Flavonoid content and radical scavenging activity in fruits of Chinese dwarf cherry (Cerasus humilis) genotypes

Pengfei Wang , Xiaopeng Mu , Junjie Du , Yu Gary Gao , Donghai Bai , Luting Jia , Jiancheng Zhang , Haiyan Ren , Xiaofang Xue

Journal of Forestry Research ›› 2017, Vol. 29 ›› Issue (1) : 55 -63.

PDF
Journal of Forestry Research ›› 2017, Vol. 29 ›› Issue (1) : 55 -63. DOI: 10.1007/s11676-017-0418-3
Original Paper

Flavonoid content and radical scavenging activity in fruits of Chinese dwarf cherry (Cerasus humilis) genotypes

Author information +
History +
PDF

Abstract

The Chinese dwarf cherry (Cerasus humilis (Bge.) Sok.) is a small shrub with edible fruits. It is native to northern and western China. This species was included as a medicinal plant in the “Chinese Pharmacopeia” and has emerged as an economically important crop for fresh fruit consumption, processing into juice and wine and nutraceutical products as well. To gain a better understanding of flavonoid biosynthesis and help develop value added products and better cultivars with greater health benefits, we analyzed total flavonoid content (TFC), composition, and radical scavenging activities in fruit extracts of 16 Chinese dwarf cherry genotypes. Fruit peel TFC ranged from 33.5 to 72.8 mg/g RE·FW (RE: rutin equivalent, FW: fresh weight) while fruit flesh TFC ranged from 4.3 to 16.9 mg/g RE·FW. An HPLC analysis revealed that fruit extracts contained 14 flavonoids with considerable variation in their profiles across genotypes. The most abundant flavonoids in most genotypes were proanthocyanidin B1 (PA-B1), proanthocyanidin B2 (PA-B2), phloretin 2′-O-glucoside (PG), and phloretin 2′,4′-O-diglucoside (PDG). Principal component analysis showed that PG, PA-B1, and PA-B2 had large, positive factor loading values in the first principal component for each genotype. Increased scavenging activity of 2,2-diphenyl-1-picrylhydrazyl (DPPH) radicals was apparent in genotypes ‘Nongda 4’, ‘Nongda 3’, ‘Nongda 6’, ‘Wenfenli’, and ’10-32’, suggesting promising applications in the production of nutraceutical products. In summary, our results will aid in breeding, fruit processing, and developing medicinal uses of the Chinese dwarf cherry.

Keywords

Chinese dwarf cherry / Flavonoid profiles / Principal component analysis / DPPH scavenging

Cite this article

Download citation ▾
Pengfei Wang, Xiaopeng Mu, Junjie Du, Yu Gary Gao, Donghai Bai, Luting Jia, Jiancheng Zhang, Haiyan Ren, Xiaofang Xue. Flavonoid content and radical scavenging activity in fruits of Chinese dwarf cherry (Cerasus humilis) genotypes. Journal of Forestry Research, 2017, 29(1): 55-63 DOI:10.1007/s11676-017-0418-3

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Balasundram N, Sundram K, Samman S. Phenolic compounds in plants and agri-industrial by-products: antioxidant activity, occurrence, and potential uses. Food Chem, 2006, 99: 191-203.

[2]

Bertoia ML, Rimm EB, Mukamal KJ, Hu FB, Willett WC, Cassidy A. Dietary flavonoid intake and weight maintenance: three prospective cohorts of 124 086 US men and women followed for up to 24 years. BMJ, 2016, 352: i17.

[3]

Cao Q, Du JJ, Wang QJ, Du JM. A new variety of Chinese dwarf cherry (Cerasus humilis Bunge)-‘Nongda 3’. Acta Hortic Sin, 2005, 35: 370.

[4]

Challice J. Chemotaxonomic studies in the family Rosaceae and the evolutionary origins of the subfamily Maloideae. Preslia, 1981, 53: 289-301.

[5]

Chang H, Lan YP, Zhou JH, He HJ, Gao HJ, Feng CP. Isolation and identification of anthocyanins in the fruits of Prunus humilis Bunge. Food Sci, 2011, 32: 59-63.

[6]

Chen MH, McClung AM, Bergman CJ. Concentrations of oligomers and polymers of proanthocyanidins in red and purple rice bran and their relationships to total phenolics, flavonoids, antioxidant capacity and whole grain color. Food Chem, 2016, 208: 279-287.

[7]

Ding M, Feng R, Wang SY, Bowman L, Lu Y, Qian Y, Castranova V, Jiang BH, Shi X. Cyanidin-3-glucoside, a natural product derived from blackberry, exhibits chemopreventive and chemotherapeutic activity. J Biol Chem, 2006, 281(25): 17359-17368.

[8]

Du JJ, Yang HY, Chi JW. Distribution and groups of Chinese dwarf cherry (Cerasus humilis) in Shanxi province. Crop Var Resour, 1993, 2: 6-7.

[9]

Du JJ, Yang HY, Chi JW. Preliminary studies of selective breeding in Chinese dwarf cherry. China Fruits, 1993, 3: 23-24.

[10]

Du JJ, Wang PF, Zhang JC. Industrial present situation, problems and development countermeasures of Chinese dwarf cherry (Cerasus humilis) in Shanxi province. Shanxi Fruits, 2012, 2: 38-40.

[11]

Gosch C, Halbwirth H, Stich K. Phloridzin: biosynthesis, distribution and physiological relevance in plants. Phytochemistry, 2010, 71: 838-843.

