Article(id=1304415005387022674, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414997581427653, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.08.007, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1755446400000, receivedDateStr=2025-08-18, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788926372142, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788926372142, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788926372142, creator=13701087609, updateTime=1788926372142, updator=13701087609, issue=Issue{id=1304414997581427653, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='8', pageStart='2877', pageEnd='3260', issueExtLink='null', onlineDate='null', pubDate='1777305600000', pubDateStr='2026-04-28', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788926370282, creator='13701087609', updateTime=1788926758667, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304416626649096991, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414997581427653, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304416626649096992, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414997581427653, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=2943, endPage=2953, ext={EN=ArticleExt(id=1304415006221689172, articleId=1304415005387022674, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Bibliometric study on antiviral therapy for chikungunya fever: Current status, trends and implications, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective To conduct a bibliometric analysis of antiviral research on chikungunya fever, to reveal the current status and research hotspots, and to provide references for infection prevention and drug development. Methods Publications related to antiviral studies on chikungunya fever were retrieved from the Web of Science core collection from database inception to August 10, 2025. CiteSpace and VOSviewer were used for visual analysis of publication output, countries, journals, institutions, authors, and keywords, wheras Excel 2019 was employed to summarize and calculate the frequency of drug-related keywords. Results A total of 583 publications were included, showing an overall upward trend in output between 2004 and 2025. The United States had the highest number of publications; the top three productive authors were Merits Andres, Neyts Johan, and Delang Leen, Antiviral Research was the leading journal in terms of publications, and core research forces were concentrated in comprehensive universities such as the University of Tartu and infectious disease institutes such as the Institut Pasteur. Keyword analysis indicated that “chikungunya virus” “replication” “infection” were high-frequency core terms. Research themes mainly focused on viral replication, infection, and identification, encompassing molecular docking, gene expression, and inhibitor screening, as well as animal model construction and cross-virus studies. Keyword frequency analysis of antiviral drugs showed that chemical drugs dominated the field, with small-molecule inhibitors being the most common, and chloroquine and ribavirin appearing most frequently, studies on biologics, traditional Chinese medicine, and natural products were relatively scattered. Conclusion Antiviral research on chikungunya virus remains in its early stages, with a paucity of clinically approved therapeutics and specific vaccines. Research priorities have shifted from transmission surveillance toward drug discovery and target-based investigations, with emerging technologies—including structural biology, molecular