Javid Saeideh, Bihamta Mohammad Reza, Omidi Mansour, Abbasi Ali Reza, Alipour Hadi, Ingvarsson Pär K, Poczai Peter
Department of Agronomy and Plant Breeding, University of Tehran, Karaj, Iran.
Botany and Mycology Unit, Finnish Museum of Natural History, University of Helsinki, Helsinki, Finland.
BMC Genomics. 2025 Jan 6;26(1):5. doi: 10.1186/s12864-024-11188-z.
Improving the germination performance of bread wheat is an important breeding target in many wheat-growing countries where seedlings are often established in soils with high salinity levels. This study sought to characterize the molecular mechanisms underlying germination performance in salt-stressed wheat. To achieve this goal, a genome-wide association study (GWAS) was performed on 292 Iranian bread wheat accessions, including 202 landraces and 90 cultivars.
A total of 10 and 15 functional marker-trait associations (MTAs) were detected under moderate (60 mM NaCl) and severe (120 mM NaCl) salinity, respectively. From genomic annotation, 17 candidate genes were identified that were functionally annotated to be involved in the germination performance of salt-stressed wheat, such as CHX2, PK2, PUBs, and NTP10. Most of these genes play key roles in DNA/RNA/ATP/protein binding, transferase activity, transportation, phosphorylation, or ubiquitination and some harbored unknown functions that collectively may respond to salinity as a complex network.
These findings, including the candidate genes, respective pathways, marker-trait associations (MTAs), and in-depth phenotyping of wheat accessions, improve knowledge of the mechanisms responsible for better germination performance of wheat seedlings under salinity conditions.
在许多小麦种植国家,提高面包小麦的发芽性能是一个重要的育种目标,这些国家的幼苗通常种植在高盐度土壤中。本研究旨在表征盐胁迫下小麦发芽性能的分子机制。为实现这一目标,对292份伊朗面包小麦种质进行了全基因组关联研究(GWAS),其中包括202份地方品种和90份栽培品种。
在中度(60 mM NaCl)和重度(120 mM NaCl)盐胁迫下,分别检测到10个和15个功能标记-性状关联(MTA)。通过基因组注释,鉴定出17个候选基因,其功能注释表明它们参与盐胁迫下小麦的发芽性能,如CHX2、PK2、PUBs和NTP10。这些基因大多在DNA/RNA/ATP/蛋白质结合、转移酶活性、运输、磷酸化或泛素化中起关键作用,有些具有未知功能,它们可能作为一个复杂的网络共同响应盐胁迫。
这些发现,包括候选基因、各自的途径、标记-性状关联(MTA)以及小麦种质的深入表型分析,提高了我们对盐胁迫条件下小麦幼苗更好发芽性能机制的认识。