Article(id=1304414727531156233, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414700964443026, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.04.018, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1762963200000, receivedDateStr=2025-11-13, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788926305896, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788926305896, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788926305896, creator=13701087609, updateTime=1788926305896, updator=13701087609, issue=Issue{id=1304414700964443026, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='4', pageStart='1209', pageEnd='1596', issueExtLink='null', onlineDate='null', pubDate='1772208000000', pubDateStr='2026-02-28', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788926299563, creator='13701087609', updateTime=1788926573099, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304415848316297970, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414700964443026, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304415848316297971, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414700964443026, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=1402, endPage=1415, ext={EN=ArticleExt(id=1304414727841534731, articleId=1304414727531156233, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Formulation patterns and primary health functions of Mori Fructus-containing health foods based on data mining and network pharmacology, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective To analyze the formulation patterns of health foods containing Sangshen (Mori Fructus) and investigate their potential mechanisms using data mining, network pharmacology, and molecular docking techniques. Methods Information on Mori Fructus-related health foods up to September 13, 2025, was collected from the Special Food Information Query Platform of the State Administration for Market Regulation and Yaozhi.com. Formulation patterns were analyzed using frequency statistics, cluster analysis, and association rule analysis. Active ingredients of Mori Fructus were retrieved from databases such as the Traditional Chinese Medicine Systems Pharmacology Database and Analysis Platform (TCMSP). Potential targets were predicted using SwissTargetPrediction, while disease targets related to primary health functions were retrieved from databases like GeneCards database. Target gene names were standardized using the UniProt database. Potential targets were screened using Venny and STRING databases. Protein-protein interaction (PPI) network analysis was then performed, and core targets were screened based on degree values. Gene ontology (GO) and Kyoto encyclopedia of genes and genomes (KEGG) pathway enrichment analyses were conducted using the DAVID database. Finally, molecular docking was employed to validate the binding affinity between core targets and key components. Results A total of 243 Mori Fructus-containing health foods meeting the inclusion criteria were included, involving 177 traditional Chinese medicine ingredients, primarily heat-clearing drugs and tonifying deficiency drugs. The medicinal properties were mainly warm and neutral; the medicinal flavor was predominantly sweet; the meridians entered the lung, heart, and liver channels. The most common dosage form was capsules. The top two health functions were helping to enhance immunity and helping to alleviate physical fatigue. For immunity enhancement, 453 potential targets and 10 core targets were identified. For alleviating physical fatigue, 166 potential targets and 