docking, and reverse genetics—facilitating candidate compound development. Future research should prioritize drug repurposing, multi-target strategies, and systematic evaluation of bioactive natural products, particularly flavonoids, diterpenoids, and traditional Chinese medicinal compounds for symptomatic intervention. Integrating interdisciplinary methodologies and fostering international collaboration are essential to enhance research efficiency, accelerate clinical translation, and provide innovative avenues for chikungunya virus prevention and control., authors=TIAN Jiasheng, YANG Qiuyu, ZHANG Yangxiaoni, LIAO Dan, YAN Qian, ZHAN Shaofeng, LI Geng, ZHENG Wenjiang, authorsList=TIAN Jiasheng, YANG Qiuyu, ZHANG Yangxiaoni, LIAO Dan, YAN Qian, ZHAN Shaofeng, LI Geng, ZHENG Wenjiang, 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=1304415005840007507, articleId=1304415005387022674, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=基孔肯雅热抗病毒治疗的文献计量研究:现状、趋势与启示, columnId=1304415000160915883, journalTitle=中草药, columnName=中医药抗病毒研究, runingTitle=null, highlight=null, articleAbstract=目的 对基孔肯雅热抗病毒研究进行文献计量分析,揭示其研究现状与热点,为感染防控和药物研发提供参考。方法 以Web of Science核心合集为数据源,检索自建库以来至2025年8月10日的相关文献。使用CiteSpace和VOSviewer对发文量、国家、期刊、机构、作者及关键词进行可视化分析;采用Excel 2019归纳药物关键词并统计频次。结果 共纳入文献583篇,2004—2025年发文量整体呈上升趋势。美国发文量最高;发文量前3的作者为Merits Andres、Neyts Johan和Delang Leen;Antiviral Research为发文最多的期刊;核心研究力量主要集中在以塔尔图大学为代表的综合性高校和以巴斯德研究所为代表的传染病研究机构。关键词分析显示,基孔肯雅病毒(chikungunya virus)、复制(replication)、感染(infection)为高频核心词,研究主题聚焦于病毒复制、感染与鉴定,涵盖分子对接、基因表达、抑制剂筛选等方向,涉及动物模型构建及交叉病毒研究。药物关键词频次分析显示,抗病毒药物研究以化学药为主,其中小分子抑制剂最为常见,氯喹和利巴韦林出现频次较高;生物药、中药及天然产物研究相对分散。结论 基孔肯雅热抗病毒研究仍处于早期阶段,临床可用药物和特异性疫苗缺乏。研究重心由传播监测转向药物筛选与靶点探索,结构生物学、分子对接及反向遗传学等新技术推动了候选药物的研发。未来应强化药物再利用、多靶点策略及天然产物活性成分系统的筛选,挖掘黄酮类、二萜类化合物及中药在症状干预中的潜力,依托跨学科方法与国际合作,提升研发效率与临床转化率,为病毒防控提供创新思路。, authors=田加盛1,2, 杨秋雨2, 张扬筱妮2, 廖丹3, 严倩1, 詹少锋1,2,4, 李耿3, 郑文江1,2,4, authorsList=田加盛, 杨秋雨, 张扬筱妮, 廖丹, 严倩, 詹少锋, 李耿, 郑文江, authorCompany=1 广州中医药大学第一附属医院, 广东 广州 510405;
2 广州中医药大学第一临床医学院, 广东 广州 510405;
3 广州中医药大学 动物实验中心, 广东 广州 510405;
4 广东省中医临床研究院, 广东 广州 510405, correspAuthors=郑文江, authorNote=田加盛: 田加盛,本科,研究方向为感染性疾病的文献计量研究。E-mail:13728150234@163.com, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=oSHXQsghLq7NcOj52cyxhQ==, pdfFileSize=1243935, 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=广东省自然科学基金面上项目 (2025A1515011256); 广东省自然科学基金粤穗联合青年基金项目 (2023A1515110849); 广东省中医药局科研平台专项 (20254040); 广东省医学科研基金项目 (B2024112); 广州中医药大学高水平医院共建项目科研专项项目 (GZYZS2024G09); 国家自然科学基金项目 (82505441); 中医药广东省实验室科技研发培植项目 (HQL2024PZ043); 广州中医药大学青年拔尖人才“揭榜挂帅”团队项目 (负责人:郑文江))}, authors=null, keywords=[Keyword(id=1304415006381072725, tenantId=1146029695717560320, journalId=1302319053441957962, articleId=1304415005387022674, language=CN, orderNo=1, keyword=基孔肯雅热), 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Organization World Health. 基孔肯雅热[EB/OL]. (2025-04-14)[2025-08-14]. https://www.who.int/zh/news-room/fact-sheets/detail/chikungunya.
陈斌, 陈秋兰, 李昱, 等. 2010-2019年中国输入性基孔肯雅热病例流行病学特征分析[J]. 疾病监测, 2021, 36(6):539-543.
广东省疾病预防控制中心. 广东省基孔肯雅热监测信息 (2025年7月20-26日)[EB/OL]. (2025-07-27)[2025-09-24]. https://cdcp.gd.gov.cn/ywdt/zdzt/yfjkkyr/yqxx/content/post_4750006.html.
Rougeron V, Sam I C, Caron M, et al. Chikungunya, a paradigm of neglected tropical disease that emerged to be a new health global risk[J]. J Clin Virol, 2015, 64:144-152.
Martí-Carvajal A, Ramon-Pardo P, Javelle E, et al. Interventions for treating patients with chikungunya virus infection-related rheumatic and musculoskeletal disorders:A systematic review[J]. PLoS One, 2017, 12(6):e0179028.
