Combinatorial Chemistry & High Throughput Screening

Author(s): Ling-Na Li*

DOI: 10.2174/0113862073270666231206093528

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Fructus mori: An Updated Review on Botany, Phytonutrient, Detection, Bioactivity, Quality Marker, and Application

Page: [12 - 32] Pages: 21

  • * (Excluding Mailing and Handling)

Abstract

Background: Fructus mori (mulberry) is not only a delicious fruit with rich phytonutrients and health functions but also a medicinal plant with many clinical therapeutic values for tonifying kidneys and consolidating essence, making hair black and eyes bright.

Methods: The related references about F. mori in this review from 1996 to 2022 had been collected from both online and offline databases, including PubMed, Elsevier, SciFinder, Willy, SciHub, Scopus, Web of Science, ScienceDirect, SpringerLink, Google Scholar, Baidu Scholar, ACS publications, and CNKI. The other information was acquired from ancient books and classical works about F. mori.

Results: An updated summary of phytonutrients from F. mori was listed as fellows: flavonoids (1-20) (23.5%), phenolic acids (21-34) 16.5%), alkaloids (35-75) (48.2%), polysaccharides (76- 78) (3.5%), other compounds (79-85) (8.3%). The above chemical components were detected by TLC, UV-Vis, HPLC, GC-MS, and AAS methods for their quality standards. The various bioactivities (hepatoprotective, immunomodulatory, anti-oxidant, hypoglycemic, anti-cancer, and other activities) of mulberry are summarized and discussed in this review, which laid an important basis for analyzing their mechanisms and quality markers. This review summarized its applications for vinegar, wine, yogurt, drink, jelly, and sweetmeat in food fields, and the existing problems and future development directions are also discussed in this review.

Conclusions: This review made a comprehensive description of F. mori, including botany, phytonutrient, detection, bioactivity, quality marker, and application. It will not only provide some important clues for further studying F. mori, but also provide some valuable suggestions for in-depth research and development of F. mori.

Keywords: Fructus mori, botany, phytonutrient, bioactivity, quality marker, tonifying kidneys, flavonoids.

Graphical Abstract

[1]
Li, S.; Jin, C.; Gao, P.; Zhou, W.; Xiao, R.; Zhang, Z.; Liao, W.; Ding, K. A novel pectin-like glycopeptide isolated from the fruit of Fructus mori impedes aggregation and production of Aβ42. J. Agric. Food Chem., 2022, 70(32), 9908-9918.
[http://dx.doi.org/10.1021/acs.jafc.2c03823] [PMID: 35924862]
[2]
Jiang, Y.; Li, B.; Guo, X.J. Extraction and determination of polysaccharides from Xinjiang black mulberry. Shipin Kexue, 2008, 29, 224-226.
[3]
Ping-Ping, W.; Wen-Duo, W.; Chun, C.; Xiong, F.; Rui-Hai, L. Effect of Fructus Mori. bioactive polysaccharide conjugation on improving functional and antioxidant activity of whey protein. Int. J. Biol. Macromol., 2020, 148, 761-767.
[http://dx.doi.org/10.1016/j.ijbiomac.2020.01.195] [PMID: 31978477]
[4]
Wang, X.; Deng, Q.F.; Chen, H.G.; Zhou, X. [Characterization and activity effect on ADH of polysaccharides from Mori Fructus]. Zhongguo Zhongyao Zazhi, 2017, 42(12), 2329-2333.
[PMID: 28822188]
[5]
Liu, Y.; Qin, L.L.; Lan, Y.Y. 'Research progress on chemical constituents, phrmcological effects and quality markers of Fructus mori. Chongqing Med., 2021, 50, 1063-1067.
[6]
Peng, K.X.; Zheng, Y.H.; Chen, X.M. Research progress of Fructus mori active ingredients and their usage in modern food development. J. Huaiyin Inst. Technol., 2021, 30, 9-14.
[7]
Wang, C.; Cheng, W.; Bai, S.; Ye, L.; Du, J.; Zhong, M.; Liu, J.; Zhao, R.; Shen, B. White mulberry fruit polysaccharides enhance endothelial nitric oxide production to relax arteries in vitro and reduce blood pressure in vivo. Biomed. Pharmacother., 2019, 116, 109022.
[http://dx.doi.org/10.1016/j.biopha.2019.109022] [PMID: 31154271]
[8]
He, X.; Fang, J.; Ruan, Y.; Wang, X.; Sun, Y.; Wu, N.; Zhao, Z.; Chang, Y.; Ning, N.; Guo, H.; Huang, L. Structures, bioactivities and future prospective of polysaccharides from Morus alba (white mulberry): A review. Food Chem., 2018, 245, 899-910.
[http://dx.doi.org/10.1016/j.foodchem.2017.11.084] [PMID: 29287458]
[9]
Ercisli, S.; Orhan, E. Chemical composition of white (Morus alba), red (Morus rubra) and black (Morus nigra) mulberry fruits. Food Chem., 2007, 103(4), 1380-1384.