10 core targets were identified. Mori Fructus exerts its effects on enhancing immunity and alleviating physical fatigue through signaling pathways such as the TNF signaling pathway and the lipid and atherosclerosis pathway. Molecular docking results indicated that the key components of Mori Fructus could spontaneously and stably bind to the core targets. Conclusion This study, utilizing data mining, network pharmacology, and molecular docking, analyzed information related to Mori Fructus-containing health foods and preliminarily revealed the potential targets and mechanistic pathways associated with the main health functions of Mori Fructus, providing a theoretical basis for the subsequent development of Mori Fructus-based products., authors=BI Yuqing, LI Qinlin, ZHANG Yu, WU Tong, OUYANG Danwei, authorsList=BI Yuqing, LI Qinlin, ZHANG Yu, WU Tong, OUYANG Danwei, authorCompany=null, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1304414727766037258, articleId=1304414727531156233, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=基于数据挖掘和网络药理学的桑椹保健食品组方规律及主要保健功能研究, columnId=1304140194819629763, journalTitle=中草药, columnName=数据挖掘与循证医学, runingTitle=null, highlight=null, articleAbstract=目的 通过数据挖掘、网络药理学及分子对接技术分析含桑椹的保健食品的组方规律并对其潜在的机制进行研究。方法 在国家市场监督管理总局特殊食品信息查询平台及药智网收集截至2025年9月13日的桑椹相关保健食品信息,通过频数统计、聚类分析、关联规则等方法分析保健食品的组方规律。通过中药系统药理学数据库与分析平台等数据库检索桑椹相关活性成分,运用SwissTargetPrediction预测潜在靶点,GeneCards等数据库检索主要保健功能相关的疾病靶点,运用UniProt数据库规范靶基因名称,借助Venny、STRING数据库筛选出潜在靶点。然后进行蛋白质相互作用网络分析,根据度(degree)值筛选出核心靶点,并在DAVID数据库进行基因本体(gene ontology,GO)和京都基因与基因组百科全书(Kyoto encyclopedia of genes and genomes,KEGG)通路富集分析。最后,利用分子对接技术验证潜在靶点和关键成分的作用亲和力。结果 符合筛选条件的含桑椹保健食品一共纳入243种,涉及中药原料177种,其中以清热药和补虚药为主;药性以温、平为主,药味以甘为主;归肺、心、肝经;剂型以胶囊剂最常见;排名前2位的保健功能为有助于增强免疫力和缓解体力疲劳。桑椹增强免疫力的潜在靶点453个、核心靶点10个;缓解体力疲劳的潜在靶点166个、核心靶点10个。桑椹通过肿瘤坏死因子信号通路与脂质和动脉粥样硬化等信号通路发挥增强免疫力和缓解体力疲劳的作用。分子对接结果提示桑椹的关键成分与潜在靶点能自发且稳定地结合。结论 通过数据挖掘、网络药理学和分子对接研究,分析了含桑椹的保健食品相关信息,初步揭示桑椹主要保健功能的潜在靶点与作用途径,为桑椹后续产品的研发提供了理论依据。, authors=毕雨晴1, 李嵚琳1, 张宇1, 吴彤1, 欧阳丹薇1, authorsList=毕雨晴, 李嵚琳, 张宇, 吴彤, 欧阳丹薇, authorCompany=1 中国医药工业研究总院 上海医药工业研究院有限公司先导物成药性研究全国重点实验室, 上海 201203, correspAuthors=欧阳丹薇, authorNote=毕雨晴: 毕雨晴,硕士研究生,研究方向为中药药效物质基础和质量控制研究。E-mail:biyuqing0424@163.com, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=nobS7TP/y4x+KMrdKYCmEg==, pdfFileSize=2299655, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null)}, authors=[Author(id=1307444482799067779, tenantId=1146029695717560320, journalId=null, articleId=1304414727531156233, orderNo=null, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, 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detailUrlEn=https://castjournals.cast.org.cn/joweb/zcy/EN/10.7501/j.issn.0253-2670.2026.04.018, pdfUrlCn=https://castjournals.cast.org.cn/joweb/zcy/CN/PDF/10.7501/j.issn.0253-2670.2026.04.018, pdfUrlEn=https://castjournals.cast.org.cn/joweb/zcy/EN/PDF/10.7501/j.issn.0253-2670.2026.04.018, aliStartDate=null, aliEndDate=null, collectionFlag=false, citedCount=null, citedUrl=null, previewStatus=0, delFlag=0, hasFullText=0, orderTime=1788926305896, fullTextJson=null, articleText=null, reference=中国药典[S]. 一部. 2025: 321-322.
Zhang H X, Ma Z F, Luo X Q, et al. Effects of mulberry fruit (Morus alba L.) consumption on health outcomes: A mini-review [J]. Antioxidants, 2018, 7(5): 69.
韩非若, 李婷, 阿力亚·麦麦提敏, 等. 桑椹化学成分与药理作用研究进展[J]. 中草药, 2024, 55(15): 5274-5285.
彭赛男. 桑葚中主要化学成分的研究[D]. 西安: 西北大学, 2019.
朱华, 罗静, 何丹, 等. 黄精桑椹酒对小鼠抗疲劳作用研究[J]. 壮瑶药研究, 2023(2): 221-223.
刘雨萌, 金元宝, 孟凡欣, 等. 枸杞子多糖通过改善氧化应激延缓疲劳作用的研究[J]. 食品工业科技, 2016, 37(18): 344-348.
罗辉, 周元科, 邓媛媛, 等. 茯苓酸性多糖调节免疫功能活性研究[J]. 中药材, 2015, 38(7): 1502-1504.
