Guoliang Li, Jianting Chu, Max Haupt, Yong Jiang, Jochen C. Reif
{"title":"Genetic Dissection of Wheat Heterosis Identifies Candidate Genes in Biparental and Diverse Hybrid Populations","authors":"Guoliang Li, Jianting Chu, Max Haupt, Yong Jiang, Jochen C. Reif","doi":"10.1111/pbi.70748","DOIUrl":null,"url":null,"abstract":"Understanding how numerous heterotic quantitative trait loci (hQTL) shape heterosis and shifting from hQTL to candidate genes are central challenges. To address these challenges, we performed a systematic, genome‐wide mapping in a biparental population and a population of diverse hybrids. Leveraging both a triple testcross and immortalized F <jats:sub>2</jats:sub> designs, we examined the genetic basis of the heterosis of the wheat hybrid <jats:italic>Piko</jats:italic> × <jats:italic>Hermann</jats:italic> . We detected a major hQTL on chromosome 4B, primarily driven by epistasis. This region contains the <jats:italic>Green Revolution</jats:italic> gene <jats:italic>Rht‐B1</jats:italic> as the primary candidate gene. Then, we used a population of ~6000 wheat hybrids, derived from crosses between diverse Central European inbred lines, to perform a one‐dimensional scan for hQTL. This scan identified 174 hQTL for grain yield, 70 for heading date, and 166 for plant height. Further dissection of these hQTL revealed that epistatic interactions predominantly contribute to heterosis. We discovered an epistatic hub at the distal end of chromosome 4A coinciding with an alien introgression region from emmer wheat. A data‐driven, integrative analysis combining high‐resolution SNP data, sequence variant annotation, and hQTL signals from the population uncovered <jats:italic>TraesCS7B03G1341000</jats:italic> as the candidate gene underlying grain yield heterosis. Our findings deepen the understanding of the genetic architecture of heterosis in wheat by shifting from hQTL to candidate genes and provide insights into their application in hybrid wheat breeding.","PeriodicalId":221,"journal":{"name":"Plant Biotechnology Journal","volume":"136 1","pages":""},"PeriodicalIF":12.8000,"publicationDate":"2026-08-31","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Plant Biotechnology Journal","FirstCategoryId":"5","ListUrlMain":"https://doi.org/10.1111/pbi.70748","RegionNum":1,"RegionCategory":"生物学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"BIOTECHNOLOGY & APPLIED MICROBIOLOGY","Score":null,"Total":0}
引用次数: 0
Abstract
Understanding how numerous heterotic quantitative trait loci (hQTL) shape heterosis and shifting from hQTL to candidate genes are central challenges. To address these challenges, we performed a systematic, genome‐wide mapping in a biparental population and a population of diverse hybrids. Leveraging both a triple testcross and immortalized F 2 designs, we examined the genetic basis of the heterosis of the wheat hybrid Piko × Hermann . We detected a major hQTL on chromosome 4B, primarily driven by epistasis. This region contains the Green Revolution gene Rht‐B1 as the primary candidate gene. Then, we used a population of ~6000 wheat hybrids, derived from crosses between diverse Central European inbred lines, to perform a one‐dimensional scan for hQTL. This scan identified 174 hQTL for grain yield, 70 for heading date, and 166 for plant height. Further dissection of these hQTL revealed that epistatic interactions predominantly contribute to heterosis. We discovered an epistatic hub at the distal end of chromosome 4A coinciding with an alien introgression region from emmer wheat. A data‐driven, integrative analysis combining high‐resolution SNP data, sequence variant annotation, and hQTL signals from the population uncovered TraesCS7B03G1341000 as the candidate gene underlying grain yield heterosis. Our findings deepen the understanding of the genetic architecture of heterosis in wheat by shifting from hQTL to candidate genes and provide insights into their application in hybrid wheat breeding.
期刊介绍:
Plant Biotechnology Journal aspires to publish original research and insightful reviews of high impact, authored by prominent researchers in applied plant science. The journal places a special emphasis on molecular plant sciences and their practical applications through plant biotechnology. Our goal is to establish a platform for showcasing significant advances in the field, encompassing curiosity-driven studies with potential applications, strategic research in plant biotechnology, scientific analysis of crucial issues for the beneficial utilization of plant sciences, and assessments of the performance of plant biotechnology products in practical applications.