文斌, 王学军, 王飞, 等. 阿尼昂尼昂病毒等关节炎性甲病毒研究进展[J]. 热带医学杂志, 2025, 25(11):1592-1597.
Langsjoen R M, Haller S L, Roy C J, et al. Chikungunya virus strains show lineage-specific variations in virulence and cross-protective ability in murine and nonhuman primate models[J]. mBio, 2018, 9(2):e02449-e02417.
Weber W C, Streblow D N, Coffey L L. Chikungunya virus vaccines:A review of IXCHIQ and PXVX0317 from pre-clinical evaluation to licensure[J]. BioDrugs, 2024, 38(6):727-742.
施江南, 温乐乐, 江丽洁, 等. 基于文献计量学的覆盆子研究热点与趋势分析[J]. 中草药, 2025, 56(2):598-616.
De Solla Price D. A general theory of bibliometric and other cumulative advantage processes[J]. J Am Soc Inf Sci, 1976, 27(5):292-306.
Chen C M. CiteSpace II:Detecting and visualizing emerging trends and transient patterns in scientific literature[J]. J Am Soc Inf Sci, 2006, 57(3):359-377.
Soumahoro M K, Boelle P Y, Gaüzere B A, et al. The chikungunya epidemic on La Réunion Island in 2005-2006:A cost-of-illness study[J]. PLoS Negl Trop Dis, 2011, 5(6):e1197.
Rezza G, Nicoletti L, Angelini R, et al. Infection with chikungunya virus in Italy:An outbreak in a temperate region[J]. Lancet, 2007, 370(9602):1840-1846.
林苗, 李华, 黄吉城, 等. 广东检验检疫局发现中国内地首例输入性基孔肯雅热病例[J]. 中国国境卫生检疫杂志, 2008, 31(4):4.
Kovacikova K, van Hemert M J. Small-molecule inhibitors of chikungunya virus:Mechanisms of action and antiviral drug resistance[J]. Antimicrob Agents Chemother, 2020, 64(12):e01788-e01720.
Liu L B, Li M, Gao N, et al. Epidemiological and clinical characteristics of the chikungunya outbreak in Ruili City, Yunnan Province, China[J]. J Med Virol, 2022, 94(2):499-506.
Sliwoski G, Kothiwale S, Meiler J, et al. Computational methods in drug discovery[J]. Pharmacol Rev, 2013, 66(1):334-395.
Raynaud M, Goutaudier V, Louis K, et al. Impact of the COVID-19 pandemic on publication dynamics and non-COVID-19 research production[J]. BMC Med Res Methodol, 2021, 21(1):255.
Aviv-Reuven S, Rosenfeld A. Publication patterns' changes due to the COVID-19 pandemic:A longitudinal and short-term scientometric analysis[J]. Scientometrics, 2021, 126(8):6761-6784.
Abdelnabi R, Neyts J, Delang L. Towards antivirals against chikungunya virus[J]. Antiviral Res, 2015, 121:59-68.
Di Mola A, Peduto A, La Gatta A, et al. Structure-activity relationship study of arbidol derivatives as inhibitors of chikungunya virus replication[J]. Bioorg Med Chem, 2014, 22(21):6014-6025.
Debing Y, Emerson S U, Wang Y J, et al. Ribavirin inhibits in vitro hepatitis E virus replication through depletion of cellular GTP pools and is moderately synergistic with alpha interferon[J]. Antimicrob Agents Chemother, 2014, 58(1):267-273.
Briolant S, Garin D, Scaramozzino N, et al. In vitro inhibition of Chikungunya and Semliki Forest viruses replication by antiviral compounds:Synergistic effect of interferon-alpha and ribavirin combination[J]. Antiviral Res, 2004, 61(2):111-117.
Davuluri K S, Ghanghav R, Ahire G, et al. Repurposed drugs in combinations exert additive anti-chikungunya virus activity:An in-vitro study[J]. Virol J, 2024, 21(1):5.