[http://dx.doi.org/10.1016/j.foodchem.2006.10.054]
[10]
Li, E.; Yang, S.; Zou, Y.; Cheng, W.; Li, B.; Hu, T.; Li, Q.; Wang, W.; Liao, S.; Pang, D. Purification, characterization, prebiotic preparations and antioxidant aactivity of oligosaccharides from Mulberries. Molecules, 2019, 24(12), 2329.
[http://dx.doi.org/10.3390/molecules24122329] [PMID: 31242560]
[11]
Zhang, J.Q.; Chen, C.; Fu, X.; Liu, R.H. A study on the Fe 3 O 4 @ Fructus mori L. polysaccharide particles with enhanced antioxidant activity and bioavailability. Food Funct., 2020, 11(3), 2268-2278.
[http://dx.doi.org/10.1039/C9FO03047F] [PMID: 32103220]
[12]
Chen, X.Q.; Zhou, L.; Zuo, Z.L.; Zhu, X.H.; Ding, J.; Shao, H.Y. 'Extraction and stability of mulberry red pigment under ultrasound. J. Southwest Univ. Natl., 2004, 4, 458-459.
[13]
Wang, H.F.; Li, H.S.; Han, S.Z.; Li, G.C.; Lu, Z.Y. Processing and utilization of mulberry. J. Ningbo Univ., 1999, 12, 81-82.
[14]
Wei, Y.D.; Sun, T.T.; Liu, H.H.; Pei, Z.L.; Jiang, L.F.; Li, R.; Huang, S.Y. Ultrasonic extraction and identification of total flavonoids from mulberry. Lishizhen Med. Mater. Med. Res., 2012, 23, 2811-2812.
[15]
Ma, Y.; Zhao, L.F.; Lv, Z.Y.; Sun, L.; Wu, W.; Liu, S.Y. Analysis of flavonoids and polyphenols in mulberry by high performance liquid chromatography-quadrupole electrostatic field orbital trap high resolution mass spectrometry. J. Chin. Mass Spectrom. Soc., 2017, 38, 45-51.
[16]
Wang, H.; Zhu, H.P.; Li, W.Z.; Ruan, M.J. Analysis of anthocyanins in mulberry extract and its antioxidant activity in vitro. Shipin Yu Fajiao Gongye, 2019, 45, 170-175.
[17]
Du, X.; Zhou, S.T.; Li, C.M. Study on the technology of producing high purity mulberry and raspberry anthocyanins in large scale by medium pressure rapid separation system. Sci. Technol. Food Ind., 2020, 41, 175-181.
[18]
Ma, J.T.; Liu, L.; Liu, G.Y.; Wang, L.; Ma, L.; Shen, X.M.; Hu, X.X.; Lu, W.; Liu, Z.H. Simultaneous determination of five anthocyanins in mulberry health wine by UPLC-Q-Tof/MS. Make Wine, 2019, 46, 98-100.
[19]
Tan, J.Q.; Wang, Y.; Sun, Q.; Han, Q.Y.; Wang, X. Optimization of ultra-high pressure extraction process and component analysis of mulberry anthocyanins. Sci. Technol. Food Ind., 2018, 39, 152-158.
[20]
Liu, C.L.; Duan, Y.H.; Dai, Y.; Yao, X.S. [Study on the chemical constituents of roots and stems of Nardostachys chinensis]. Zhong Yao Cai, 2011, 34(8), 1216-1219.
[PMID: 22233035]
[21]
Duan, S.; Tang, S.; Qin, N.; Duan, H. [Chemical constituents of Phymatopteris hastate and their antioxidant activity]. Zhongguo Zhongyao Zazhi, 2012, 37(10), 1402-1407.
[PMID: 22860450]
[22]
Huang, M.J.; Zeng, G.Y.; Tan, J.B.; Li, Y.L.; Tan, G.S.; Zhou, Y.J. [Studies on flavonoid glycosides of Sarcandra glabra]. Zhongguo Zhongyao Zazhi, 2008, 33(14), 1700-1702.
[PMID: 18841770]
[23]
Fuchs, C.; Spiteller, G. Rapid and easy identification of isomers of coumaroyl- and caffeoyl-D-quinic acid by gas chromatography/mass spectrometry. J. Mass Spectrom., 1996, 31(6), 602-608.
[http://dx.doi.org/10.1002/(SICI)1096-9888(199606)31:6<602:AID-JMS338>3.0.CO;2-9]
[24]
Xiang, T.; Xiong, Q.B.; Ketut, A.I.; Tezuka, Y.; Nagaoka, T.; Wu, L.J.; Kadota, S. Studies on the hepatocyte protective activity and the structure-activity relationships of quinic acid and caffeic acid derivatives from the flower buds of Lonicera bournei. Planta Med., 2001, 67(4), 322-325.
[http://dx.doi.org/10.1055/s-2001-14337] [PMID: 11458447]
[25]
Dini, I.; Tenore, G.C.; Dini, A. New polyphenol derivative in Ipomoea batatas tubers and its antioxidant activity. J. Agric. Food Chem., 2006, 54(23), 8733-8737.