赵晓峰, 何海根, 章建萍, 等. 黄芪对免疫功能低下小鼠免疫功能的影响[J]. 浙江中医药大学学报, 2012, 36(6): 749-751.
杨丽娟. “气出于脑,即不邪干”诠释[D]. 北京: 中国中医科学院, 2011.
袁保丰. 疲劳型亚健康的中医病机及证型探讨[J]. 陕西中医药大学学报, 2019, 42(1): 35-37.
Abbas Z, Tong Y C, Wang J Y, et al. Potential role and mechanism of mulberry extract in immune modulation: Focus on chemical compositions, mechanistic insights, and extraction techniques [J]. Int J Mol Sci, 2024, 25(10): 5333.
Chen X L, Sheng Z C, Qiu S L, et al. Purification, characterization and in vitro and in vivo immune enhancement of polysaccharides from mulberry leaves [J]. PLoS One, 2019, 14(1): e0208611.
Rahman M S, Islam S. Studies on food, health and environmental perspectives in mulberry (Morus spp.)—A review [J]. J Bio-sci, 2021: 163-179.
Alvarez S, Blanco A, Fresno M, et al. TNF-α contributes to Caspase-3 independent apoptosis in neuroblastoma cells: Role of NFAT [J]. PLoS One, 2011, 6(1): e16100.
Di Lorenzo A, Fernández-Hernando C, Cirino G, et al. Akt1 is critical for acute inflammation and histamine-mediated vascular leakage [J]. Proc Natl Acad Sci USA, 2009, 106(34): 14552-14557.
Di Stasi L C. Natural coumarin derivatives activating Nrf2 signaling pathway as lead compounds for the design and synthesis of intestinal anti-inflammatory drugs [J]. Pharmaceuticals, 2023, 16(4): 511.
Ramappa V K, Srivastava D, Singh P, et al. Mulberries: A promising fruit for phytochemicals, nutraceuticals, and biological activities [J]. Int J Fruit Sci, 2020, 20(sup3): S1254-S1279.
滕亚然, 赵乐凤, 张喆, 等. 桑葚的抗氧化和抗疲劳活性研究[J]. 人参研究, 2016, 28(6): 29-31.
Zhang J Y, Zhang F, Hong C Q, et al. Critical protein GAPDH and its regulatory mechanisms in cancer cells [J]. Cancer Biol Med, 2015, 12(1): 10-22.
Kilpatrick L E, Sun S, Mackie D, et al. Regulation of TNF mediated antiapoptotic signaling in human neutrophils: Role of delta-PKC and ERK1/2[J]. J Leukoc Biol, 2006, 80(6): 1512-1521.
Li J, Guo Y X, Yang Y, et al. Preconditioning with acteoside ameliorates myocardial ischemia-reperfusion injury by targeting HSP90AA1 and the PI3K/Akt signaling pathway [J]. Mol Med Rep, 2025, 31(3). DOI: 10.3892/ mmr.2025.13442.
Wadsworth I. Cytomegalovirus inhibition by pluronic-encapsulated quercetin and synergy with ganciclovir [D]. Logan: Utah State University, 2020.
Garcia C, Blesso C N. Antioxidant properties of anthocyanins and their mechanism of action in atherosclerosis [J]. Free Radic Biol Med, 2021, 172: 152-166.
Du J H, Liu L K, Fan H Q, et al. Anthocyanins improve liver fibrosis in mice by regulating the autophagic flux level of hepatic stellate cells by mmu_circ_0000623[J]. Food Sci Nutr, 2023, 11(6): 3002-3018.
Wu Y, Wang D W, Li J, et al. Protective effect of dihydromyricetin against exercise-induced muscle damage and its mechanism [J]. Chin Med Sci J, 2024, 39(1): 46-53.
方雨潇, 王淑美. 山柰酚通过线粒体凋亡通路诱导三阴性乳腺癌细胞凋亡的机制研究[J]. 天然产物研究与开发, 2023, 35(3): 397-404.
Kong P, Cui Z Y, Huang X F, et al. Inflammation and atherosclerosis: Signaling pathways and therapeutic intervention [J]. Signal Transduct Target Ther, 2022, 7(1): 131.