姜向毅, 李敬, 魏晓颖, 等. 基孔肯雅病毒抑制剂研究进展[J]. 药学学报, 2020, 55(4):754-762.
Battisti V, Urban E, Langer T. Antivirals against the chikungunya virus[J]. Viruses, 2021, 13(7):1307.
Martins D O S, de Andrade Santos I, de Oliveira D M, et al. Antivirals against chikungunya virus:Is the solution in nature?[J]. Viruses, 2020, 12(3):272.
Lani R, Hassandarvish P, Shu M H, et al. Antiviral activity of selected flavonoids against Chikungunya virus[J]. Antivir Res, 2016, 133:50-61.
Lani R, Hassandarvish P, Chiam C W, et al. Antiviral activity of silymarin against chikungunya virus[J]. Sci Rep, 2015, 5:11421.
Oo A, Rausalu K, Merits A, et al. Deciphering the potential of baicalin as an antiviral agent for chikungunya virus infection[J]. Antiviral Res, 2018, 150:101-111.
Remy S, Litaudon M. Macrocyclic diterpenoids from Euphorbiaceae as a source of potent and selective inhibitors of chikungunya virus replication[J]. Molecules, 2019, 24(12):2336.
Wintachai P, Kaur P, Lee R C H, et al. Activity of andrographolide against chikungunya virus infection[J]. Sci Rep, 2015, 5:14179.
Weber C, Sliva K, von Rhein C, et al. The green tea catechin, epigallocatechin gallate inhibits chikungunya virus infection[J]. Antiviral Res, 2015, 113:1-3.
Bhakat S, Soliman M E S. Chikungunya virus (CHIKV) inhibitors from natural sources:A medicinal chemistry perspective[J]. J Nat Med, 2015, 69(4):451-462.
柴星星, 陈建海, 石铭. 基孔肯雅热流行病学、发病机制、诊断技术与防治策略的研究进展[J]. 广东医科大学学报, 2025, 43(5):468-477.)
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中草药 |中医药抗病毒研究 2026 , 57 (8) : 2943 -2953
基孔肯雅热抗病毒治疗的文献计量研究:现状、趋势与启示
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田加盛1,2, 杨秋雨2, 张扬筱妮2, 廖丹3, 严倩1, 詹少锋1,2,4, 李耿3, 郑文江1,2,4
作者信息
    1 广州中医药大学第一附属医院, 广东 广州 510405;
    2 广州中医药大学第一临床医学院, 广东 广州 510405;
    3 广州中医药大学 动物实验中心, 广东 广州 510405;
    4 广东省中医临床研究院, 广东 广州 510405
通讯作者:
郑文江
作者简介:
田加盛: 田加盛,本科,研究方向为感染性疾病的文献计量研究。E-mail:13728150234@163.com
Bibliometric study on antiviral therapy for chikungunya fever: Current status, trends and implications
  • TIAN Jiasheng, YANG Qiuyu, ZHANG Yangxiaoni, LIAO Dan, YAN Qian, ZHAN Shaofeng, LI Geng, ZHENG Wenjiang
  • Affiliations
    doi: 10.7501/j.issn.0253-2670.2026.08.007
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    目的 对基孔肯雅热抗病毒研究进行文献计量分析,揭示其研究现状与热点,为感染防控和药物研发提供参考。方法 以Web of Science核心合集为数据源,检索自建库以来至2025年8月10日的相关文献。使用CiteSpace和VOSviewer对发文量、国家、期刊、机构、作者及关键词进行可视化分析;采用Excel 2019归纳药物关键词并统计频次。结果 共纳入文献583篇,2004—2025年发文量整体呈上升趋势。美国发文量最高;发文量前3的作者为Merits Andres、Neyts Johan和Delang Leen;Antiviral Research为发文最多的期刊;核心研究力量主要集中在以塔尔图大学为代表的综合性高校和以巴斯德研究所为代表的传染病研究机构。关键词分析显示,基孔肯雅病毒(chikungunya virus)、复制(replication)、感染(infection)为高频核心词,研究主题聚焦于病毒复制、感染与鉴定,涵盖分子对接、基因表达、抑制剂筛选等方向,涉及动物模型构建及交叉病毒研究。药物关键词频次分析显示,抗病毒药物研究以化学药为主,其中小分子抑制剂最为常见,氯喹和利巴韦林出现频次较高;生物药、中药及天然产物研究相对分散。结论 基孔肯雅热抗病毒研究仍处于早期阶段,临床可用药物和特异性疫苗缺乏。研究重心由传播监测转向药物筛选与靶点探索,结构生物学、分子对接及反向遗传学等新技术推动了候选药物的研发。未来应强化药物再利用、多靶点策略及天然产物活性成分系统的筛选,挖掘黄酮类、二萜类化合物及中药在症状干预中的潜力,依托跨学科方法与国际合作,提升研发效率与临床转化率,为病毒防控提供创新思路。
