Article(id=1304414881093017640, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414858296971266, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.06.025, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1762012800000, receivedDateStr=2025-11-02, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788926342507, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788926342507, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788926342507, creator=13701087609, updateTime=1788926342507, updator=13701087609, issue=Issue{id=1304414858296971266, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='6', pageStart='2009', pageEnd='2444', issueExtLink='null', onlineDate='null', pubDate='1774627200000', pubDateStr='2026-03-28', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788926337074, creator='13701087609', updateTime=1788926665348, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304416235240841997, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414858296971266, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304416235240841998, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414858296971266, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=2316, endPage=2325, ext={EN=ArticleExt(id=1304414881462116394, articleId=1304414881093017640, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Shotgun metagenomic decoding of impaired functional aynergy in Crocus sativus rhizosphere microbiome during corm rot and targeted SynComs design, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective To decipher the association between corm rot disease in Crocus sativus and the impairment of the functional synergistic network within the rhizosphere microbiome, and to identify core beneficial microorganisms, thereby providing a basis for the targeted design of synthetic microbial communities (SynComs). Methods Rhizosphere soil samples from healthy and diseased saffron plants were collected. Metagenomic sequencing was employed to analyze the microbial community structure and function, while multivariate statistical analyses were used to identify differentially enriched taxa and disease-resistant functional pathways. Results The diseased rhizosphere was characterized by the abnormal proliferation of pathogens such as Fusarium oxysporum (with a combined relative abundance of up to 21%), alongside a significant decrease in the abundance of beneficial microbes like Bacillus and Trichoderma . In contrast, the healthy rhizosphere was enriched with functional pathways related to signal transduction, biosynthesis of antimicrobial compounds (e.g., nonribosomal peptides), and defense mechanisms. Species-function correlation analysis revealed that the core beneficial microorganisms in the healthy rhizosphere were significantly positively correlated with these disease-resistant functions, forming a potential “functional synergistic network”, which collapsed under diseased conditions. Conclusion The occurrence of corm rot is closely related to the disruption of the functional synergistic network in the rhizosphere microbiome. This study reveals the functional synergistic network constituted by core beneficial microbes in the healthy rhizosphere, providing key theoretical foundations and microbial resources for targeted restoration of this network and the design of multi-mechanistic SynCom-based biocontrol strategies., authors=ZHOU Guifen, WAN Bin, SUN Heng, QIAN Xiaodong, QIN Luping, authorsList=ZHOU Guifen, WAN Bin, SUN Heng, QIAN Xiaodong, QIN Luping, 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=1304414881344675881, articleId=1304414881093017640, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=西红花球茎腐烂病根际菌群功能协同网络失衡的宏基因组解析及靶向SynComs设计, columnId=1304140203967410414, journalTitle=中草药, columnName=药材与资源, runingTitle=null, highlight=null, articleAbstract=目的 解析西红花Crocus sativus 球茎腐烂病发生与根际微生物功能协同网络失衡的关联,挖掘关键有益微生物,为靶向合成微生物群落(SynComs)设计提供依据。方法 采集健康与患病西红花根际土壤,利用宏基因组测序解析微生物群落结构与功能,通过多元统计分析鉴定差异物种及抗病功能通路。结果 患病根际以尖孢镰刀菌Fusarium oxysporum 等病原菌异常增殖(相对丰度之和达21%)为特征,而芽孢杆菌属Bacillus 、木霉属Trichoderma 等有益微生物丰度显著降低。健康根际则富集了与信号转导、抗菌物质(如非核糖体肽)生物合成、防御机制等相关的功能通路。物种-功能关联分析表明,健康根际中的核心有益菌与这些抗病功能呈显著正相关,形成一个潜在的“功能协同网络”,该网络在病害状态下崩溃。结论 球茎腐烂病的发生与根际微生物功能协同网络的失衡密切相关。揭示了健康根际中由核心有益微生物构成的功能协同网络,为靶向重建该网络、设计多机制协同的SynComs生物防治策略提供了关键理论与资源。