Batista-Gonzalez A, Vidal R, Criollo A, et al. New insights on the role of lipid metabolism in the metabolic reprogramming of macrophages [J]. Front Immunol, 2020, 10: 2993.)
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基于数据挖掘和网络药理学的桑椹保健食品组方规律及主要保健功能研究
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毕雨晴, 李嵚琳, 张宇, 吴彤, 欧阳丹薇
中草药 | 数据挖掘与循证医学 2026,57(4): 1402-1415
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中草药 |数据挖掘与循证医学 2026 , 57 (4) : 1402 -1415
基于数据挖掘和网络药理学的桑椹保健食品组方规律及主要保健功能研究
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毕雨晴, 李嵚琳, 张宇, 吴彤, 欧阳丹薇
作者信息
通讯作者:
欧阳丹薇
作者简介:
毕雨晴: 毕雨晴,硕士研究生,研究方向为中药药效物质基础和质量控制研究。E-mail:biyuqing0424@163.com
Formulation patterns and primary health functions of Mori Fructus-containing health foods based on data mining and network pharmacology
BI Yuqing, LI Qinlin, ZHANG Yu, WU Tong, OUYANG Danwei
Affiliations
doi: 10.7501/j.issn.0253-2670.2026.04.018
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目的 通过数据挖掘、网络药理学及分子对接技术分析含桑椹的保健食品的组方规律并对其潜在的机制进行研究。方法 在国家市场监督管理总局特殊食品信息查询平台及药智网收集截至2025年9月13日的桑椹相关保健食品信息,通过频数统计、聚类分析、关联规则等方法分析保健食品的组方规律。通过中药系统药理学数据库与分析平台等数据库检索桑椹相关活性成分,运用SwissTargetPrediction预测潜在靶点,GeneCards等数据库检索主要保健功能相关的疾病靶点,运用UniProt数据库规范靶基因名称,借助Venny、STRING数据库筛选出潜在靶点。然后进行蛋白质相互作用网络分析,根据度(degree)值筛选出核心靶点,并在DAVID数据库进行基因本体(gene ontology,GO)和京都基因与基因组百科全书(Kyoto encyclopedia of genes and genomes,KEGG)通路富集分析。最后,利用分子对接技术验证潜在靶点和关键成分的作用亲和力。结果 符合筛选条件的含桑椹保健食品一共纳入243种,涉及中药原料177种,其中以清热药和补虚药为主;药性以温、平为主,药味以甘为主;归肺、心、肝经;剂型以胶囊剂最常见;排名前2位的保健功能为有助于增强免疫力和缓解体力疲劳。桑椹增强免疫力的潜在靶点453个、核心靶点10个;缓解体力疲劳的潜在靶点166个、核心靶点10个。桑椹通过肿瘤坏死因子信号通路与脂质和动脉粥样硬化等信号通路发挥增强免疫力和缓解体力疲劳的作用。分子对接结果提示桑椹的关键成分与潜在靶点能自发且稳定地结合。结论 通过数据挖掘、网络药理学和分子对接研究,分析了含桑椹的保健食品相关信息,初步揭示桑椹主要保健功能的潜在靶点与作用途径,为桑椹后续产品的研发提供了理论依据。
桑椹  /  数据挖掘  /  网络药理学  /  保健食品  /  组方规律  /  增强免疫力  /  缓解体力疲劳
Objective To analyze the formulation patterns of health foods containing Sangshen (Mori Fructus) and investigate their potential mechanisms using data mining, network pharmacology, and molecular docking techniques. Methods Information on Mori Fructus-related health foods up to September 13, 2025, was collected from the Special Food Information Query Platform of the State Administration for Market Regulation and Yaozhi.com. Formulation patterns were analyzed using frequency statistics, cluster analysis, and association rule analysis. Active ingredients of Mori Fructus were retrieved from databases such as the Traditional Chinese Medicine Systems Pharmacology Database and Analysis Platform (TCMSP). Potential targets were predicted using SwissTargetPrediction, while disease targets related to primary health functions were retrieved from databases like GeneCards database. Target gene names were standardized using the UniProt database. Potential targets were screened using Venny and STRING databases. Protein-protein interaction (PPI) network analysis was then performed, and core targets were screened based on degree values. Gene ontology (GO) and Kyoto encyclopedia of genes and genomes (KEGG) pathway enrichment analyses were conducted using the DAVID