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在一个水稻多亲本高级世代互交群体中鉴定出的对细菌病原体的广谱抗性和易感性的等位基因变异。

Allelic variation for broad-spectrum resistance and susceptibility to bacterial pathogens identified in a rice MAGIC population.

作者信息

Bossa-Castro Ana M, Tekete Cheick, Raghavan Chitra, Delorean Emily E, Dereeper Alexis, Dagno Karim, Koita Ousmane, Mosquera Gloria, Leung Hei, Verdier Valérie, Leach Jan E

机构信息

Department of Bioagricultural Sciences and Pest Management, Colorado State University, Fort Collins, CO, USA.

IRD, Cirad, IPME, Univ Montpellier, Montpellier, France.

出版信息

Plant Biotechnol J. 2018 Feb 6;16(9):1559-68. doi: 10.1111/pbi.12895.

Abstract

Quantitative trait loci (QTL) that confer broad-spectrum resistance (BSR), or resistance that is effective against multiple and diverse plant pathogens, have been elusive targets of crop breeding programmes. Multiparent advanced generation intercross (MAGIC) populations, with their diverse genetic composition and high levels of recombination, are potential resources for the identification of QTL for BSR. In this study, a rice MAGIC population was used to map QTL conferring BSR to two major rice diseases, bacterial leaf streak (BLS) and bacterial blight (BB), caused by Xanthomonas oryzae pathovars (pv.) oryzicola (Xoc) and oryzae (Xoo), respectively. Controlling these diseases is particularly important in sub-Saharan Africa, where no sources of BSR are currently available in deployed varieties. The MAGIC founders and lines were genotyped by sequencing and phenotyped in the greenhouse and field by inoculation with multiple strains of Xoc and Xoo. A combination of genomewide association studies (GWAS) and interval mapping analyses revealed 11 BSR QTL, effective against both diseases, and three pathovar-specific QTL. The most promising BSR QTL (qXO-2-1, qXO-4-1 and qXO-11-2) conferred resistance to more than nine Xoc and Xoo strains. GWAS detected 369 significant SNP markers with distinguishable phenotypic effects, allowing the identification of alleles conferring disease resistance and susceptibility. The BSR and susceptibility QTL will improve our understanding of the mechanisms of both resistance and susceptibility in the long term and will be immediately useful resources for rice breeding programmes.

摘要

赋予广谱抗性(BSR),即对多种不同植物病原体有效的抗性的数量性状基因座(QTL),一直是作物育种计划难以捉摸的目标。多亲代高级世代杂交(MAGIC)群体具有多样的遗传组成和高水平的重组,是鉴定BSR相关QTL的潜在资源。在本研究中,一个水稻MAGIC群体被用于定位赋予对两种主要水稻病害——细菌性条斑病(BLS)和白叶枯病(BB)——广谱抗性的QTL,这两种病害分别由水稻黄单胞菌致病变种(pv.)oryzicola(Xoc)和oryzae(Xoo)引起。在撒哈拉以南非洲,控制这些病害尤为重要,因为目前推广的品种中没有BSR来源。通过测序对MAGIC创始亲本和株系进行基因分型,并在温室和田间通过接种多种Xoc和Xoo菌株进行表型分析。全基因组关联研究(GWAS)和区间作图分析相结合,揭示了11个对两种病害均有效的BSR QTL和3个病原菌致病变种特异性QTL。最有前景的BSR QTL(qXO - 2 - 1、qXO - 4 - 1和qXO - 11 - 2)对9种以上的Xoc和Xoo菌株具有抗性。GWAS检测到369个具有明显表型效应的显著SNP标记,从而能够鉴定出赋予抗病性和感病性的等位基因。从长远来看,这些BSR和感病性QTL将增进我们对抗性和感病性机制的理解,并且将立即成为水稻育种计划的有用资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d106/11388555/56a02c8626d4/PBI-16-1559-g004.jpg

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