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·108· 精细化工 FINE CHEMICALS 第 40 卷
参考文献: [21] SINGLETON V L, ROSSI J A. Colorimetry of total phenolics with
phosphomolybdic-phosphotungstic acid reagents[J]. American Journal
[1] PINTO D, BRAGA N, SILVA A M, et al. Valorization of fruit of Enology and Viticulture, 1965, 16(3): 144-158.
processing by-products[M]. Amsterdam: Elsevier, 2020. [22] GUO Y J, FAN L, WANG X Q, et al. Discussion about NaNO 2-
[2] PAILLET F L. Chestnut: History and ecology of a transformed Al(NO 3) 3-NaOH colorimetry for determination of total flavonoids[J].
species[J]. Journal of Biogeography, 2002, 29(10/11): 1517-1530. Chinese Journal of Pharmaceutical Analysis, 2002, 22(2): 97-98.
[3] ZHAO S X ( 赵守 训 ). Traditional Chinese medicine (TCM) [23] LIU X, CAI J, CHEN H, et al. Antibacterial activity and mechanism
example[M]. Beijing: China Medical and Technology Press (中国医 of linalool against Pseudomonas aeruginosa[J]. Microbial Pathogenesis,
药科技出版社), 1997. 2020, 141: 103980.
[4] YOUN U Y, SHON M S, KIM G N, et al. Antioxidant and anti- [24] KLANČNIK A, PISKERNIK S, JERŠEK B, et al. Evaluation of
adipogenic activities of chestnut (Castanea crenata) byproducts[J]. diffusion and dilution methods to determine the antibacterial activity
Food Science and Biotechnology, 2016, 25(4): 1169-1174. of plant extracts[J]. Journal of Microbiological Methods, 2010, 81(2):
[5] KANADASWAMI C, LEE L T, LEE P P H, et al. The antitumor 121-126.
activities of flavonoids[J]. In Vivo, 2005, 19(5): 895-909. [25] AMALRAJ S, MARIYAMMAL V, MURUGAN R, et al. Comparative
[6] FRIEDMAN M. Overview of antibacterial, antitoxin, antiviral, and evaluation on chemical composition, in vitro antioxidant, antidiabetic
antifungal activities of tea flavonoids and teas[J]. Molecular and antibacterial activities of various solvent extracts of Dregea
Nutrition & Food Research, 2007, 51(1): 116-134. volubilis leaves[J]. South African Journal of Botany, 2021, 138:
[7] SILVA V, FALCO V, DIAS M I, et al. Evaluation of the phenolic 115-123.
profile of Castanea sativa Mill. by-products and their antioxidant and [26] FATHIMA A, RAO J R. Selective toxicity of catechin—A natural
antimicrobial activity against multiresistant bacteria[J]. Antioxidants, flavonoid towards bacteria[J]. Applied Microbiology and Biotechnology,
2020, 9(1): 87-101. 2016, 100(14): 6395-6402.
[8] CIENFUEGOS-JOVELLANOS E, QUIÑONES M A D M, [27] WENDAKOON C, CALDERON P, GAGNON D. Evaluation of
MUGUERZA B, et al. Antihypertensive effect of a polyphenol-rich selected medicinal plants extracted in different ethanol concentrations
cocoa powder industrially processed to preserve the original for antibacterial activity against human pathogens[J]. Journal of
flavonoids of the cocoa beans[J]. Journal of Agricultural and Food Medicinally Active Plants, 2012, 1(2): 60-68.
Chemistry, 2009, 57(14): 6156-6162. [28] METROUH-AMIR H, DUARTE C, MAIZA F. Solvent effect on
[9] ITANKAR P R, LOKHANDE S J, VERMA P R, et al. Antidiabetic total phenolic contents, antioxidant, and antibacterial activities of
potential of unripe Carissa carandas Linn. fruit extract[J]. Journal of Matricaria pubescens[J]. Industrial Crops & Products, 2015, 67:
Ethnopharmacology, 2011, 135(2): 430-433. 249-256.
[10] YIN P, ZHAO S, CHEN S, et al. Hypoglycemic and hypolipidemic [29] HAYEK S A, IBRAHIM S A. Antimicrobial activity of xoconostle
effects of polyphenols from burs of Castanea mollissima Blume[J]. pears (Opuntia matudae) against Escherichia coli O157: H7 in
Molecules, 2011, 16(11): 9764-9774. laboratory medium[J]. International Journal of Microbiology, 2012,
[11] ZHANG L (张琳), GAO H Y (高慧媛), MACHANG Z S (马场正 2012: 1-6.
树 ), et al. Antidiabetic active constituents from involucre of [30] BI W, ZHOU J, ROW K H. Decaffeination of coffee bean waste by
Chestnut[J]. Journal of Shenyang Pharmaceutical University (沈阳药 solid-liquid extraction[J]. Korean Journal of Chemical Engineering,
科大学学报), 2010, 27(7): 530-532,538. 2011, 28(1): 221-224.