    基孔肯雅热  /  基孔肯雅病毒  /  抗病毒药物  /  药物化学策略  /  文献计量学  /  CiteSpace  /  Vosviewer
    Objective To conduct a bibliometric analysis of antiviral research on chikungunya fever, to reveal the current status and research hotspots, and to provide references for infection prevention and drug development. Methods Publications related to antiviral studies on chikungunya fever were retrieved from the Web of Science core collection from database inception to August 10, 2025. CiteSpace and VOSviewer were used for visual analysis of publication output, countries, journals, institutions, authors, and keywords, wheras Excel 2019 was employed to summarize and calculate the frequency of drug-related keywords. Results A total of 583 publications were included, showing an overall upward trend in output between 2004 and 2025. The United States had the highest number of publications; the top three productive authors were Merits Andres, Neyts Johan, and Delang Leen, Antiviral Research was the leading journal in terms of publications, and core research forces were concentrated in comprehensive universities such as the University of Tartu and infectious disease institutes such as the Institut Pasteur. Keyword analysis indicated that “chikungunya virus” “replication” “infection” were high-frequency core terms. Research themes mainly focused on viral replication, infection, and identification, encompassing molecular docking, gene expression, and inhibitor screening, as well as animal model construction and cross-virus studies. Keyword frequency analysis of antiviral drugs showed that chemical drugs dominated the field, with small-molecule inhibitors being the most common, and chloroquine and ribavirin appearing most frequently, studies on biologics, traditional Chinese medicine, and natural products were relatively scattered. Conclusion Antiviral research on chikungunya virus remains in its early stages, with a paucity of clinically approved therapeutics and specific vaccines. Research priorities have shifted from transmission surveillance toward drug discovery and target-based investigations, with emerging technologies—including structural biology, molecular docking, and reverse genetics—facilitating candidate compound development. Future research should prioritize drug repurposing, multi-target strategies, and systematic evaluation of bioactive natural products, particularly flavonoids, diterpenoids, and traditional Chinese medicinal compounds for symptomatic intervention. Integrating interdisciplinary methodologies and fostering international collaboration are essential to enhance research efficiency, accelerate clinical translation, and provide innovative avenues for chikungunya virus prevention and control.
