dried and raw

302

cranberries in humans with type 2 diabetes. J. Agric. Food Chem. 2004, 52, 65-70.

14

ACS Paragon Plus Environment

Page 15 of 30

Journal of Agricultural and Food Chemistry

303

(8) Dimitriadis, G.; Tessari, P.; Go, V.; Gerich, J. Effects of the disaccharidase

304

inhibitor acarbose on meal and intravenous glucose tolerance in normal man.

305

Metabolism 1982, 31, 841-843.

306

(9) Torres, J. L.; Lozano, C.; Julia, L.; Sa′ nchez-Baeza, F. J.; Anglada, J. M.;

307

Centellesc J. J.; Cascante, M. Cysteinyl-flavan-3-ol conjugates from grape

308

procyanidins. Antioxidant and antiproliferative properties. Bioorg. Med. Chem. 2002,

309

10, 2497−2509.

310

(10) Fujii, H.; Nakagawa,T.; Nishioka,H.; Sato, E.; Hirose, A.; Ueno, Y.; Sun, B. X.;

311

Yokozawa, T.; Nonaka. G. I. Preparation, characterization, and antioxidative effects of

312

oligomeric proanthocyanidin-L-cysteine complexes. J. Agric. Food Chem. 2007, 55,

313

1525−1531.

314

(11) Meng, H.C.; Ma, C. M. Flavan-3-ol-cysteine and acetylcysteine conjugates from

315

edible reagents and the stems of Cynomorium songaricum as potent antioxidants.

316

Food Chem. 2013, 141, 2691-2696.

317

(12) Ma, J. N.; Wang, S. L.; Zhang, K.; Wu, Z. G.; Hattori, M.; Chen, G. L.; Ma. C. M.

318

Chemical components and antioxidant activity of the peels of commercial

319

apple-shaped pear (fruit of pyrus pyrifolia cv. pingguoli). J. Food Sci. 2012, 10,

320

1097−1102.

321

(13) Zhang, C. F.; Sun, Q.; Wang, Z. T.; Hattori, M. One new A-type

322

proanthocyanidin trimer from Lindera aggregata (Sims) Kosterm. Chin. Chem. Lett.

323

2003, 14, 1033−1036.

324

(14) Killday, K. B.; Davey, M. H.; Glinski, J. A.; Duan, P.G.; Veluri, R.; Proni, G.;

15

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 16 of 30

325

Daugherty, F. J.; Tempesta, M. S. Bioactive A-type proanthocyanidins from

326

Cinnamomum cassia. J. Nat. Prod. 2011, 74, 1833−1841.

327

(15) Barrett, M.; Klyne, W.; Scopes, P.; Fletcher, A.; Porter, L.; Haslam, E.Plant

328

proanthocyanidins. Part 6. Chiroptical studies. Part 95. Circular dichroism of

329

procyanidins. J.Chem. Soc., Perkin Trans. I, 1979, 2375-2377.

330

(16) Morimoto, S.; Nonaka, G.; Nishioka, I. Tannins and related compounds. LX.

331

Isolation and characterization of proanthocyanidins with a doubly-linked unit from

332

Vaccinium vitis-idaea L. Chem. Pharm. Bull. 1988, 36, 33−38.

333

(17) Ho, K. Y.; Tsai, C. C.; Huang, J. S.; Chen, C. P.; Lin. T. C.; Lin, C. C.

334

Antimicrobial activity of tannin components from Vaccinium vitis-idaea L. J. Pharma.

335

Pharmacol. 2001, 53, 187−191.

336

(18) Torres, J. L.; Lozano, C;Maher, P. Conjugation of catechins with cysteine

337

generates antioxidant compounds with enhanced neuroprotective activity.

338

Phytochemistry, 2005, 66, 2032−2037.

339

(19) Shahidi, F. Natural antioxidants-and overview. In F. Shahidi (Ed.), Natural

340

antioxidants: Chemistry, health effects, and application. Champaign, IL: The

341

American Oil Chemists’ Society. 1997, pp. 1−10

342

(20) Shahidi, F. Beneficial health effects and drawbacks of antinutrients and

343

phytochemicals in foods. In F. Shahidi (Ed.), Antinutrients and phytochemicals in

344

food (ACS symposium series 662). Washington, DC: American ChemicalSociety.

345

1997, pp. 1−9

346

(21) Ren, Y.; Chen, X. Distribution, bioactivities and therapeutical potentials of

16

ACS Paragon Plus Environment

Page 17 of 30

Journal of Agricultural and Food Chemistry

347

pentagalloylglucopyranose. Curr. Bioact. Compd. 2007, 3, 81−89.

348

17

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

349

Page 18 of 30

Figure Captions

350 351

Figure 1. Structures of compounds 1‒9 from peanut skin.

