Biotechnology Bulletin ›› 2022, Vol. 38 ›› Issue (12): 73-87.doi: 10.13560/j.cnki.biotech.bull.1985.2021-1296
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YAN Cong-wen1(), SU Dai-fa1, DAI Qing-zhong1, ZHANG Zhen-rong2, TIAN Yun-xia2, DONG Qiong-e2, ZHOU Wen-xing2, CHEN Shan-yan2, TONG Jiang-yun2(), CUI Xiao-long1()
Received:
2021-10-12
Online:
2022-12-26
Published:
2022-12-29
Contact:
TONG Jiang-yun,CUI Xiao-long
E-mail:Moscongwen@163.com;tjy671207@126.com;xlcui@ynu.edu.cn
YAN Cong-wen, SU Dai-fa, DAI Qing-zhong, ZHANG Zhen-rong, TIAN Yun-xia, DONG Qiong-e, ZHOU Wen-xing, CHEN Shan-yan, TONG Jiang-yun, CUI Xiao-long. Advances in Biological Control of Strawberry Diseases[J]. Biotechnology Bulletin, 2022, 38(12): 73-87.
门Phylum | 属Genus | 种Species | 病原菌Pathogens | 作用机制Mechanisms |
---|---|---|---|---|
Firmicutes | Bacillus | B. velezensis | Neopestalotiopsis clavispora | 促生作用[ |
Colletotrichum gloeosporioides | 抗生作用[ | |||
B. megaterium | Colletotrichum thebromicoia | 未说明[ | ||
B. licheniformis | Fusarium oxysporum f. sp. fragariae | 抗生作用[ | ||
Ramularia tulasnei | 促生作用、诱导系统抗性[ | |||
B. methylotrophicus | R. tulasnei | 促生作用、诱导系统抗性[ | ||
B. amyloliquefaciens | F. oxysporum | 调节微生物群落结构[ | ||
C. gloeosporioides | 未说明[ | |||
Botrytis cinerea | 未说明[ | |||
N. clavispora | 促生作用[ | |||
R. tulasnei | 促生作用、诱导系统抗性[ | |||
B. subtilis | Colletotrichum fragariae | 未说明[ | ||
Rhizopus stolonifer | 未说明[ | |||
C. gloeosporioides | 抗生作用[ | |||
N. clavispora | 促生作用[ | |||
Podosphaera aphanis | 促生作用[ | |||
R. tulasnei | 促生作用、诱导系统抗性[ | |||
Lactobacillus | L. plantarum | B. cinerea | 竞争作用[ | |
Xanthomonas fragariae | 未说明[ | |||
Staphylococcus | S. sciuri | C. nymphaeae | 促生作用[ | |
Paenibacillus | P. polymyxa | F. oxysporum f. sp. fragariae | 促生作用[ | |
Proteobacteria | Pseudomonas | P. fluorescens | B. cinerea, C. gloeosporioides, Phytophthora cactorum, R. stolonifer | 抗生作用[ |
P. putida | X. fragariae | 竞争作用[ | ||
Stenotrophomonas | S. maltophilia | Colletotrichum nymphaeae | 促生作用[ | |
Burkholderia | B. contaminans | B. cinerea | 未说明[ | |
Actinobacteria | Streptomyces | S. thermocarboxydus | Glomerella cingulata | 未说明[ |
S. hygroscopicus | F. oxysporum | 抗生作用[ | ||
S. albospinus | F. oxysporum | 促生作用[ | ||
S. cerevisiae | B. cinerea | 抗生作用[ | ||
Ascomycota | Trichoderma | T. asperellum | C. fragariae | 竞争作用、抗生作用、真菌重寄生[ |
T. harzianum | B. cinerea | 诱导系统抗性[ | ||
T. guizhouense | F. oxysporum | 调节微生物群落结构[ | ||
Metschnikowia | M. pulcherrima | Alternaria,Botrytis | 抗生作用[ | |
M. sinensis | Fusarium,Rhizopus | |||
M. andauensis | Verticillium | |||
Hanseniaspora | H. uvarum | B. cinerea | 抗生作用[ | |
Wickerhamomyces | W. anomalus | B. cinerea | 抗生作用[ | |
Purpureocillium | P. lilacinum | C. gloeosporioides, B. cinerea, P. aphanis | 促生作用[ | |
Clonostachys | C. rosea | |||
