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多抗高产小麦新品种川麦82的遗传构成解析OA

Genetic Composition Analysis of a New Multi-Resistant and High-Yield Wheat Variety,Chuanmai 82

中文摘要英文摘要

[目的]川麦 82 是利用国际玉米小麦改良中心(CIMMYT)持久抗病种质 Singh6 选育而成的多抗高产小麦新品种.通过构建川麦 82 基因型图谱,量化双亲对其基因组贡献率,解析其遗传构成,并明确抗病和产量等性状相关遗传位点的亲本来源,为小麦品种改良和亲本精准选配提供科学依据.[方法]利用小麦 100K SNP 液相芯片技术对川麦 82 及其双亲进行全基因组扫描,系统分析其遗传构成;结合芯片搭载的与重要农艺性状及产量性状关联的功能标记,对川麦82 的等位基因型进行分析,以追溯其抗病及产量相关性状的遗传来源.[结果]全基因组分析结果表明,供体亲本 Singh6和轮回亲本川农 16 对川麦 82 的遗传贡献率分别为 16.36%和 83.64%,与回交育种的理论预期相符.贡献率在 A、B、D亚基因组间呈现 A>B>D 的差异.在染色体水平上,Singh6 的遗传片段并非均匀分布,其在 1B、2D、4B、5D 和 6A 染色体上贡献了 49.24%—86.91%的遗传组分,形成了显著的大片段供体区段;而川农 16 在其余多数染色体上的贡献率超过 89%,构成了品种的遗传背景.基于功能标记的溯源分析进一步揭示,川麦 82 的条锈病、叶锈病和白粉病抗性基因主要源自 Singh6,而抗穗发芽和产量相关基因则主要继承自川农 16.[结论]在基因组和染色体水平上精准量化了川麦 82 的遗传构成.尤为重要的是,发现供体亲本 Singh6 的遗传贡献集中分布于 1B、2D、4B、5D 和 6A 等染色体上,形成了大片段供体区段,保留了供体亲本的遗传多样性.结合功能标记分析,部分区段恰好富集了来自 Singh6 的锈病、白粉病抗性基因.因此,这些大片段供体区段与来自川农 16 的高产遗传背景的有机结合,很可能是川麦 82 实现持久抗病与高产协同提升的关键遗传基础.

[Objective]Chuanmai 82 is a new multiple disease-resistant and high-yielding wheat variety bred from the durable disease-resistant germplasm Singh6,developed by the International Maize and Wheat Improvement Center(CIMMYT).This study aimed to construct a high-density genotypic map of Chuanmai 82,quantify the genomic contribution rates of its two parental lines,analyze its genetic composition,and clarify the parental origins of genetic loci associated with key traits such as disease resistance and yield.The findings provide a scientific basis for wheat variety improvement and the precise selection of parental lines in breeding programs.[Method]The wheat 100K SNP array was used to perform whole-genome scanning of Chuanmai 82 and its two parents.This enabled a systematic analysis of its genetic architecture.Combined with the functional markers related to important agronomic traits and yield traits carried on the SNP array,the allelic genotype of Chuanmai 82 was analyzed to trace the genetic sources of its disease resistance and yield-related traits.[Result]Whole-genome analysis indicated that the genetic contributions of the donor parent Singh6 and the recurrent parent Chuanong 16 to Chuanmai 82 were 16.36%and 83.64%,respectively,which aligns with the theoretical expectations of backcross breeding.The contribution rates exhibited a gradient difference across the subgenomes A,B,and D,with A>B>D.At the chromosomal level,the genetic fragments from Singh6 were not uniformly distributed,contributing 49.24%to 86.91%of the genetic components on chromosomes 1B,2D,4B,5D,and 6A,forming significant large-segment donor regions.In contrast,Chuanong 16 contributed over 89%to most of the remaining chromosomes,constituting the genetic background of the variety.Functional marker-based tracing further demonstrated that the stripe rust,leaf rust,and powdery mildew resistance genes in Chuanmai 82 were predominantly derived from Singh6,while the pre-harvest sprouting resistance and yield-related genes were mainly inherited from Chuanong 16.[Conclusion]This study accurately quantified the genetic composition of Chuanmai 82 at both the genome and chromosome levels.Notably,the genetic contribution of the donor parent Singh6 was concentrated on chromosomes 1B,2D,4B,5D,and 6A,forming large-segment donor regions that retained the genetic diversity of the donor parent.Combined with functional marker analysis,some of these regions were enriched with rust and powdery mildew resistance genes from Singh6.Therefore,the optimal combination of these large-segment donor regions(carrying disease resistance genes)and the high-yield genetic background from Chuanong 16 is likely the key genetic basis for the synergistic enhancement of durable disease resistance and high yield in Chuanmai 82.

姚方杰;杨漫宇;甘学琴;杨宁;曾令芸;李俊;杨武云;杨恩年

四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院农业资源与环境研究所,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066四川省农业科学院作物研究所(四川省种质资源中心)/农业农村部西南地区小麦生物学与遗传育种重点实验室/农业农村部天府种业创新重点实验室(部省共建)/粮油作物种质创新与遗传改良四川省重点实验室,成都 610066

川麦82持久抗病SNP标记基因型图谱遗传构成

Chuanmai 82durable resistanceSNP markergenotypic mapgenetic constitution

《中国农业科学》 2026 (16)

3465-3475,11

四川省科技计划(2025YFHZ0251)、四川麦类创新团队项目(SCCXTD-2024-11)、四川省自然科学基金(2024NSFSC1207)、国家农业重大科技项目(NK20220607)

10.3864/j.issn.0578-1752.2026.16.001

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