[http://dx.doi.org/10.1021/jf061687v] [PMID: 17090114]
[26]
Yuan, Q.; Zhao, L. The mulberry (Morus alba L.) fruit-A review of characteristic components and health benefits. J. Agric. Food Chem., 2017, 65(48), 10383-10394.
[http://dx.doi.org/10.1021/acs.jafc.7b03614] [PMID: 29129054]
[27]
Du, K.; Chen, Y.; Li, J.; Tian, F.; Gao, X.; Chang, Y. Determination of antioxidant ingredients in Mori Fructus employing ionic liquid‐assisted miniaturized matrix solid‐phase dispersion extraction via ultra‐performance liquid chromatography. J. Food Biochem., 2019, 43(4), e12807.
[http://dx.doi.org/10.1111/jfbc.12807] [PMID: 31353604]
[28]
Hsieh, C.F.; Chen, Y.L.; Lin, G.H.; Chan, Y.F.; Hsieh, P.W.; Horng, J.T. 3,4-Dicaffeoylquinic acid from the medicinal plant ilex kaushue disrupts the interaction between the five-fold axis of enterovirus A-71 and the heparan sulfate receptor. J. Virol., 2022, 96(7), e00542-21.
[http://dx.doi.org/10.1128/jvi.00542-21] [PMID: 35319229]
[29]
Kim, S.B.; Chang, B.Y.; Jo, Y.H.; Lee, S.H.; Han, S.B.; Hwang, B.Y.; Kim, S.Y.; Lee, M.K. Macrophage activating activity of pyrrole alkaloids from Morus alba fruits. J. Ethnopharmacol., 2013, 145(1), 393-396.
[http://dx.doi.org/10.1016/j.jep.2012.11.007] [PMID: 23164765]
[30]
Wang, Y.; Xiang, L.; Wang, C.; Tang, C.; He, X.; Pintus, G. Antidiabetic and antioxidant effects and phytochemicals of mulberry fruit (Morus alba L.) polyphenol enhanced extract. PLoS One, 2013, 8(7), e71144.
[http://dx.doi.org/10.1371/journal.pone.0071144] [PMID: 23936259]
[31]
Ruan, J.L.; Zou, J.H.; Cai, Y.L. [Studies on chemical constituents in leaf of Isatis indigotica]. Zhongguo Zhongyao Zazhi, 2005, 30(19), 1525-1526.
[PMID: 16335825]
[32]
Duan, X.J.; Li, X.M.; Wang, B.G. Chemical constituents of the red alga Symhyocladia latiuscula. Mark. Sci., 2007, 31, 17-19.
[33]
Asano, N.; Yamashita, T.; Yasuda, K.; Ikeda, K.; Kizu, H.; Kameda, Y.; Kato, A.; Nash, R.J.; Lee, H.S.; Ryu, K.S. Polyhydroxylated alkaloids isolated from mulberry trees (Morusalba L.) and silkworms (Bombyx mori L.). J. Agric. Food Chem., 2001, 49(9), 4208-4213.
[http://dx.doi.org/10.1021/jf010567e] [PMID: 11559112]
[34]
Kusano, G.; Orihara, S.; Tsukamoto, D.; Shibano, M.; Coskun, M.; Guvenc, A.; Erdurak, C.S. Five new nortropane alkaloids and six new amino acids from the fruit of Morus alba LINNE growing in Turkey. Chem. Pharm. Bull., 2002, 50(2), 185-192.
[http://dx.doi.org/10.1248/cpb.50.185] [PMID: 11848207]
[35]
Deng, Q.; Wang, X.; Chen, H.; Zhao, C.; Gong, X.; Zhou, X. Structural characterization, modification and hepatoprotective effects of polysaccharide from Mori Fructus. Int. J. Biol. Macromol., 2020, 153, 357-363.
[http://dx.doi.org/10.1016/j.ijbiomac.2020.02.300] [PMID: 32112846]
[36]
Chen, C.; Huang, Q.; You, L.J.; Fu, X. Chemical property and impacts of different polysaccharide fractions from Fructus Mori. on lipolysis with digestion model in vitro. Carbohydr. Polym., 2017, 178, 360-367.
[http://dx.doi.org/10.1016/j.carbpol.2017.09.015] [PMID: 29050606]
[37]
Lee, J.S.; Synytsya, A.; Kim, H.B.; Choi, D.J.; Lee, S.; Lee, J.; Kim, W.J.; Jang, S.; Park, Y.I. Purification, characterization and immunomodulating activity of a pectic polysaccharide isolated from Korean mulberry fruit Oddi (Morus alba L.). Int. Immunopharmacol., 2013, 17(3), 858-866.
[http://dx.doi.org/10.1016/j.intimp.2013.09.019] [PMID: 24120956]
[38]
Chen, Z.; Du, X.; Yang, Y.; Cui, X.; Zhang, Z.; Li, Y. Comparative study of chemical composition and active components against α ‐glucosidase of various medicinal parts ofMORUS ALBA L. Biomed. Chromatogr., 2018, 32(11), e4328.
