Xiao Gui, Borja Frances Nikki, Mauleon Ramil, Padilla Jonas, Telebanco-Yanoria Mary Jeanie, Yang Jianxia, Lu Guodong, Dionisio-Sese Maribel, Zhou Bo
Genetics and Biotechnology Division, International Rice Research Institute, DAPO Box 7777, Metro Manila, Philippines.
Institute of Biological Sciences, University of the Philippines Los Baños, 4031, Laguna, Philippines.
Rice (N Y). 2017 Dec;10(1):37. doi: 10.1186/s12284-017-0176-z. Epub 2017 Aug 4.
The rice Pi2/9 locus harbors multiple resistance (R) genes each controlling broad-spectrum resistance against diverse isolates of Magnaporthe oryzae, a fungal pathogen causing devastating blast disease to rice. Identification of more resistance germplasm containing novel R genes at or tightly linked to the Pi2/9 locus would promote breeding of resistance rice cultivars.
In this study, we aim to identify resistant germplasm containing novel R genes at or tightly linked to the Pi2/9 locus using a molecular marker, designated as Pi2/9-RH (Pi2/9 resistant haplotype), developed from the 5' portion of the Pi2 sequence which was conserved only in the rice lines containing functional Pi2/9 alleles. DNA analysis using Pi2/9-RH identified 24 positive lines in 55 shortlisted landraces which showed resistance to 4 rice blast isolates. Analysis of partial sequences of the full-length cDNAs of Pi2/9 homologues resulted in the clustering of these 24 lines into 5 haplotypes each containing different Pi2/9 homologues which were designated as Pi2/9-A5, -A15, -A42, -A53, and -A54. Interestingly, Pi2/9-A5 and Pi2/9-A54 are identical to Piz-t and Pi2, respectively. To validate the association of other three novel Pi2/9 homologues with the blast resistance, monogenic lines at BCF generation were generated by marker assisted backcrossing (MABC). Resistance assessment of the derived monogenic lines in both the greenhouse and the field hotspot indicated that they all controlled broad-spectrum resistance against rice blast. Moreover, genetic analysis revealed that the blast resistance of these three monogenic lines was co-segregated with Pi2/9-RH, suggesting that the Pi2/9 locus or tightly linked loci could be responsible for the resistance.
The newly developed marker Pi2/9-RH could be used as a potentially diagnostic marker for the quick identification of resistant donors containing functional Pi2/9 alleles or unknown linked R genes. The three new monogenic lines containing the Pi2/9 introgression segment could be used as valuable materials for disease assessment and resistance donors in breeding program.
水稻Pi2/9基因座含有多个抗性(R)基因,每个基因都能控制对稻瘟病菌不同分离株的广谱抗性,稻瘟病菌是一种给水稻带来毁灭性稻瘟病的真菌病原体。鉴定更多在Pi2/9基因座或与其紧密连锁的位置含有新R基因的抗性种质,将促进抗性水稻品种的培育。
在本研究中,我们旨在利用一个名为Pi2/9-RH(Pi2/9抗性单倍型)的分子标记,鉴定在Pi2/9基因座或与其紧密连锁的位置含有新R基因的抗性种质,该标记是从Pi2序列的5'部分开发而来,该部分仅在含有功能性Pi2/9等位基因的水稻品系中保守。使用Pi2/9-RH进行的DNA分析在55个入围地方品种中鉴定出24个阳性品系,这些品系对4个稻瘟病菌分离株表现出抗性。对Pi2/9同源物全长cDNA的部分序列进行分析,结果将这24个品系聚类为5个单倍型,每个单倍型包含不同的Pi2/9同源物,分别命名为Pi2/9-A5、-A15、-A42、-A53和-A54。有趣的是,Pi2/9-A5和Pi2/9-A54分别与Piz-t和Pi2相同。为了验证其他三个新的Pi2/9同源物与稻瘟病抗性的关联,通过标记辅助回交(MABC)在BCF代产生了单基因系。在温室和田间热点地区对衍生的单基因系进行抗性评估表明,它们都能控制对稻瘟病的广谱抗性。此外,遗传分析表明,这三个单基因系的稻瘟病抗性与Pi2/9-RH共分离,这表明Pi2/9基因座或紧密连锁的基因座可能是抗性的原因。
新开发的标记Pi2/9-RH可作为一种潜在的诊断标记,用于快速鉴定含有功能性Pi2/9等位基因或未知连锁R基因的抗性供体。这三个含有Pi2/9导入片段的新单基因系可作为育种计划中疾病评估和抗性供体的宝贵材料。