, authors=周桂芬1 , 万斌2 , 孙恒1 , 钱晓东2 , 秦路平1 , authorsList=周桂芬, 万斌, 孙恒, 钱晓东, 秦路平, authorCompany=1 浙江中医药大学药学院, 浙江 杭州 311402; 2 湖州市中心医院, 浙江 湖州 313000, correspAuthors=null, authorNote=周桂芬: 周桂芬,副教授,研究方向为生物/非生物胁迫对中药质量的影响。E-mail:20011021@zcmu.edu.cn, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=tJbS+SgcSz+fDRH3PkBhYQ==, pdfFileSize=2142447, 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=浙江省基础公益研究计划资助项目 (LGN21H280001); 湖州市科学技术局公益性应用研究资助项目 (2023GY11); 中央引导地方科技发展资金项目 (2025ZY01023))}, authors=[Author(id=1307464618071314848, tenantId=1146029695717560320, journalId=null, articleId=1304414881093017640, orderNo=null, firstName=null, middleName=null, lastName=null, nameCn=null, orcid=null, stid=null, country=null, authorPic=null, dead=null, email=null, emailSecond=null, emailThird=null, correspondingAuthor=null, authorType=null, ext={EN=AuthorExt(id=null, tenantId=null, journalId=1302319053441957962, articleId=1304414881093017640, authorId=1307464618071314848, language=EN, stringName=ZHOU Guifen, WAN Bin, SUN Heng, QIAN 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Frusciante S, Diretto G, Bruno M, et al . Novel carotenoid cleavage dioxygenase catalyzes the first dedicated step in saffron crocin biosynthesis[J]. Proc Natl Acad Sci USA , 2014, 111(33): 12246-12251. 周琳, 吴立峰, 王桢, 等. 长三角地区西红花良种繁育与高效栽培技术[J]. 现代农业科技, 2025(5): 208-211. 邱谷丰, 任廷丹, 王强, 等. 氯氟醚菌唑对西红花球茎腐烂病原菌尖孢镰刀菌的生物活性[J]. 农药学学报, 2023, 25(4): 850-857. Hu S, Wang X X, Sun W J, et al . In vitro study of biocontrol potential of rhizospheric Pseudomonas aeruginosa against pathogenic fungi of saffron (Crocus sativus L.)[J]. Pathogens , 2021, 10(11): 1423. Sharma A, Gupta V, Jamwal G, et al . Harnessing microbial consortia for sustainable management of corm rot of saffron[J]. J Basic Microbiol , 2025, 65(9): e70009. Thepbandit W, Athinuwat D. Rhizosphere microorganisms supply availability of soil nutrients and induce plant defense[J]. Microorganisms , 2024, 12(3): 558. de L Valente I, Wancura J H C, Zabot G L, et al . Endophytic and rhizospheric microorganisms: An alternative for sustainable, organic, and regenerative bioinput formulations for modern agriculture[J]. Microorganisms , 2025, 13(4): 813. Duret M, Wallner A, Buée M, et al . Rhizosphere microbiome assembly, drivers and functions in perennial ligneous plant health[J]. Microbiol Res , 2024, 287: 127860. Wahab A, Batool F, Abdi G, et al . Role of plant growth-promoting rhizobacteria in sustainable agriculture: Addressing environmental and biological challenges[J]. J Plant Physiol , 2025, 307: 154455. Kumari R, Pandey E, Bushra S, et al . Plant growth promoting rhizobacteria (PGPR) induced protection: A plant immunity perspective[J]. Physiol Plant , 2024, 176(5): e14495. Umer M, Anwar N, Mubeen M, et al . Roles of arbuscular mycorrhizal fungi in plant growth and disease management for sustainable agriculture[J]. Front Microbiol , 2025, 16: 1616273. Wang H, Chen Y L. Protecting plants from pathogens through arbuscular mycorrhiza: Role of fungal diversity[J]. Microbiol Res , 2024, 289: 127919. 吴李芳. 西红花球茎腐烂病的致病菌鉴定及其生防菌解淀粉芽孢杆菌C612的筛选和应用[D]. 杭州: 浙江大学, 2017. Guo Y Q, Tian L, Zhu X Y, et al . Antagonism of Bacillus velezensis ZGE166 against the pathogenic fungi causing corm rot disease in saffron (Crocus sativus L.)[J]. Microb Ecol , 2025, 88(1): 40. Tang Z R, Tan W B, Li R, et al . Advances in rhizosphere microbiome and rhizosphere immunity effect: A review[J]. J Agric Food Chem , 2025, 73(24): 14707-14721. Wang Z, Hu X H, Solanki M K, et al . A synthetic microbial community of plant core microbiome can be a potential biocontrol tool[J]. J Agric Food Chem , 2023, 71(13): 5030-5041. Izquierdo-García L F, González-Almario A, Cotes A M, et al . Trichoderma virens Gl006 and Bacillus velezensis Bs006: A compatible interaction controlling Fusarium wilt of cape gooseberry[J]. Sci Rep , 2020, 10(1): 6857. Durand K, Ogier J C, Nam K. The evaluation of shotgun sequencing and rpoB metabarcoding for taxonomic profiling of bacterial communities[J]. BMC Microbiol , 2025, 25(1): 413. Ren H L, Hong H L, Zha B R, et al . Soybean productivity can be enhanced by understanding rhizosphere microbiota: Evidence from metagenomics analysis from diverse agroecosystems[J]. Microbiome , 2025, 13(1): 105. Gai Y, Pan R, Xu D, et al . First report of Nectria haematococca causing stem rot of soybean in China[J]. Plant Dis , 2012, 96(3): 457.)