[http://dx.doi.org/10.1002/bmc.4328] [PMID: 29975423]
[39]
Yi, J.Y.; Bi, J.F.; Liu, X.; Lv, J.; Zhou, M.; Wu, X.Y.; Zhao, Y.Y.; Du, Q.Q. A review:domain fine structure of pectic polysaccharides. Shipin Kexue, 2020, 41, 292-299.
[40]
Voragen, A.G.J.; Coenen, G.J.; Verhoef, R.P.; Schols, H.A. Pectin, a versatile polysaccharide present in plant cell walls. Struct. Chem., 2009, 20(2), 263-275.
[http://dx.doi.org/10.1007/s11224-009-9442-z]
[41]
Isabelle, M.; Lee, B.L.; Ong, C.N.; Liu, X.; Huang, D. Peroxyl radical scavenging capacity, polyphenolics, and lipophilic antioxidant profiles of mulberry fruits cultivated in southern China. J. Agric. Food Chem., 2008, 56(20), 9410-9416.
[http://dx.doi.org/10.1021/jf801527a] [PMID: 18817415]
[42]
Li, Z.; Chen, X.; Liu, G.; Li, J.; Zhang, J.; Cao, Y.; Miao, J. Antioxidant activity and mechanism of resveratrol and polydatin isolated from mulberry (Morus alba L.). Molecules, 2021, 26(24), 7574.
[http://dx.doi.org/10.3390/molecules26247574] [PMID: 34946655]
[43]
Wang, X.; Wang, H.Q.; Kang, J.; Liu, C.; Chen, R.Y. Studies on chemical constituents from fruits of Morus alba L. Yao Xue Xue Bao, 2014, 49(4), 504-506.
[PMID: 24974468]
[44]
Wang, J.H.; Wu, M.J. TLC identification of three medicinal materials in changshou changle oral liquid. China Pharm., 2010, 19, 37.
[45]
Tang, D.; Zhu, M.M.; Zhao, T.; Zhang, M.; Gu, X.Y.; Ying, L.Q. Comparative study on different determination methods of anthocyanins in Fructus mori. Anhui Nongye Kexue, 2012, 40, 5207-5208.
[46]
Liu, Y.L.; Ji, G.L. Extraction and content cetermination of polysaccharides from Fructus mori. China Med. Pharm., 2012, 2, 109-110.
[47]
Wu, C.; Xu, L.; Zhou, L.; Liu, J.C.; Yu, M.D.; Huang, X.Z.; Xia, Y.L. Comparative study on different determination methods of red pigment in mulberry. Anhui Nongye Kexue, 2012, 40, 5207-5208.
[48]
Yan, Z.L.; Lu, Y.; Yang, T. Spectrophotometric determination of total polyphenols in three colors of mulberry. Chin. J. Spectrosco. Lab., 2011, 28, 325-328.
[49]
Geng, D.; Ma, W.F.; Zhen, H.S.; Qiu, Q.; Wei, L.H.; Tang, X.L. Determination of rutin in mulberry by RP-HPLC. Zhongguo Shiyan Fangjixue Zazhi, 2011, 17, 63-65.
[50]
You, Y.Y.; Wan, D.G.; Yang, W.Y.; Pei, J. Study on HPLC chromatogram of mulberry. Shipin Kexue, 2010, 31, 141-144.
[51]
Zhao, K.; Su, Z.R.; Yang, B.W.; Tan, F.; Deng, J. Establishment and comparison of determination methods of resveratrol and resveratrol glycoside in mulberry. Shipin Kexue, 2010, 31, 241-244.
[52]
Chen, J.; Kan, J.Q.; Yang, R.S. GC-MS analysis of aroma components in different mulberry varieties. Shipin Kexue, 2010, 31, 239-243.
[53]
Zhang, L.; Wang, H. Analysis of volatile components in mulberry sparkling wine by gas chromatography-mass spectrometry. Acta Sericol. Sin., 2010, 36, 152-156.
[54]
Liang, D. Determination of trace elements in mulberry by flame atomic absorption spectrometry. Process. Agric. Prod., 2011, 8, 102-103.
[55]
Cheng, K.C.; Wang, C.J.; Chang, Y.C.; Hung, T.W.; Lai, C.J.; Kuo, C.W.; Huang, H.P. Mulberry fruits extracts induce apoptosis and autophagy of liver cancer cell and prevent hepatocarcinogenesis in vivo. Yao Wu Shi Pin Fen Xi, 2020, 28(1), 84-93.
[http://dx.doi.org/10.38212/2224-6614.1223] [PMID: 31883611]
[56]
Pei, L.; Wan, T.; Wang, S.F.; Yang, L.L. Effects of mulberry anthocyanin extract on brown adipose tissue changes in mice induced by high fat alcohol diet. J. Trop. Med., 2018, 18, 561-564.
[57]
Yan, F.; Chen, X.; Zheng, X. Protective effect of mulberry fruit anthocyanin on human hepatocyte cells (LO2) and Caenorhabditis elegans under hyperglycemic conditions. Food Res. Int., 2017, 102, 213-224.