database. Finally, molecular docking was employed to validate the binding affinity between core targets and key components. Results A total of 243 Mori Fructus-containing health foods meeting the inclusion criteria were included, involving 177 traditional Chinese medicine ingredients, primarily heat-clearing drugs and tonifying deficiency drugs. The medicinal properties were mainly warm and neutral; the medicinal flavor was predominantly sweet; the meridians entered the lung, heart, and liver channels. The most common dosage form was capsules. The top two health functions were helping to enhance immunity and helping to alleviate physical fatigue. For immunity enhancement, 453 potential targets and 10 core targets were identified. For alleviating physical fatigue, 166 potential targets and 10 core targets were identified. Mori Fructus exerts its effects on enhancing immunity and alleviating physical fatigue through signaling pathways such as the TNF signaling pathway and the lipid and atherosclerosis pathway. Molecular docking results indicated that the key components of Mori Fructus could spontaneously and stably bind to the core targets. Conclusion This study, utilizing data mining, network pharmacology, and molecular docking, analyzed information related to Mori Fructus-containing health foods and preliminarily revealed the potential targets and mechanistic pathways associated with the main health functions of Mori Fructus, providing a theoretical basis for the subsequent development of Mori Fructus-based products.
Mori Fructus  /  data mining  /  network pharmacology  /  health food  /  formulation pattern  /  immunity enhancement  /  alleviation of physical fatigue
毕雨晴, 李嵚琳, 张宇, 吴彤, 欧阳丹薇. 基于数据挖掘和网络药理学的桑椹保健食品组方规律及主要保健功能研究. 中草药, 2026 , 57 (4) : 1402 -1415 . DOI: 10.7501/j.issn.0253-2670.2026.04.018
BI Yuqing, LI Qinlin, ZHANG Yu, WU Tong, OUYANG Danwei. Formulation patterns and primary health functions of Mori Fructus-containing health foods based on data mining and network pharmacology[J]. Chinese Traditional and Herbal Drugs, 2026 , 57 (4) : 1402 -1415 . DOI: 10.7501/j.issn.0253-2670.2026.04.018

参考文献 引证文献
排序方式:
中国药典[S]. 一部. 2025: 321-322.
Zhang H X, Ma Z F, Luo X Q, et al. Effects of mulberry fruit (Morus alba L.) consumption on health outcomes: A mini-review [J]. Antioxidants, 2018, 7(5): 69.
韩非若, 李婷, 阿力亚·麦麦提敏, 等. 桑椹化学成分与药理作用研究进展[J]. 中草药, 2024, 55(15): 5274-5285.
彭赛男. 桑葚中主要化学成分的研究[D]. 西安: 西北大学, 2019.
朱华, 罗静, 何丹, 等. 黄精桑椹酒对小鼠抗疲劳作用研究[J]. 壮瑶药研究, 2023(2): 221-223.
刘雨萌, 金元宝, 孟凡欣, 等. 枸杞子多糖通过改善氧化应激延缓疲劳作用的研究[J]. 食品工业科技, 2016, 37(18): 344-348.
罗辉, 周元科, 邓媛媛, 等. 茯苓酸性多糖调节免疫功能活性研究[J]. 中药材, 2015, 38(7): 1502-1504.
赵晓峰, 何海根, 章建萍, 等. 黄芪对免疫功能低下小鼠免疫功能的影响[J]. 浙江中医药大学学报, 2012, 36(6): 749-751.
杨丽娟. “气出于脑,即不邪干”诠释[D]. 北京: 中国中医科学院, 2011.
袁保丰. 疲劳型亚健康的中医病机及证型探讨[J]. 陕西中医药大学学报, 2019, 42(1): 35-37.
Abbas Z, Tong Y C, Wang J Y, et al. Potential role and mechanism of mulberry extract in immune modulation: Focus on chemical compositions, mechanistic insights, and extraction techniques [J]. Int J Mol Sci, 2024, 25(10): 5333.