中草药
|药材与资源
2026
, 57
(6) :
2316
-2325
西红花球茎腐烂病根际菌群功能协同网络失衡的宏基因组解析及靶向SynComs设计
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周桂芬, 万斌, 孙恒, 钱晓东, 秦路平
作者信息
作者简介:
周桂芬: 周桂芬,副教授,研究方向为生物/非生物胁迫对中药质量的影响。E-mail:20011021@zcmu.edu.cn
Shotgun metagenomic decoding of impaired functional aynergy in Crocus sativus rhizosphere microbiome during corm rot and targeted SynComs design
ZHOU Guifen, WAN Bin, SUN Heng, QIAN Xiaodong, QIN Luping
Affiliations
doi: 10.7501/j.issn.0253-2670.2026.06.025
文章导航
目的 解析西红花Crocus sativus 球茎腐烂病发生与根际微生物功能协同网络失衡的关联,挖掘关键有益微生物,为靶向合成微生物群落(SynComs)设计提供依据。方法 采集健康与患病西红花根际土壤,利用宏基因组测序解析微生物群落结构与功能,通过多元统计分析鉴定差异物种及抗病功能通路。结果 患病根际以尖孢镰刀菌Fusarium oxysporum 等病原菌异常增殖(相对丰度之和达21%)为特征,而芽孢杆菌属Bacillus 、木霉属Trichoderma 等有益微生物丰度显著降低。健康根际则富集了与信号转导、抗菌物质(如非核糖体肽)生物合成、防御机制等相关的功能通路。物种-功能关联分析表明,健康根际中的核心有益菌与这些抗病功能呈显著正相关,形成一个潜在的“功能协同网络”,该网络在病害状态下崩溃。结论 球茎腐烂病的发生与根际微生物功能协同网络的失衡密切相关。揭示了健康根际中由核心有益微生物构成的功能协同网络,为靶向重建该网络、设计多机制协同的SynComs生物防治策略提供了关键理论与资源。
西红花
/
球茎腐烂病
/
根际微生物组
/
功能协同网络
/
合成微生物群落
/
宏基因组学
Objective To decipher the association between corm rot disease in Crocus sativus and the impairment of the functional synergistic network within the rhizosphere microbiome, and to identify core beneficial microorganisms, thereby providing a basis for the targeted design of synthetic microbial communities (SynComs). Methods Rhizosphere soil samples from healthy and diseased saffron plants were collected. Metagenomic sequencing was employed to analyze the microbial community structure and function, while multivariate statistical analyses were used to identify differentially enriched taxa and disease-resistant functional pathways. Results The diseased rhizosphere was characterized by the abnormal proliferation of pathogens such as Fusarium oxysporum (with a combined relative abundance of up to 21%), alongside a significant decrease in the abundance of beneficial microbes like Bacillus and Trichoderma . In contrast, the healthy rhizosphere was enriched with functional pathways related to signal transduction, biosynthesis of antimicrobial compounds (e.g., nonribosomal peptides), and defense mechanisms. Species-function correlation analysis revealed that the core beneficial microorganisms in the healthy rhizosphere were significantly positively correlated with these disease-resistant functions, forming a potential “functional synergistic network”, which collapsed under diseased conditions. Conclusion The occurrence of corm rot is closely related to the disruption of the functional synergistic network in the rhizosphere microbiome. This study reveals the functional synergistic network constituted by core beneficial microbes in the healthy rhizosphere, providing key theoretical foundations and microbial resources for targeted restoration of this network and the design of multi-mechanistic SynCom-based biocontrol strategies.
Crocus sativus L.
/
corm rot
/
rhizosphere microbiome
/
functional synergistic network
/
synthetic microbial communities (SynComs)
/
metagenomics
周桂芬, 万斌, 孙恒, 钱晓东, 秦路平.
西红花球茎腐烂病根际菌群功能协同网络失衡的宏基因组解析及靶向SynComs设计.
中草药,
2026
, 57
(6)
: 2316
-2325
.
DOI: 10.7501/j.issn.0253-2670.2026.06.025
ZHOU Guifen, WAN Bin, SUN Heng, QIAN Xiaodong, QIN Luping.
Shotgun metagenomic decoding of impaired functional aynergy in Crocus sativus rhizosphere microbiome during corm rot and targeted SynComs design[J].
Chinese Traditional and Herbal Drugs ,
2026
, 57
(6)
: 2316
-2325
.