[12] CERULLI A, NAPOLITANO A, HOSEK J, et al. Antioxidant and in [31] DOUGHARI J, PUKUMA M, DE N. Antibacterial effects of
vitro preliminary anti-inflammatory activity of Castanea sativa Balanites aegyptiaca L. Drel. and Moringa oleifera Lam. on Salmonella
(Italian Cultivar "Marrone di Roccadaspide" PGI) burs, leaves, and typhi[J]. African Journal of Biotechnology, 2007, 6(19): 2212-2215.
chestnuts extracts and their metabolite profiles by LC-ESI/ [32] KHURI A I, MUKHOPADHYAY S. Response surface methodology[J].
LTQOrbitrap/MS/MS[J]. Antioxidants, 2021, 10(2): 278-301. Wiley Interdisciplinary Reviews: Computational Statistics, 2010,
[13] BHATTACHARYA D, BHATTACHARYA H, SAYI D S, et al. 2(2): 128-149.
Changing patterns and widening of antibiotic resistance in Shigella [33] WANG S S (王舒舒) ZHANG Y D (张议丹), SHI H G (石宏刚),
spp. over a decade (2000~2011), Andaman Islands, India[J]. et al. Optimization of Candida rugosa lipase-catalyzed synthesis of
Epidemiology & Infection, 2015, 143(3): 470-477. lignosterol oleate by response surface methodology[J]. Fine
[14] ZHANG W X, CHEN H Y, TU L H, et al. Fluoroquinolone resistance Chemicals (精细化工), 2021, 38(10): 2090-2095.
mechanisms in Shigella isolates in Shanghai, China, between 2010 [34] BOUARAB L, DEGRAEVE P, FERHOUT H, et al. Plant
and 2015[J]. Microbial Drug Resistance, 2019, 25(2): 212-218. antimicrobial polyphenols as potential natural food preservatives[J].
[15] MATHAN M M, MATHAN V I. Morphology of rectal mucosa of Journal of the Science of Food and Agriculture, 2019, 99(4): 1457-1474.
patients with shigellosis[J]. Reviews of Infectious Diseases, 1991, [35] XIE Y, YANG W, TANG F, et al. Antibacterial activities of
13(S4): S314-S318. flavonoids: Structure-activity relationship and mechanism[J]. Current
[16] AHAMED S K T, GIRI N. Shigellosis and development of multiple Medicinal Chemistry, 2015, 22(1): 132-149.
antimicrobial resistance mechanisms of Shigella spp.[J]. Biosciences [36] TIAN Y, PUGANEN A, ALAKOMI H L, et al. Antioxidative and
Biotechnology Research Asia, 2021, 18(4): 703-718. antibacterial activities of aqueous ethanol extracts of berries, leaves,
[17] LAI W, COCK I E, CHEESMAN M J. Interactive antimicrobial and branches of berry plants[J]. Food Research International, 2018,
profiles of astragalus membranaceus (Fisch.) bunge extracts and 106: 291-303.
conventional antibiotics against pathogenic and non-pathogenic [37] ZHANG L L, ZHANG L F, XU J G. Chemical composition,
gastrointestinal bacteria[J]. Pharmacognosy Communications, 2018, antibacterial activity and action mechanism of different extracts from
8(4): 158-164. hawthorn (Crataegus pinnatifida Bge.)[J]. Scientific Reports, 2020,
[18] HUANG Y F (黄燕飞). Antibacterial mechanism of Rhizoma 10(1): 1-13.
Coptidis aqueous extract against Dysentery bacillus[D]. Hefei: Anhui [38] ZHANG L (张蕾), PAN Y M (潘一鸣), WAN C L (宛春雷), et al.
Agricultural University (安徽农业大学), 2016. Antibacterial activities mechanism of extracts from Orostachys
[19] ZHANG Z Y (张子越). Study on the mechanism of purslane cartilaginous A. Bor on Salmonella typhoon and Shigella dysenteric[J].
decoction in inhibiting E.coli and Dysenteryn in vitro[D]. Taian: Journal of Jilin University (吉林大学学报), 2017, 55(6): 1621-1625.
Shandong Agricultural University (山东农业大学), 2020. [39] REN X W (任先伟), WEI X L (魏晓璐), HUANG X (黄鑫), et al.
[20] PRABAKARAN M, KIM S H, SASIREKA A, et al. Polyphenol Antibacterial activity and mechanism of walnut green husk'
composition and antimicrobial activity of various solvent extracts extract[J]. Science and Technology of Food Industry (食品工业科
from different plant parts of Moringa oleifera[J]. Food Bioscience, 技), 2015, 36(18): 93-98.
2018, 26: 23-29.