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TWAS facilitates gene-scale trait genetic dissection through gene expression,structural variations,and alternative splicing in soybean

摘要A genome-wide association study(GWAS)identifies trait-associated loci,but identifying the causal genes can be a bottleneck,due in part to slow decay of linkage disequilibrium(LD).A transcriptome-wide asso-ciation study(TWAS)addresses this issue by identifying gene expression-phenotype associations or inte-grating gene expression quantitative trait loci with GWAS results.Here,we used self-pollinated soybean(Glycine max[L.]Merr.)as a model to evaluate the application of TWAS to the genetic dissection of traits in plant species with slow LD decay.We generated RNA sequencing data for a soybean diversity panel and identified the genetic expression regulation of 29 286 soybean genes.Different TWAS solutions were less affected by LD and were robust to the source of expression,identifing known genes related to traits from different tissues and developmental stages.The novel pod-color gene L2 was identified via TWAS and functionally validated by genome editing.By introducing a new exon proportion feature,we significantly improved the detection of expression variations that resulted from structural variations and alternative splicing.As a result,the genes identified through our TWAS approach exhibited a diverse range of causal variations,including SNPs,insertions or deletions,gene fusion,copy number variations,and alternative splicing.Using this approach,we identified genes associated with flowering time,including both previously known genes and novel genes that had not previously been linked to this trait,providing insights complementary to those from GWAS.In summary,this study supports the application of TWAS for candidate gene identification in species with low rates of LD decay.

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作者 Delin Li [1] Qi Wang [2] Yu Tian [3] Xiangguang Lyv [4] Hao Zhang [5] Huilong Hong [6] Huawei Gao [7] Yan-Fei Li Chaosen Zhao Jiajun Wang Ruizhen Wang Jinliang Yang Bin Liu Patrick S.Schnable James C.Schnable Ying-Hui Li Li-Juan Qiu 学术成果认领
作者单位 The National Key Facility for Crop Gene Resources and Genetic Improvement(NFCRI)/Key Laboratory of Crop Gene Resource and Germplasm Enhancement(MOA)/State Key Laboratory of Crop Gene Resources and Breeding,Institute of Crop Science,Chinese Academy of Agricultural Sciences,Beijing 100081,China [1] The National Key Facility for Crop Gene Resources and Genetic Improvement(NFCRI)/Key Laboratory of Crop Gene Resource and Germplasm Enhancement(MOA)/State Key Laboratory of Crop Gene Resources and Breeding,Institute of Crop Science,Chinese Academy of Agricultural Sciences,Beijing 100081,China;College of Agriculture,Northeast Agricultural University,Harbin 150030,China [2] The National Key Facility for Crop Gene Resources and Genetic Improvement(NFCRI)/Key Laboratory of Crop Gene Resource and Germplasm Enhancement(MOA)/State Key Laboratory of Crop Gene Resources and Breeding,Institute of Crop Science,Chinese Academy of Agricultural Sciences,Beijing 100081,China;National Nanfan Research Institute(Sanya),Chinese Academy of Agricultural Sciences,Sanya 572024,China [3] Crops Research Institute of Jiangxi Academy of Agricultural Sciences,Nanchang 330200,China [4] Soybean Research Institute,Heilongjiang Academy of Agricultural Sciences,Harbin 150086,China [5] Department of Agronomy and Horticulture,University of Nebraska-Lincoln,Lincoln,NE 68583,USA [6] Department of Agronomy,Iowa State University,Ames,IA 50011,USA [7]
DOI 10.1016/j.xplc.2024.101010
发布时间 2025-01-15(万方平台首次上网日期,不代表论文的发表时间)
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