    chikungunya fever  /  chikungunya virus  /  antiviral drugs  /  medicinal chemistry strategies  /  bibliometrics  /  CiteSpace  /  VOSviewer
    田加盛, 杨秋雨, 张扬筱妮, 廖丹, 严倩, 詹少锋, 李耿, 郑文江. 基孔肯雅热抗病毒治疗的文献计量研究:现状、趋势与启示. 中草药, 2026 , 57 (8) : 2943 -2953 . DOI: 10.7501/j.issn.0253-2670.2026.08.007
    TIAN Jiasheng, YANG Qiuyu, ZHANG Yangxiaoni, LIAO Dan, YAN Qian, ZHAN Shaofeng, LI Geng, ZHENG Wenjiang. Bibliometric study on antiviral therapy for chikungunya fever: Current status, trends and implications[J]. Chinese Traditional and Herbal Drugs, 2026 , 57 (8) : 2943 -2953 . DOI: 10.7501/j.issn.0253-2670.2026.08.007

      广东省自然科学基金面上项目 (2025A1515011256); 广东省自然科学基金粤穗联合青年基金项目 (2023A1515110849); 广东省中医药局科研平台专项 (20254040); 广东省医学科研基金项目 (B2024112); 广州中医药大学高水平医院共建项目科研专项项目 (GZYZS2024G09); 国家自然科学基金项目 (82505441); 中医药广东省实验室科技研发培植项目 (HQL2024PZ043); 广州中医药大学青年拔尖人才“揭榜挂帅”团队项目 (负责人:郑文江)

    参考文献 引证文献
    排序方式:
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    Organization World Health. 基孔肯雅热[EB/OL]. (2025-04-14)[2025-08-14]. https://www.who.int/zh/news-room/fact-sheets/detail/chikungunya.
    陈斌, 陈秋兰, 李昱, 等. 2010-2019年中国输入性基孔肯雅热病例流行病学特征分析[J]. 疾病监测, 2021, 36(6):539-543.
    广东省疾病预防控制中心. 广东省基孔肯雅热监测信息 (2025年7月20-26日)[EB/OL]. (2025-07-27)[2025-09-24]. https://cdcp.gd.gov.cn/ywdt/zdzt/yfjkkyr/yqxx/content/post_4750006.html.
    Rougeron V, Sam I C, Caron M, et al. Chikungunya, a paradigm of neglected tropical disease that emerged to be a new health global risk[J]. J Clin Virol, 2015, 64:144-152.
    Martí-Carvajal A, Ramon-Pardo P, Javelle E, et al. Interventions for treating patients with chikungunya virus infection-related rheumatic and musculoskeletal disorders:A systematic review[J]. PLoS One, 2017, 12(6):e0179028.
    文斌, 王学军, 王飞, 等. 阿尼昂尼昂病毒等关节炎性甲病毒研究进展[J]. 热带医学杂志, 2025, 25(11):1592-1597.
    Langsjoen R M, Haller S L, Roy C J, et al. Chikungunya virus strains show lineage-specific variations in virulence and cross-protective ability in murine and nonhuman primate models[J]. mBio, 2018, 9(2):e02449-e02417.
    Weber W C, Streblow D N, Coffey L L. Chikungunya virus vaccines:A review of IXCHIQ and PXVX0317 from pre-clinical evaluation to licensure[J]. BioDrugs, 2024, 38(6):727-742.
    施江南, 温乐乐, 江丽洁, 等. 基于文献计量学的覆盆子研究热点与趋势分析[J]. 中草药, 2025, 56(2):598-616.
    De Solla Price D. A general theory of bibliometric and other cumulative advantage processes[J]. J Am Soc Inf Sci, 1976, 27(5):292-306.
    Chen C M. CiteSpace II:Detecting and visualizing emerging trends and transient patterns in scientific literature[J]. J Am Soc Inf Sci, 2006, 57(3):359-377.
    Soumahoro M K, Boelle P Y, Gaüzere B A, et al. The chikungunya epidemic on La Réunion Island in 2005-2006:A cost-of-illness study[J]. PLoS Negl Trop Dis, 2011, 5(6):e1197.
    Rezza G, Nicoletti L, Angelini R, et al. Infection with chikungunya virus in Italy:An outbreak in a temperate region[J]. Lancet, 2007, 370(9602):1840-1846.
    林苗, 李华, 黄吉城, 等. 广东检验检疫局发现中国内地首例输入性基孔肯雅热病例[J]. 中国国境卫生检疫杂志, 2008, 31(4):4.
    Kovacikova K, van Hemert M J. Small-molecule inhibitors of chikungunya virus:Mechanisms of action and antiviral drug resistance[J]. Antimicrob Agents Chemother, 2020, 64(12):e01788-e01720.
    Liu L B, Li M, Gao N, et al. Epidemiological and clinical characteristics of the chikungunya outbreak in Ruili City, Yunnan Province, China[J]. J Med Virol, 2022, 94(2):499-506.