352

Scheme 1. Degradation of compound 7 with L-cysteine HCl. Figure 2. Key correlations observed in the HMBC and 1H-1H COSY spectra of 8. ) 1H-1H COSY (

353

HMBC (

)

354

Scheme 2. Degradation of compound 8 with L-cysteine HCl.

355

Scheme 3. Degradation of compound 9 with L-cysteine HCl.

356

Figure 3. Extracted ion chromatograms of the LC-MS of cysteine-induced

357

degradation of 7 (A), 8 (B), and 9 (C), in comparison with catechin (D), procyanidin

358

A1 (E) and epicatechin-cysteine (F).

359

Table 1. NMR spectral Data of Compound 8 in CD3OD.

360

Table 2. DPPH Radical Scavenging Activities of Proanthocyanidins from Peanut

361

Skin.

362

Table 3. The Maltase and Sucrase Inhibitory Activities of Compounds from Peanut

363

Skin.

364

18

ACS Paragon Plus Environment

Page 19 of 30

Journal of Agricultural and Food Chemistry

OH 13 8

HO

9

7

OH

14

12 11

O

15

2 16

OH 13 8

HO

O

9

7

OH OH

14

12 11

13

15

2

8

HO

16 10

5

7'

10

5

OH

OH

4

12'

13'

OH

10' 4'

2'

11'

3' 14'

OH

OH

16'

HO

15'

2

1

5'

O HO

6'

8' 9'

15

3

6

OH

4

2

O

OH

4

OH

16

3

6

O

9

7

10

5

OH

14

12 11

3

6

3 OH

OH 13

HO

8

7

O

9

13

15

8

HO

3

6 10

5

4

13'

12'

11'

HO

14'

15

4

8' 9'

5'

HO

O

10'

5'

2'

4'

OH

10'

7'

6'

OH 6'

11' 2'

O

OH

14'

4'

OH

OH

HO

8 7

O

9

11

2

13

OH

14

12

6 10

5

HO

15

OH

4

OH

O HO

13'

12'

HO

7'

11'

4'

8''

OH O

HO

13''

12''

11''

2''

16''

8'

OH O HO

13'

11''

12''

12'

11'

10' 4'

2'

OH

14'

16'

OH

9'

O

12'

2'

13' 14'

OH

3'

6' 5'

15''

10'

4'

HO

13''

12''

3''

14''

HO

8

16''

OH

10''

11'' 2''

OH

15'

7'' 6'' 5''

9''

O

15'

OHO 8''

OH

OH

OH

11' 16'

13''

3'

HO

8'

14''

OH 16''

5''

OH

2''

OH

4

3''

6' 5'

9'

4''

OH

7'

O

10'' 4''

10

OH HO 7'

9''

15''

7

365 366

4

HO O

15

3 5

8''

5''

2

6

7''

15

OH

6''

10'' 3''

14''

HO

11

2 3

10

5

7''

9''

15'

O

9

6

OH OH

2'

8

7

6'' 16

5' 10'

16'

HO

6'

OH

O

9

7

11 16

OH

14

12

9'

3' 14'

13

O

8'

OH

8

OH

14

12

16 3

OH

OH

6

5 13

15' 14'

13'

15'

4

16'

12'

OH

OH

16'

HO

15'

11'

3'

3'

OH

16'

13'

12'

10

7'

O

4'

9

11

2 3

5

9'

OH

10'

2'

7

O

6

O

8'

OH

3'

HO

OH

4

5'

9'

HO

10

5 6'

O

8

16

15

3

6

7'

8'

OH

11

2

HO

16

O

OH

O

9

7

16

OH

OH

14

12

14

12

11

2

OH

14

12

13

OH

4''

OH

15''

9

Figure 1. Structures of compounds 1-9 from peanut skin.

19

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 20 of 30

367 OH

OH

OH

OH HO

HO

O OH

O

OH

O

L-cysteine HCl

OH OH

HO

O

O

OH

HO

HO

OH

HO

OH O

OH

HO O

OH

O

+

OH

OH

OH S OH H2N

OH

catechin COOH

HO OH

HO

7

368 369

Scheme 1. Degradation of compound 7 with L-cysteine HCl.

20

ACS Paragon Plus Environment

Page 21 of 30

Journal of Agricultural and Food Chemistry

370 OH OH OH HO

B

O

A

C 4

OH

G HO

3

O

OH

8'

F

H

E

H OH

D

O 9'

2"

4" 6'

H

HO

I O

10'

OH

H OH

OH

2'

OH

HO

Figure 2. Key correlations observed in the HMBC and 1H-1H COSY spectra of 8. 371

HMBC (

) 1H-1H COSY (

)

372

21

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 22 of 30

373 OH

OH

OH OH

HO

OH

O

HO OH

HO O

OH

OH

OH O

HO

L-cysteine HCl

OH OH

HO

O

OH

OH O

OH

OH

S

HO H2N

OH HO

COOH

OH

procyanidins A1

374 375

O

+

OH

OH

HO

OH

O

epicatechin-cysteine

Scheme 2. Degradation of compound 8 with L-cysteine HCl.

