读书报告11揭秘根际微生物中的抗病性细菌.ppt
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1、Deciphering the Rhizosphere Microbiomefor Disease-Suppressive Bacteria揭秘根际微生物中的抗病性细菌,Rodrigo Mendes,et al.27 MAY 2011 SCIENCE VOL 332,OUTLINE,Introduction&The Aim of This StudyMaterials&MethodsResultsDiscussion My gains and Thinking,Introduction&The Aim of This Study,Disease-suppressive soils are ex
2、ceptional eco-systems in which crop plants suffer less from specific soil-borne pathogens than expected owing to the activities of other soil microorganisms.抗病性土壤是一种特殊的生态系统,由于其他土壤微生物的活性,其比预期更好的减少作物因专性土传病原菌的带来的损失。,For most disease-suppressive soils,the microbes and mechanisms involved in pathogen con
3、trol are unknown.对于绝大多数的抗病性土壤而言,其调控病原菌的微生物种类及其机制还不清楚。,Similar to other eukaryotes(真核生物),plants and their microbiomes can be viewed as“superorganisms”in which the plant relies,in part,on the soil microbiotic for specific functions and traits.与其它真核生物相似,植物与它们根际的微生物被称为“超个体”,由于植物的生长部分依赖于土壤微生物特殊的功能和特性。,In
4、 return,plants exude up to 21%of their photosynthetically fixed carbon in the root-soil interface,thereby feeding the microbial communities and influencing their activity and diversity.作为反馈,植物输出其光合作用固定的碳的21%进入根土界面,以此来供养微生物群落,并影响它们的活性和多样性。,For decades,studies about the interplay between plants and rh
5、izosphere microorganisms have focused on pathogens,symbiotic rhizobia,and mycorrhizal fungi,yet there is evidence that other groups of soil microorganisms can affect plant growth and health.过去的几十年间,关于植物与根际微生物相互作用的研究主要关注病原菌、共生根际细菌和菌根真菌,然而,有证据表明其它类群的土壤微生物也能影响植物的生长和健康。,It even has been postulated that
6、plants actively recruit beneficial soil microorganisms in their rhizospheres to counteract pathogen assault(袭击).One well-known phenomenon is the occurrence of disease-suppressive soils,a property conferred by the resident microbiota via as yet unknown mechanisms.,The aim of this study is to decipher
7、 the rhizosphere microbiome to identify such disease-suppressive microbes and to unravel the mechanisms by which they protect plants against root diseases.本研究的目的在于鉴定根际微生物中的抗病性微生物,并阐明它们保护植物抵抗根部病害的机理。,Materials&Methods,The soil we investigated is suppressive to Rhizoctonia solani(立枯丝核菌),an economicall
8、y important fungal pathogen of many crops including sugar beet,potato,and rice.In the years before its discovery,sugar beet plants grown in this field were severely affected by R.solani.,Disease suppressiveness was determined for various treatments:suppressive soil(S)conducive soil(C)conducive soil
9、amended with 10%(w/w)of suppressive soil(CS)suppressive soil heat-treated at 50 for 1 hour(S50)suppressive soil heat-treated at 80 for 1 hour(S80),I-Experimental design1 Sugar beet grown in the presence of R.solani(N=4).2 Sugar beet grown in the absence of R.solani(N=4).*Treatments selected for Phyl
10、oChip analysis.,III-Isolation of specific bacterial taxa targeted by PhyloChip analysis,1 Bacterial isolation from suppressive and conducive soils(1000 random isolates).General aerobic growth medium(TSA)Pseudomonadaceae(假单胞菌)semi-selective medium(PSA).2 Genetic and phenotypic characterization(107 is
11、olates).Screening for antagonistic traits(in vitro tests,PCR)BOX-PCR 16S rDNA sequencing in vivo bioassays.3 Alignments and BLAST searches in the GreenGenes database using 16S rDNA sequences of the functional bacterial groups.,IV-Genes and pathways involved in disease suppressionGenetic,bioinformati
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