Molecular characterization of a new wheat-Thinopyrum ponticum translocation line with resistance to stripe rust.

IF 4.2 1区 农林科学 Q1 AGRONOMY
Chengzhi Jiang, Yujie Luo, Yile Qi, Li Li, Tingting Jiang, Ennian Yang, Guangrong Li, Zujun Yang
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引用次数: 0

Abstract

Stripe rust (Puccinia striiformis f. sp. tritici) is a globally devastating foliar disease affecting common wheat. The development of new wheat varieties with novel and durable stripe rust resistance through wide hybridization represents a sustainable and cost-effective strategy for controlling the disease. Thinopyrum ponticum (Podp.) Barkworth & D.R. Dewey, a polyploid species in the tertiary genetic pool of wheat, harbors multiple disease resistance genes, and has been widely utilized for wheat improvement. We previously identified a wheat-Th. ponticum 6JS (6B) substitution line X005 with novel stripe rust resistance, which was derived from the wheat-Th. ponticum partial amphiploid Xiaoyan7430. In the present study, the chromosome compositions of Xiaoyan7430 and X005 were precisely characterized using non-denaturing - fluorescence in situ hybridization (ND-FISH) and Oligo-FISH painting. Notably, chromosome 6JS in X005 displayed distinctly different ND-FISH patterns compared to other reported Th. ponticum-derived 6Ae chromosomes introduced into various wheat backgrounds. To physically localize the 6JS-derived stripe rust resistance gene from X005, we isolated a set of wheat-6JS deletion and translocation lines after extensive screening of the progenies of crosses between X005 and susceptible wheat cultivars. Using 75 molecular markers, we established a cytological bin map for chromosome 6JS of X005. Resistance evaluation combined with molecular mapping revealed that the critical resistance locus resides in bin 6JSS-2 (FL 0.53-0.67) on the 6JS short arm, corresponding to the 74.51-135.61 Mb genome region of Th. elongatum chromosome 6E. This locus confers stripe rust resistance at both the seedling and adult-plant stages. Translocation T6JSS·6BL had enhanced Yr resistance and increased tiller numbers without any obvious negative effect on agronomic traits. Thus, the newly developed wheat-Th. ponticum 6JS translocation lines represent novel germplasm resources for the breeding of disease-resistant wheat cultivars.

小麦抗条锈病易位新品系的分子特性研究。
小麦条锈病是一种影响普通小麦的全球性毁灭性叶面病害。通过广泛杂交培育具有新型耐久抗条锈病的小麦新品种是防治条锈病的一种可持续和经济的策略。石竹(石竹)Barkworth & dr . Dewey是小麦三级基因库中的多倍体品种,具有多种抗病基因,已广泛应用于小麦改良。我们之前发现了一种小麦。新抗条锈病的ponticum 6JS (6B)代用系X005。ponticum部分两倍体Xiaoyan7430。本研究采用非变性荧光原位杂交(ND-FISH)和Oligo-FISH染色技术对小炎7430和X005的染色体组成进行了精确的鉴定。值得注意的是,X005的6JS染色体与其他报道的Th相比,显示出明显不同的ND-FISH模式。ponticum来源的6Ae染色体引入到不同的小麦背景中。为了从X005中获得6js来源的抗条锈病基因,我们对X005与易感品种杂交后代进行了广泛筛选,分离出一组小麦- 6js缺失易位系。利用75个分子标记,建立了X005染色体6JS细胞学bin图谱。抗性评价结合分子定位发现,抗性关键位点位于6JS短臂上的bin 6JSS-2 (FL 0.53-0.67),对应于Th的74.51-135.61 Mb基因组区域。染色体6E。这个位点在幼苗期和成株期都具有抗条锈病的能力。易位T6JSS·6BL提高了水稻抗逆性,增加了分蘖数,但对农艺性状无明显负面影响。因此,新开发的小麦- th。ponticum 6JS易位系是小麦抗病品种选育的新种质资源。
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来源期刊
CiteScore
9.60
自引率
7.40%
发文量
241
审稿时长
2.3 months
期刊介绍: Theoretical and Applied Genetics publishes original research and review articles in all key areas of modern plant genetics, plant genomics and plant biotechnology. All work needs to have a clear genetic component and significant impact on plant breeding. Theoretical considerations are only accepted in combination with new experimental data and/or if they indicate a relevant application in plant genetics or breeding. Emphasizing the practical, the journal focuses on research into leading crop plants and articles presenting innovative approaches.
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