[http://dx.doi.org/10.1016/j.foodres.2017.10.009] [PMID: 29195942]
[58]
Zhou, X.; Deng, Q.; Chen, H.; Hu, E.; Zhao, C.; Gong, X. Characterizations and hepatoprotective effect of polysaccharides from Mori Fructus in rats with alcoholic-induced liver injury. Int. J. Biol. Macromol., 2017, 102, 60-67.
[http://dx.doi.org/10.1016/j.ijbiomac.2017.03.083] [PMID: 28322946]
[59]
Shu, G.W.; Qiu, Y.H.; Fu, Q.; Duan, H.; Yu, H.F.; Deng, X.K. Protective effect of total mulberry polysaccharide on acetaminophen-induced acute liver injury in mice. J. South-Central Univ. Nat., 2019, 38, 377-382.
[60]
Praveen, M.A.; Parvathy, K.R.K.; Balasubramanian, P.; Jayabalan, R. An overview of extraction and purification techniques of seaweed dietary fibers for immunomodulation on gut microbiota. Trends Food Sci. Technol., 2019, 92, 46-64.
[http://dx.doi.org/10.1016/j.tifs.2019.08.011]
[61]
Ferreira, S.S.; Passos, C.P.; Madureira, P.; Vilanova, M.; Coimbra, M.A. Structure–function relationships of immunostimulatory polysaccharides: A review. Carbohydr. Polym., 2015, 132, 378-396.
[http://dx.doi.org/10.1016/j.carbpol.2015.05.079] [PMID: 26256362]
[62]
Ramberg, J.E.; Nelson, E.D.; Sinnott, R.A. Immunomodulatory dietary polysaccharides: A systematic review of the literature. Nutr. J., 2010, 9(1), 54.
[http://dx.doi.org/10.1186/1475-2891-9-54] [PMID: 21087484]
[63]
Luo, X.; Wang, Z.; Zhu, H.H.; Sun, J.X.; Li, L.L. Regulation of mulberry polysaccharide on cyclophosphamide induced immunodeficiency in mice. Xinjiang Yike Daxue Xuebao, 2018, 41, 75-78.
[64]
Wang, D.; Li, H.; Li, B.; Ma, R.; Zhang, N.; Zhang, X.; Jiao, L.; Wu, W. Systematic fractionation and immunoenhancement of water-soluble polysaccharides isolated from fruit of Morus alba L. Int. J. Biol. Macromol., 2018, 116, 1056-1063.
[http://dx.doi.org/10.1016/j.ijbiomac.2018.05.106] [PMID: 29777809]
[65]
Shin, B.R.; Kim, H.S.; Yun, M.J.; Lee, H.K.; Kim, Y.J.; Kim, S.Y.; Lee, M.K.; Hong, J.T.; Kim, Y.; Han, S.B. Promoting effect of polysaccharide isolated from Mori fructus on dendritic cell maturation. Food Chem. Toxicol., 2013, 51, 411-418.
[http://dx.doi.org/10.1016/j.fct.2012.10.018] [PMID: 23108216]
[66]
Miller, G.; Lahrs, S.; DeMatteo, R.P. Overexpression of interleukin‐12 enables dendritic cells to activate NK cells and confer systemic antitumor immunity. FASEB J., 2003, 17(6), 728-730.
[http://dx.doi.org/10.1096/fj.02-0900fje] [PMID: 12594171]
[67]
Fearon, D.T.; Locksley, R.M. The instructive role of innate immunity in the acquired immune response. Science, 1996, 272(5258), 50-54.
[http://dx.doi.org/10.1126/science.272.5258.50] [PMID: 8600536]
[68]
You, Y.Y.; Wan, D.G.; Yang, W.Y.; Pei, J. Effects of four kinds of mulberry herbs on immune function of mice. Pharmacol. Clin. Chin. Mater. Med., 2008, 24, 83-84.
[69]
Gu, H.G.; Hu, J.Y. Effect of mulberry on immune function of yin deficiency mice. Zhongguo Shiyan Fangjixue Zazhi, 2001, 4, 40.
[70]
Chen, C.; You, L.J.; Abbasi, A.M.; Fu, X.; Liu, R.H.; Li, C. Characterization of polysaccharide fractions in mulberry fruit and assessment of their antioxidant and hypoglycemic activities in vitro. Food Funct., 2016, 7(1), 530-539.
[http://dx.doi.org/10.1039/C5FO01114K] [PMID: 26569512]
[71]
Wang, W.; Li, X.; Bao, X.; Gao, L.; Tao, Y. Extraction of polysaccharides from black mulberry fruit and their effect on enhancing antioxidant activity. Int. J. Biol. Macromol., 2018, 120(Pt B), 1420-1429.
[http://dx.doi.org/10.1016/j.ijbiomac.2018.09.132] [PMID: 30266643]
[72]
Wei, W.; Zhou, W.; Zang, N.; Jiang, L. Structural analysis of a polysaccharide from Fructus mori albae. Carbohydr. Polym., 2007, 70(3), 341-344.