[12]

Granato D, Karnopp AR, van Ruth SM. Characterization and comparison of phenolic composition, antioxidant capacity and instrumental taste profile of juices from different botanical origins. J Sci Food Agric, 2015, 95: 1997-2006.

[13]

Hassanpour H, Yousef H, Jafar H, Mohammad A. Antioxidant capacity and phytochemical properties of cornelian cherry (Cornus mas L.) genotypes in Iran. Sci Hortic, 2011, 129(3): 459-463.

[14]

Hossain MA, Rahman SMM. Total phenolics, flavonoids and antioxidant activity of tropical fruit pineapple. Food Res Int, 2011, 44(3): 672-676.

[15]

Kim MS, Park SH, Han SY, Kim YH, Lee EJ, Park JHY, Kang YH. Phloretin suppresses thrombin-mediated leukocyte-platelet-endothelial interactions. Mol Nutr Food Res, 2014, 58(4): 698-708.

[16]

Kyraleou M, Kotseridis Y, Koundouras S, Chira K, Teissedre PL, Kallithraka S. Effect of irrigation regime on perceived astringency and proanthocyanidin composition of skins and seeds of Vitis vinifera L. cv. Syrah grapes under semiarid conditions. Food Chem, 2016, 203: 292-300.

[17]

Li WD, Li O, Zhang A, Li L, Hao JH, Jin SJ, Yin SJ. Genotypic diversity of phenolic compounds and antioxidant capacity of Chinese dwarf cherry (Cerasus humilis (Bge.) Sok.) in China. Sci Hortic, 2014, 175: 208-213.

[18]

Li JE, Fan ST, Qiu ZH, Li C, Nie SP. Total flavonoids content, antioxidant and antimicrobial activities of extracts from Mosla chinensis Maxim. cv. Jiangxiangru. LWT Food Sci Technol, 2015, 64: 1022-1027.

[19]

Lin J, Tang C. Determination of total phenolic and flavonoid contents in selected fruits and vegetables, as well as their stimulatory effects on mouse splenocyte proliferation. Food Chem, 2007, 101: 140-147.

[20]

Liu M, Li XQ, Weber C, Lee HY, Brown J, Liu RH. Antioxidant and antiproliferative activities of raspberries. J Agric Food Chem, 2002, 50: 2926-2930.

[21]

Makita C, Chimuka L, Steenkamp P, Cukrowska E, Madala E. Comparative analyses of flavonoid content in Moringa oleifera and Moringa ovalifolia with the aid of UHPLC-qTOF-MS fingerprinting. South Afr J Bot, 2016, 105: 116-122.

[22]

Mattila PH, Hellström J, Karhu S, Pihlava JM, Veteläinen M. High variability in flavonoid contents and composition between different North-European currant (Ribes spp.) varieties. Food Chem, 2016, 204: 14-20.

[23]

Meir S, Kanner J, Akiri B, Philosof-Hadas S. Determination and involvement of aqueous reducing compounds in oxidative defense systems of various senescing leaves. J Agric Food Chem, 1995, 43: 1813-1817.

[24]

Mu XP, Aryal N, Du JM, Du JJ. Oil content and fatty acid composition of the kernels of 31 different cultivars of Chinese dwarf cherry [Cerasus humilis (Bge.)Sok]. J Hortic Sci Biotechnol, 2015, 90: 525-529.

[25]

Ou K, Gu LW. Absorption and metabolism of proanthocyanidins. J Funct Foods, 2014, 7: 43-53.

[26]

Qin LN, Zhang JL, Qin ML. Protective effect of cyanidin 3-O-glucoside on beta-amyloid peptide-induced cognitive impairment in rats. Neurosci Lett, 2013, 534: 285-288.

[27]

Sabli F, Mohamed M, Rahmat A, Ibrahim HA, Bakar MFA. Antioxidant properties of selected Etlingera and Zingiber species (Zingiberaceae) from Borneo Island. Int J Biochem, 2012, 6(1): 1-9.

[28]

Saeed N, Khan MR, Shabbir M. Antioxidant activity, total phenolic and total flavonoid contents of whole plant extracts Torilis leptophylla L. BMC Complement lternative Med, 2012, 12: 221.

[29]

Spencer JPE. The impact of fruit flavonoids on memory and cognition. Br J Nutr, 2010, 104(3): 40-47.

[30]

Van Acker SA, Van Den DJ, Tromp MN, Bast A. Structural aspects of antioxidant activity of flavonoids. Free Radic Biol Med, 2011, 35: 331-342.

[31]

Vrhovsek U, Rigo A, Tonon D, Mattivi F. Quantitation of polyphenols in different apple varieties. J Agric Food Chem, 2004, 52: 6532-6538.

[32]

Wang PF, Cao Q, Du JJ, Zhang JC, Mu XP. A new fresh-eating cultivar of Chinese dwarf cherry (Cerasus humilis Bunge) ‘Nongda 7’. Acta Hortic Sin, 2013, 40: 181-182.

[33]

Xu LJ, Gu JR, Chen QQ, Jiang BP, Zhang W. Quantitation of phlorizin and phloretin using an ultra high performance liquid chromatography-electrospray ionization tandem mass spectrometric method. J Chromatogr B, 2014, 960: 67-72.

[34]

Yu DJ. Yu DJ. Drupe fruit. China fruit taxonomy, 1979 1 Beijing: Agricultural Press 65

AI Summary AI Mindmap
PDF

175

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/