22

ACS Paragon Plus Environment

Page 23 of 30

Journal of Agricultural and Food Chemistry

376 OH OH OH

HO

OH

OH OH

OH

HO

O OH

L-cysteine HCl

O

OH

O O

OH

HO OH

HO

OH

O OH

+

HO

HO HO

O

OH

OH

377

OH

O

OH

OH HO

OH

procyanidins A1

OH

S

H2N

COOH

epicatechin-cysteine

Scheme 3. Degradation of compound 9 with L-cysteine HCl.

378

23

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 24 of 30

379 380

Figure 3. Extracted ion chromatograms of the LC-MS of cysteine-induced

381

degradation of 7 (A), 8 (B), and 9 (C), in comparison with catechin (D), procyanidin

382

A1 (E) and epicatechin-cysteine (F).

383 384 385

24

ACS Paragon Plus Environment

Page 25 of 30

Journal of Agricultural and Food Chemistry

386

25

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

387

Page 26 of 30

Table 1. NMR spectral Data of Compound 8 in CD3OD Ring

No.

13

1

C

2 3 4

100.88 67.14 29.46

—— 4.20, br.s 4.35, br.s

A

5 6 7 8 9 10 11 12 13 14 15 16

156.54 96.05 157.82 98.35 156.54 104.07 131.86 116.14 146.09 146.94 116.01 120.19

D —— 6.10, br.s —— 5.96, br.s —— —— E —— 7.18, br.s —— —— 6.82, m 7.06, d (7.8)

B

C

H

Ring No . F 2′ 3′ 4′ 5′ 6′ 7′ 8′ 9′ 10′ 11′ 12′ 13′ 14′ 15′ 16′

13

1

Ring No.

13

1

84.21 67.49 28.58

4.79, d (6.5) 4.15, m 2.76, dd (16.1, 7.5) 2.50, dd (16.1, 7.5) —— —— —— —— —— —— —— 6.87, br.s —— —— 6.10, br.s 6.77, m

I

2″ 3″ 4″

77.21 73.34 37.06

5.33, br.s 4.09, m 4.63, br.s

G

5″ 6″ 7″ 8″ 9″ 10″ 11″ 12″ 13″ 14″ 15″ 16″

159.21 96.45 154.55 99.18 158.18 99.18 132.93 115.7 145.66 146.45 119.22 120.19

—— 6.04, br.s —— 5.93, br.s —— —— —— 6.94, br.s —— —— 6.78, m 6.74, m

C

149.29 109.35 150.1 107.33 154.44 103.93 130.43 115.26 145.91 146.85 120.59 120.08

H

H

C

H

388 389

26

ACS Paragon Plus Environment

Page 27 of 30

Journal of Agricultural and Food Chemistry

390

27

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

Page 28 of 30

391 392

Table 2. DPPH Radical Scavenging Activities of Proanthocyanidins from Peanut Skin sample

393 394 395

Effect

EC50 (µg/ml)

%

20 (µg/ml)

10 (µg/ml)

5 (µg/ml)

2.5 (µg/ml)

1 2 3 4

83.01 94.52 94.02 86.91

61.69 74.33 63.14 58.93

37.42 42.07 29.93 28.80

31.88 34.59 26.28 20.00

8.21 6.12 8.55 9.71

5

79.43

47.29

30.06

15.28

11.36

6 7

93.39 93.33

67.29 54.21

47.10 26.79

38.61 19.43

5.68 9.74

8

84.21

53.01

37.61

34.02

8.61

89.37 85.66 48.49 20.56 9 Catechin (1), a known anti-oxidant was used as a positive control.

6.32

28

ACS Paragon Plus Environment

Page 29 of 30

Journal of Agricultural and Food Chemistry

396

Table 3. The Maltase and Sucrase Inhibitory Activities of Compounds from Peanut

397

Skin Inhibition% on IC50 on Inhibition% on IC50 on Sucrase Maltase Maltase Sucrase (mg/ml) at 1 mg/ml (mg/ml) at 1 mg/ml >1 1 44 45 >1 0.088 2 60 54 0.57 >1 3 >1 47 44 >1 4 >1 44 31 >1 >1 5 47 33 0.61 >1 6 67 42 0.78 0.66 7 62 55 0.088 0.41 8 83 61 0.54 0.091 9 79 64 0.0054 0.0074 Acarbose* nt nt Acarbose*, a known α–glucosidase inhibitor, was used as a positive control. nt: not tested, as this concentration is too high for the this very potent α–glucosidase inhibitor, acarbose. Sample

398 399 400 401

29

ACS Paragon Plus Environment

Journal of Agricultural and Food Chemistry

402 403

Page 30 of 30

Graphic Abstract

404 405 406 407 408 409

30

ACS Paragon Plus Environment