[http://dx.doi.org/10.1016/j.carbpol.2007.04.009]
[73]
Zhang, P.L.; Chen, X.X.; Wang, Q.; Liu, G.; Zhang, Y.; Yang, Y.; Cao, Y. Isolation of polysaccharide T3-3 from mulberry and study on anti-aging activity of Caenorhabditis elegans. J. Tianjin Univ. Tradit. Chin. Med., 2017, 36, 136-141.
[74]
Teng, Y.R.; Zhao, L.F.; Zhang, Z.; Sun, L.; Liu, S.Y.; Wu, W. Study on anti-oxidation and anti-fatigue activity of mulberry. Ginseng Res., 2016, 28, 29-31.
[75]
Jue, D.W.; Sang, X.L. Effect of high-pressure homogenization on antioxidant components and antioxidant activity in mulberry juice. Redai Zuowu Xuebao, 2017, 38, 2261-2265.
[76]
Gao, P.; Lv, X.L.; Wang, L.Y.; Wang, Y.L.; Wang, J.X.; Zheng, M. R. Isolation and identification of representative anthocyanins and their antioxidant activities. in vitro. Sci. Technol. Food Ind, 2018, 73-78.
[77]
Arfan, M.; Khan, R.; Rybarczyk, A.; Amarowicz, R. Antioxidant activity of mulberry fruit extracts. Int. J. Mol. Sci., 2012, 13(2), 2472-2480.
[http://dx.doi.org/10.3390/ijms13022472] [PMID: 22408465]
[78]
Khan, M.A.; Rahman, A.A.; Islam, S.; Khandokhar, P.; Parvin, S.; Islam, M.B.; Hossain, M.; Rashid, M.; Sadik, G.; Nasrin, S.; Mollah, M.N.H.; Alam, A.H.M.K. A comparative study on the antioxidant activity of methanolic extracts from different parts of Morus alba L. (Moraceae). BMC Res. Notes, 2013, 6(1), 24.
[http://dx.doi.org/10.1186/1756-0500-6-24] [PMID: 23331970]
[79]
Yang, J.Y.; Lee, H.S. Evaluation of antioxidant and antibacterial activities of morin isolated from mulberry fruits (Morus alba L.). J. Korean Soc. Appl. Biol. Chem., 2012, 55(4), 485-489.
[http://dx.doi.org/10.1007/s13765-012-2110-9]
[80]
Chen, C.; Huang, Q.; Li, C.; Fu, X. Hypoglycemic effects of a Fructus Mori polysaccharide in vitro and in vivo. Food Funct., 2017, 8(7), 2523-2535.
[http://dx.doi.org/10.1039/C7FO00417F] [PMID: 28650018]
[81]
Withers, D.J.; Burks, D.J.; Towery, H.H.; Altamuro, S.L.; Flint, C.L.; White, M.F. Irs-2 coordinates Igf-1 receptor-mediated β-cell development and peripheral insulin signalling. Nat. Genet., 1999, 23(1), 32-40.
[http://dx.doi.org/10.1038/12631] [PMID: 10471495]
[82]
Withers, D.J.; Gutierrez, J.S.; Towery, H.; Burks, D.J.; Ren, J.M.; Previs, S.; Zhang, Y.; Bernal, D.; Pons, S.; Shulman, G.I.; Bonner-Weir, S.; White, M.F. Disruption of IRS-2 causes type 2 diabetes in mice. Nature, 1998, 391(6670), 900-904.
[http://dx.doi.org/10.1038/36116] [PMID: 9495343]
[83]
Jiao, Y.; Wang, X.; Jiang, X.; Kong, F.; Wang, S.; Yan, C. Antidiabetic effects of Morus alba fruit polysaccharides on high-fat diet- and streptozotocin-induced type 2 diabetes in rats. J. Ethnopharmacol., 2017, 199, 119-127.
[http://dx.doi.org/10.1016/j.jep.2017.02.003] [PMID: 28163112]
[84]
Chen, C.; You, L.J.; Huang, Q.; Fu, X.; Zhang, B.; Liu, R.H.; Li, C. Modulation of gut microbiota by mulberry fruit polysaccharide treatment of obese diabetic db/db mice. Food Funct., 2018, 9(7), 3732-3742.
[http://dx.doi.org/10.1039/C7FO01346A] [PMID: 29995048]
[85]
Wang, P.P.; Huang, Q.; Chen, C.; You, L.J.; Liu, R.H.; Luo, Z.G.; Zhao, M.M.; Fu, X. The chemical structure and biological activities of a novel polysaccharide obtained from Fructus Mori and its zinc derivative. J. Funct. Foods, 2019, 54, 64-73.
[http://dx.doi.org/10.1016/j.jff.2019.01.008]
[86]
Wang, Y.C.; Zhang, Y.W.; Zheng, L.H.; Bao, Y.L.; Wu, Y.; Yu, C.L.; Huang, Y.X.; Sun, L.G.; Zhang, Y.; Jia, X.J.; Li, Y.X. Four new alkaloids from the fermentation broth of Armillaria mella. Helv. Chim. Acta, 2013, 96(2), 330-337.
