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Plant Dis. 2005 Oct;89(10):1083-1089. doi: 10.1094/PD-89-1083.
2
Differences in Frequency of Transposable Elements Presence in Botrytis cinerea Populations from Several Hosts in Greece.希腊几种寄主的灰葡萄孢菌群体中转座元件存在频率的差异。
Plant Dis. 2012 Sep;96(9):1286-1290. doi: 10.1094/PDIS-01-12-0103-RE.
3
Digital Imaging Combined with Genome-Wide Association Mapping Links Loci to Plant-Pathogen Interaction Traits.数字成像与全基因组关联作图相结合将基因座与植物-病原体相互作用性状联系起来。
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4
Biosynthesis of abscisic acid in fungi: identification of a sesquiterpene cyclase as the key enzyme in Botrytis cinerea.真菌中脱落酸的生物合成:鉴定出 Botrytis cinerea 中的一种倍半萜环化酶为关键酶。
Environ Microbiol. 2018 Jul;20(7):2469-2482. doi: 10.1111/1462-2920.14258. Epub 2018 Jul 26.
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Plastic Transcriptomes Stabilize Immunity to Pathogen Diversity: The Jasmonic Acid and Salicylic Acid Networks within the Arabidopsis/ Pathosystem.塑料转录组稳定了对病原体多样性的免疫:拟南芥/病原体系统中的茉莉酸和水杨酸网络。
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Comparative Genomics Integrated with Association Analysis Identifies Candidate Effector Genes Corresponding to in Phenotype-Paired Isolates from Australia.整合比较基因组学与关联分析鉴定来自澳大利亚的表型配对分离株中与[具体性状]相对应的候选效应基因。
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8
Trade-Offs Between Plant Growth and Defense Against Insect Herbivory: An Emerging Mechanistic Synthesis.权衡植物生长和防御昆虫取食之间的关系:新兴的机制综合。
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The shade-avoidance syndrome: multiple signals and ecological consequences.避荫综合征:多种信号与生态后果。
Plant Cell Environ. 2017 Nov;40(11):2530-2543. doi: 10.1111/pce.12914. Epub 2017 Mar 1.
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Rewiring of jasmonate and phytochrome B signalling uncouples plant growth-defense tradeoffs.茉莉酸和光敏色素 B 信号的重布线解除了植物生长-防御权衡。
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番茄与遗传多样性的相互作用:解析宿主分化、驯化和病原体变异的贡献。

Interactions of Tomato and Genetic Diversity: Parsing the Contributions of Host Differentiation, Domestication, and Pathogen Variation.

机构信息

Department of Plant Sciences, University of California, Davis, One Shields Avenue, Davis, California, 95616.

Department of Plant Pathology, North Dakota State University, Fargo, North Dakota, 58102.

出版信息

Plant Cell. 2019 Feb;31(2):502-519. doi: 10.1105/tpc.18.00857. Epub 2019 Jan 15.

DOI:10.1105/tpc.18.00857
PMID:30647076
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6447006/
Abstract

Although the impacts of crop domestication on specialist pathogens are well known, less is known about the interaction of crop variation and generalist pathogens. To study how genetic variation within a crop affects plant resistance to generalist pathogens, we infected a collection of wild and domesticated tomato accessions with a genetically diverse population of the generalist pathogen We quantified variation in lesion size of 97 genotypes (isolates) on six domesticated tomato genotypes () and six wild tomato genotypes (). Lesion size was significantly affected by large effects of the host and pathogen's genotype, with a much smaller contribution of domestication. This pathogen collection also enables genome-wide association mapping of Genome-wide association mapping of the pathogen showed that virulence is highly polygenic and involves a diversity of mechanisms. Breeding against this pathogen would likely require the use of diverse isolates to capture all possible mechanisms. Critically, we identified a subset of genes where allelic variation was linked to altered virulence against wild versus domesticated tomato, as well as loci that could handle both groups. This generalist pathogen already has a large collection of allelic variation that must be considered when designing a breeding program.

摘要

尽管作物驯化对专性病原菌的影响已广为人知,但对于作物变异和兼性病原菌之间的相互作用却知之甚少。为了研究作物内部遗传变异如何影响植物对兼性病原菌的抗性,我们用遗传上多样化的兼性病原菌群体感染了一组野生和驯化的番茄品系。我们量化了 97 个基因型(分离株)在 6 个驯化番茄基因型()和 6 个野生番茄基因型()上的病变大小的变化。病变大小受到宿主和病原菌基因型的显著影响,而驯化的影响要小得多。这个病原菌群体还可以对进行全基因组关联图谱分析。病原菌的全基因组关联图谱分析表明,毒力是高度多基因的,涉及多种机制。针对这种病原菌的选育可能需要使用多种分离株来捕获所有可能的机制。至关重要的是,我们确定了一组基因,其中等位基因变异与野生番茄与驯化番茄的毒力变化有关,以及可以处理这两组的基因座。在设计一个选育计划时,这个兼性病原菌已经有了大量的等位基因变异,这是必须要考虑的。