Cladophialophora | C. chaetospira | F. oxysporum f. sp. fragariae | 抗生作用、促生作用[ | |
Candida | C. intermedia | B. cinerea | 促生作用[ | |
Cladophialophora | C. chaetospira | F. oxysporum f. sp. fragariae | 抗生作用、促生作用[ | |
Mucoromycota | Funneliformis | F. mosseae | P. aphanis | 促生作用[ |
Rhizophagus | R. intraradices |
Table 1 Biological control microorganisms for strawberry and their control pathogens
门Phylum | 属Genus | 种Species | 病原菌Pathogens | 作用机制Mechanisms |
---|---|---|---|---|
Firmicutes | Bacillus | B. velezensis | Neopestalotiopsis clavispora | 促生作用[ |
Colletotrichum gloeosporioides | 抗生作用[ | |||
B. megaterium | Colletotrichum thebromicoia | 未说明[ | ||
B. licheniformis | Fusarium oxysporum f. sp. fragariae | 抗生作用[ | ||
Ramularia tulasnei | 促生作用、诱导系统抗性[ | |||
B. methylotrophicus | R. tulasnei | 促生作用、诱导系统抗性[ | ||
B. amyloliquefaciens | F. oxysporum | 调节微生物群落结构[ | ||
C. gloeosporioides | 未说明[ | |||
Botrytis cinerea | 未说明[ | |||
N. clavispora | 促生作用[ | |||
R. tulasnei | 促生作用、诱导系统抗性[ | |||
B. subtilis | Colletotrichum fragariae | 未说明[ | ||
Rhizopus stolonifer | 未说明[ | |||
C. gloeosporioides | 抗生作用[ | |||
N. clavispora | 促生作用[ | |||
Podosphaera aphanis | 促生作用[ | |||
R. tulasnei | 促生作用、诱导系统抗性[ | |||
Lactobacillus | L. plantarum | B. cinerea | 竞争作用[ | |
Xanthomonas fragariae | 未说明[ | |||
Staphylococcus | S. sciuri | C. nymphaeae | 促生作用[ | |
Paenibacillus | P. polymyxa | F. oxysporum f. sp. fragariae | 促生作用[ | |
Proteobacteria | Pseudomonas | P. fluorescens | B. cinerea, C. gloeosporioides, Phytophthora cactorum, R. stolonifer | 抗生作用[ |
P. putida | X. fragariae | 竞争作用[ | ||
Stenotrophomonas | S. maltophilia | Colletotrichum nymphaeae | 促生作用[ | |
Burkholderia | B. contaminans | B. cinerea | 未说明[ | |
Actinobacteria | Streptomyces | S. thermocarboxydus | Glomerella cingulata | 未说明[ |
S. hygroscopicus | F. oxysporum | 抗生作用[ | ||
S. albospinus | F. oxysporum | 促生作用[ | ||
S. cerevisiae | B. cinerea | 抗生作用[ | ||
Ascomycota | Trichoderma | T. asperellum | C. fragariae | 竞争作用、抗生作用、真菌重寄生[ |
T. harzianum | B. cinerea | 诱导系统抗性[ | ||
T. guizhouense | F. oxysporum | 调节微生物群落结构[ | ||
Metschnikowia | M. pulcherrima | Alternaria,Botrytis | 抗生作用[ | |
M. sinensis | Fusarium,Rhizopus | |||
M. andauensis | Verticillium | |||
Hanseniaspora | H. uvarum | B. cinerea | 抗生作用[ | |
Wickerhamomyces | W. anomalus | B. cinerea | 抗生作用[ | |
Purpureocillium | P. lilacinum | C. gloeosporioides, B. cinerea, P. aphanis | 促生作用[ | |
Clonostachys | C. rosea | |||
Cladophialophora | C. chaetospira | F. oxysporum f. sp. fragariae | 抗生作用、促生作用[ | |
Candida | C. intermedia | B. cinerea | 促生作用[ | |
Cladophialophora | C. chaetospira | F. oxysporum f. sp. fragariae | 抗生作用、促生作用[ | |
Mucoromycota | Funneliformis | F. mosseae | P. aphanis | 促生作用[ |
Rhizophagus | R. intraradices |
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