[http://dx.doi.org/10.1002/hlca.201200186]
[87]
Zhang, L.; Zhou, J.; Luo, J.; Wang, Q.; Liu, J.; Zeng, Q.Q. Study on mulberry anthocyanins induced autophagy and apoptosis of human gastric cancer SGC-7901 cell autophagy. Zhong Yao Cai, 2016, 39(5), 1134-1138.
[PMID: 30133211]
[88]
Nie, C.; Zeng, Q.Q.; Zhang, X.F.; Wang, Q. Preliminary study of mulberry anthocyanins on S180 transplanted tumorinhibitory effect and apoptosis effect on cells of value-added. Res. Pract. Chin. Med., 2014, 28, 44-48.
[89]
Jin, H.Y.; Liu, Q.; He, W.; Hu, Q.Y.; Liu, Y.F.; Wang, X.F. Effect of mulberry anthocyanins on VEGF, p53 and Ki67 expression in the cancer tissue of breast cancer-bearing nude mice. Prog. Mod. Biomed., 2015, 15, 5455-5458.
[90]
Zhang, X.T.; Fu, H.M.; Zhou, L.T.; Zhang, C.G. Research progress in chemical constituents and pharmacological effects of resveratrol. Shandong Chem. Ind., 2021, 50, 58-60.
[91]
Chang, W.; Wang, Z.; Yuan, L.J.; Fu, Y.J.; Mi, M.T. Effects of mulberry anthocyanin extract on apoptosis and mitochondrial membrane potential of breast cancer cells. Prog. Mod. Biomed., 2012, 22, 4236-4240.
[92]
Wang, J. Effect of mulberry anthocyanin drink on motor function recovery in rats with spinal cord injury. Prog. Vet. Med., 2018, 39, 86-90.
[93]
Chen, C.; Huang, Q.; Fu, X.; Liu, R.H. In vitro fermentation of mulberry fruit polysaccharides by human fecal inocula and impact on microbiota. Food Funct., 2016, 7(11), 4637-4643.
[http://dx.doi.org/10.1039/C6FO01248E] [PMID: 27748781]
[94]
Li, E.; Yang, H.; Zou, Y.; Wang, H.; Hu, T.; Li, Q.; Liao, S. In-vitro digestion by simulated gastrointestinal juices of Lactobacillus rhamnosus cultured with mulberry oligosaccharides and subsequent fermentation with human fecal inocula. Lebensm. Wiss. Technol., 2019, 101, 61-68.
[http://dx.doi.org/10.1016/j.lwt.2018.11.029]
[95]
Zhu, C.L.; Chen, M.; Wang, M.H.; Shen, T.; Qiang, Q.; Wang, X.F.; Ji, L.L.; Feng, Z.S.; Tao, Y.X.; Bai, Y.J.; Hu, W.C. Study on anti-inflammatory effect and mechanism of mulberry extract in vitro. Xiandai Shipin Keji, 2017, 33, 61-66.
[96]
Liu, H.; Yang, J.; Huang, S.W.; Liu, R.Q.; He, Y.J.; Liu, C.H. 'Intervention effect and mechanism of mulberry crude extract on nonylphenol-induced anxiety behavior in rats. Sci. Technol. Food Ind., 2017, 38, 294-298.
[97]
Liu, Y.F.; Peng, X.Y.; He, H.J.; Jin, C.W.; Su, S.F.; Yang, X.S. Protective effect of concentrated mulberry juice on spleen of rats with oxidative damage induced by D-galactose. Shipin Kexue, 2018, 39, 192-199.
[98]
Borre, Y.E.; Panagaki, T.; Koelink, P.J.; Morgan, M.E.; Hendriksen, H.; Garssen, J.; Kraneveld, A.D.; Olivier, B.; Oosting, R.S. Neuroprotective and cognitive enhancing effects of a multi-targeted food intervention in an animal model of neurodegeneration and depression. Neuropharmacology, 2014, 79, 738-749.
[http://dx.doi.org/10.1016/j.neuropharm.2013.11.009] [PMID: 24286859]
[99]
Zhang, J.Y.; Cao, H.; Gong, S.X.; Xu, J.; Han, Y.Q.; Han, T.J.; Liu, C.X. The expression of saltiness of traditional Chinese medicine and its application in clinical compatibility. Chin. Tradit. Herbal Drugs, 2016, 47, 2797-2802.
[100]
Wang, X.Y.; Mao, Y.F.; Zhang, Z.Q.; Yu, Y. Effect of mulberry extract on the expression of cell adhesion molecule during experimental arteriosclerosis in rabbits. Zhongguo Laonianxue Zazhi, 2011, 6, 1009-1012.
[101]
Su, S.L.; Duan, J.A.; Ou, Y.Z.; Guo, S.; Liu, L. Research progress in the chemistry of medicinal plant resources of Moru alba L. in China. Zhongguo Xiandai Zhongyao, 2012, 14, 1-6.