Chen X L, Sheng Z C, Qiu S L, et al. Purification, characterization and in vitro and in vivo immune enhancement of polysaccharides from mulberry leaves [J]. PLoS One, 2019, 14(1): e0208611.
Rahman M S, Islam S. Studies on food, health and environmental perspectives in mulberry (Morus spp.)—A review [J]. J Bio-sci, 2021: 163-179.
Alvarez S, Blanco A, Fresno M, et al. TNF-α contributes to Caspase-3 independent apoptosis in neuroblastoma cells: Role of NFAT [J]. PLoS One, 2011, 6(1): e16100.
Di Lorenzo A, Fernández-Hernando C, Cirino G, et al. Akt1 is critical for acute inflammation and histamine-mediated vascular leakage [J]. Proc Natl Acad Sci USA, 2009, 106(34): 14552-14557.
Di Stasi L C. Natural coumarin derivatives activating Nrf2 signaling pathway as lead compounds for the design and synthesis of intestinal anti-inflammatory drugs [J]. Pharmaceuticals, 2023, 16(4): 511.
Ramappa V K, Srivastava D, Singh P, et al. Mulberries: A promising fruit for phytochemicals, nutraceuticals, and biological activities [J]. Int J Fruit Sci, 2020, 20(sup3): S1254-S1279.
滕亚然, 赵乐凤, 张喆, 等. 桑葚的抗氧化和抗疲劳活性研究[J]. 人参研究, 2016, 28(6): 29-31.
Zhang J Y, Zhang F, Hong C Q, et al. Critical protein GAPDH and its regulatory mechanisms in cancer cells [J]. Cancer Biol Med, 2015, 12(1): 10-22.
Kilpatrick L E, Sun S, Mackie D, et al. Regulation of TNF mediated antiapoptotic signaling in human neutrophils: Role of delta-PKC and ERK1/2[J]. J Leukoc Biol, 2006, 80(6): 1512-1521.
Li J, Guo Y X, Yang Y, et al. Preconditioning with acteoside ameliorates myocardial ischemia-reperfusion injury by targeting HSP90AA1 and the PI3K/Akt signaling pathway [J]. Mol Med Rep, 2025, 31(3). DOI: 10.3892/ mmr.2025.13442.
Wadsworth I. Cytomegalovirus inhibition by pluronic-encapsulated quercetin and synergy with ganciclovir [D]. Logan: Utah State University, 2020.
Garcia C, Blesso C N. Antioxidant properties of anthocyanins and their mechanism of action in atherosclerosis [J]. Free Radic Biol Med, 2021, 172: 152-166.
Du J H, Liu L K, Fan H Q, et al. Anthocyanins improve liver fibrosis in mice by regulating the autophagic flux level of hepatic stellate cells by mmu_circ_0000623[J]. Food Sci Nutr, 2023, 11(6): 3002-3018.
Wu Y, Wang D W, Li J, et al. Protective effect of dihydromyricetin against exercise-induced muscle damage and its mechanism [J]. Chin Med Sci J, 2024, 39(1): 46-53.
方雨潇, 王淑美. 山柰酚通过线粒体凋亡通路诱导三阴性乳腺癌细胞凋亡的机制研究[J]. 天然产物研究与开发, 2023, 35(3): 397-404.
Kong P, Cui Z Y, Huang X F, et al. Inflammation and atherosclerosis: Signaling pathways and therapeutic intervention [J]. Signal Transduct Target Ther, 2022, 7(1): 131.
Batista-Gonzalez A, Vidal R, Criollo A, et al. New insights on the role of lipid metabolism in the metabolic reprogramming of macrophages [J]. Front Immunol, 2020, 10: 2993.
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doi: 10.7501/j.issn.0253-2670.2026.04.018
  • 接收时间:2025-11-13
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2种不同金属材料的力学参数

Family
属数
Number of
genus
种数
Number of
species
占总种数比例
Percentage of
total species (%)

Genus
种数
Number of
species
占总种数比例
Percentage of total
species (%)
鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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