    Sliwoski G, Kothiwale S, Meiler J, et al. Computational methods in drug discovery[J]. Pharmacol Rev, 2013, 66(1):334-395.
    Raynaud M, Goutaudier V, Louis K, et al. Impact of the COVID-19 pandemic on publication dynamics and non-COVID-19 research production[J]. BMC Med Res Methodol, 2021, 21(1):255.
    Aviv-Reuven S, Rosenfeld A. Publication patterns' changes due to the COVID-19 pandemic:A longitudinal and short-term scientometric analysis[J]. Scientometrics, 2021, 126(8):6761-6784.
    Abdelnabi R, Neyts J, Delang L. Towards antivirals against chikungunya virus[J]. Antiviral Res, 2015, 121:59-68.
    Di Mola A, Peduto A, La Gatta A, et al. Structure-activity relationship study of arbidol derivatives as inhibitors of chikungunya virus replication[J]. Bioorg Med Chem, 2014, 22(21):6014-6025.
    Debing Y, Emerson S U, Wang Y J, et al. Ribavirin inhibits in vitro hepatitis E virus replication through depletion of cellular GTP pools and is moderately synergistic with alpha interferon[J]. Antimicrob Agents Chemother, 2014, 58(1):267-273.
    Briolant S, Garin D, Scaramozzino N, et al. In vitro inhibition of Chikungunya and Semliki Forest viruses replication by antiviral compounds:Synergistic effect of interferon-alpha and ribavirin combination[J]. Antiviral Res, 2004, 61(2):111-117.
    Davuluri K S, Ghanghav R, Ahire G, et al. Repurposed drugs in combinations exert additive anti-chikungunya virus activity:An in-vitro study[J]. Virol J, 2024, 21(1):5.
    姜向毅, 李敬, 魏晓颖, 等. 基孔肯雅病毒抑制剂研究进展[J]. 药学学报, 2020, 55(4):754-762.
    Battisti V, Urban E, Langer T. Antivirals against the chikungunya virus[J]. Viruses, 2021, 13(7):1307.
    Martins D O S, de Andrade Santos I, de Oliveira D M, et al. Antivirals against chikungunya virus:Is the solution in nature?[J]. Viruses, 2020, 12(3):272.
    Lani R, Hassandarvish P, Shu M H, et al. Antiviral activity of selected flavonoids against Chikungunya virus[J]. Antivir Res, 2016, 133:50-61.
    Lani R, Hassandarvish P, Chiam C W, et al. Antiviral activity of silymarin against chikungunya virus[J]. Sci Rep, 2015, 5:11421.
    Oo A, Rausalu K, Merits A, et al. Deciphering the potential of baicalin as an antiviral agent for chikungunya virus infection[J]. Antiviral Res, 2018, 150:101-111.
    Remy S, Litaudon M. Macrocyclic diterpenoids from Euphorbiaceae as a source of potent and selective inhibitors of chikungunya virus replication[J]. Molecules, 2019, 24(12):2336.
    Wintachai P, Kaur P, Lee R C H, et al. Activity of andrographolide against chikungunya virus infection[J]. Sci Rep, 2015, 5:14179.
    Weber C, Sliva K, von Rhein C, et al. The green tea catechin, epigallocatechin gallate inhibits chikungunya virus infection[J]. Antiviral Res, 2015, 113:1-3.
    Bhakat S, Soliman M E S. Chikungunya virus (CHIKV) inhibitors from natural sources:A medicinal chemistry perspective[J]. J Nat Med, 2015, 69(4):451-462.
    柴星星, 陈建海, 石铭. 基孔肯雅热流行病学、发病机制、诊断技术与防治策略的研究进展[J]. 广东医科大学学报, 2025, 43(5):468-477.
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    doi: 10.7501/j.issn.0253-2670.2026.08.007
    • 接收时间:2025-08-18
    • 首发时间:2026-09-09
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    • 收稿日期:2025-08-18
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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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