[102]
Cao, H.; Zhang, J.Y.; Gong, S.X.; Xu, J.; Zhang, T.J.; Liu, C.X. The expression of sweeteness of traditional Chinese medicine and its application in clinical compatibility. Chin. Tradit. Herbal Drugs, 2016, 47, 533-539.
[103]
Li, S.; Li, M.; Yue, H.; Zhou, L.; Huang, L.; Du, Z.; Ding, K. Structural elucidation of a pectic polysaccharide from Fructus Mori and its bioactivity on intestinal bacteria strains. Carbohydr. Polym., 2018, 186, 168-175.
[http://dx.doi.org/10.1016/j.carbpol.2018.01.026] [PMID: 29455974]
[104]
Ye, Q.; Yang, Y.; Zhou, Y.Q.; Hu, Z.X.; Yuan, J.Q. Research progress of sweet components in traditional Chinese medicine. Hunan J. Tradit. Chin. Med., 2015, 31, 205-207.
[105]
Zhang, L.K.; Ya, F.L.; Zhang, X.D.; Wang, Y.Y.; Ding, Y.; Yang, Y. Effect of cornflower 3-glucoside on platelet parameters in mice fed with high-fat diet. J. Trop. Med., 2016, 16, 145-148.
[106]
Yu, Y.; Chen, Y.; Shi, X.; Ye, C.; Wang, J.; Huang, J.; Zhang, B.; Deng, Z. Hepatoprotective effects of different mulberry leaf extracts against acute liver injury in rats by alleviating oxidative stress and inflammatory response. Food Funct., 2022, 13(16), 8593-8604.
[http://dx.doi.org/10.1039/D2FO00282E] [PMID: 35894215]
[107]
Liu, X.M.; Wu, J.J.; Liao, T.S.; Xiao, G.S.; Xu, Y.J. Dynamic changes of main and functional components of mulberry juice during ethanol fermentation. Food Fermentation Eng., 2006, 32, 138-141.
[108]
Xu, H.Y.; Pu, Z.Y.; Wang, H.P.; Sun, X.D.; Li, H.Y. Study on fermentation conditions of mulberry vinegar. Sci. Technol. Food Ind., 2009, 2, 164-165.
[109]
Yu, Y.J. Study on submerged fermentation technology of mulberry vinegar. China Brew., 2010, 11, 175-177.
[110]
Shi, Q.L.; Pan, M.T.; Ma, Z.R. Study on screening of mulberry brewing strain. Acta Agric. Boreali-occidentalis Sin., 2005, 14, 139-141.
[111]
Huang, Z.Y.; Liang, G.Q.; Li, S.M.; He, J. Study on the quality control of mulberry wine brewing. Guangxi Sericulture, 2013, 50, 53-58.
[112]
Yue, C.; Ge, Z.Q. Study on mulberry health yellow rice wine. Food Ind., 2012, 33, 66-69.
[113]
Guo, W.Y.; Ma, Z.R.; Yang, G.M.; Bai, Y.H.; Gong, Y.Z.; Liang, S.B. Study on the technology of mulberry fermented wine. Make Wine, 2005, 32, 80-82.
[114]
Liu, L.; Ye, B. Study on fermentation technology of mulberry and wolfberry nutritional wine. Food Ind., 2008, 1, 51-53.
[115]
Tang, H.L.; Xie, Y.L. Study on processing technology of mulberry wine. Niangjiu Ke-Ji, 2004, 1, 61-62.
[116]
Shi, Q.L.; Fan, M.T.; Ma, Z.R. Study on processing technology of mulberry wine. Make Wine, 2005, 32, 78-79.
[117]
Lv, C.X. Study on processing technology of mulberry nutrition and health yoghurt. Grain Oil Process. Food Mach., 2002, 11, 49-50.
[118]
Wang, C.; Zhou, Y.; Gu, X.Y. Development of solidified mulberry yoghurt. Food Res. Dev, 2007, 28, 64-67.
[119]
Wang, H.R. The processing technology of mulberry juice drink. Anhui Nongye Kexue, 2005, 33, 112-131.
[120]
Wang, Y. Development of functional mulberry clear juice drink. Beifang Yuanyi, 2008, 10, 187-188.
[121]
Xu, A.S.; He, J. Study on compound Lactic acid bacteria drink of mixed juice of mulberry tea. Food Sci. Technol., 2013, 38, 101-106.
[122]
Li, L.; Qiu, Q.F.; Ren, Y.H.; Tan, Y. Study on compound fruit juice drink of mulberry and grape. Food Ind., 2012, 2, 84-85.
[123]
Zhou, J.H.; Wei, Y.W. Development of children’s health Jelly of mulberry. Food Res. Dev, 2012, 33, 83-85.
[124]
Zhang, L.; Li, F.; Zeng, L.; He, X.Y.; Zeng, F.J. Study on processing technology of low sugar mulberry preserved fruit. Shipin Kexue, 2009, 34, 42-45.