DOI: 10.7501/j.issn.0253-2670.2026.06.025
参考文献
引证文献
中国药典[S]. 一部. 2025: 138-139. Frusciante S, Diretto G, Bruno M, et al . Novel carotenoid cleavage dioxygenase catalyzes the first dedicated step in saffron crocin biosynthesis[J]. Proc Natl Acad Sci USA , 2014, 111(33): 12246-12251. 周琳, 吴立峰, 王桢, 等. 长三角地区西红花良种繁育与高效栽培技术[J]. 现代农业科技, 2025(5): 208-211. 邱谷丰, 任廷丹, 王强, 等. 氯氟醚菌唑对西红花球茎腐烂病原菌尖孢镰刀菌的生物活性[J]. 农药学学报, 2023, 25(4): 850-857. Hu S, Wang X X, Sun W J, et al . In vitro study of biocontrol potential of rhizospheric Pseudomonas aeruginosa against pathogenic fungi of saffron (Crocus sativus L.)[J]. Pathogens , 2021, 10(11): 1423. Sharma A, Gupta V, Jamwal G, et al . Harnessing microbial consortia for sustainable management of corm rot of saffron[J]. J Basic Microbiol , 2025, 65(9): e70009. Thepbandit W, Athinuwat D. Rhizosphere microorganisms supply availability of soil nutrients and induce plant defense[J]. Microorganisms , 2024, 12(3): 558. de L Valente I, Wancura J H C, Zabot G L, et al . Endophytic and rhizospheric microorganisms: An alternative for sustainable, organic, and regenerative bioinput formulations for modern agriculture[J]. Microorganisms , 2025, 13(4): 813. Duret M, Wallner A, Buée M, et al . Rhizosphere microbiome assembly, drivers and functions in perennial ligneous plant health[J]. Microbiol Res , 2024, 287: 127860. Wahab A, Batool F, Abdi G, et al . Role of plant growth-promoting rhizobacteria in sustainable agriculture: Addressing environmental and biological challenges[J]. J Plant Physiol , 2025, 307: 154455. Kumari R, Pandey E, Bushra S, et al . Plant growth promoting rhizobacteria (PGPR) induced protection: A plant immunity perspective[J]. Physiol Plant , 2024, 176(5): e14495. Umer M, Anwar N, Mubeen M, et al . Roles of arbuscular mycorrhizal fungi in plant growth and disease management for sustainable agriculture[J]. Front Microbiol , 2025, 16: 1616273. Wang H, Chen Y L. Protecting plants from pathogens through arbuscular mycorrhiza: Role of fungal diversity[J]. Microbiol Res , 2024, 289: 127919. 吴李芳. 西红花球茎腐烂病的致病菌鉴定及其生防菌解淀粉芽孢杆菌C612的筛选和应用[D]. 杭州: 浙江大学, 2017. Guo Y Q, Tian L, Zhu X Y, et al . Antagonism of Bacillus velezensis ZGE166 against the pathogenic fungi causing corm rot disease in saffron (Crocus sativus L.)[J]. Microb Ecol , 2025, 88(1): 40. Tang Z R, Tan W B, Li R, et al . Advances in rhizosphere microbiome and rhizosphere immunity effect: A review[J]. J Agric Food Chem , 2025, 73(24): 14707-14721. Wang Z, Hu X H, Solanki M K, et al . A synthetic microbial community of plant core microbiome can be a potential biocontrol tool[J]. J Agric Food Chem , 2023, 71(13): 5030-5041. Izquierdo-García L F, González-Almario A, Cotes A M, et al . Trichoderma virens Gl006 and Bacillus velezensis Bs006: A compatible interaction controlling Fusarium wilt of cape gooseberry[J]. Sci Rep , 2020, 10(1): 6857. Durand K, Ogier J C, Nam K. The evaluation of shotgun sequencing and rpoB metabarcoding for taxonomic profiling of bacterial communities[J]. BMC Microbiol , 2025, 25(1): 413. Ren H L, Hong H L, Zha B R, et al . Soybean productivity can be enhanced by understanding rhizosphere microbiota: Evidence from metagenomics analysis from diverse agroecosystems[J]. Microbiome , 2025, 13(1): 105. Gai Y, Pan R, Xu D, et al . First report of Nectria haematococca causing stem rot of soybean in China[J]. Plant Dis , 2012, 96(3): 457.
2026年第57卷第6期
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doi: 10.7501/j.issn.0253-2670.2026.06.025
接收时间:2025-11-02
首发时间:2026-09-09
https://castjournals.cast.org.cn/joweb/zcy/CN/10.7501/j.issn.0253-2670.2026.06.025
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2种不同金属材料的力学参数
科 Family 属数 Number of genus 种数 Number of species 占总种数比例 Percentage of total species (%) 属 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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