Genome-wide association study delineating genomic regions contributing to heat stress tolerance at vegetative stage in mung bean [Vigna radiata (L.) R. Wilczek]

dc.contributor.authorJha, Uday Chand
dc.contributor.authorShafi, Sadiah
dc.contributor.authorMohanty, Jitendra Kumar
dc.contributor.authorNayyar, Harsh
dc.contributor.authorYadava, Yashwant Kumar
dc.contributor.authorCiampitti, Ignacio Antonio
dc.contributor.authorParida, Swarup Kumar
dc.contributor.authorSiddique, Kadambot Hamza Mohamed
dc.contributor.authorPrasad, Pagadala Venkata Vara
dc.date.accessioned2026-09-01T10:45:55Z
dc.date.issued2026
dc.descriptionAccepted date: 04 August 2026
dc.description.abstractIntensifying climate change and increasing heat stress pose a growing challenge to global food crop production, including mung bean [Vigna radiata (L.) R. Wilczek]. Mung bean is a vital protein-rich pulse crop with essential vitamins and micronutrients. However, rising heat stress increasingly constrains its production worldwide. Despite extensive studies on physiological and biochemical responses, genomic resources for heat tolerance in mung bean remain limited. This study employed a genome-wide association study (GWAS) using 5,758 high-quality SNPs to identify genomic regions and candidate genes associated with heat stress tolerance at the vegetative stage. A globally diverse panel of 396 genotypes was evaluated under optimal (34/25 °C) and heat stress (42/30 °C) conditions, assessing six major morpho-physiological traits including leaf chlorophyll index measured by SPAD, photosystem II maximum quantum efficiency (Fv/Fm), membrane damage, plant height, days to flowering and plant biomass. Marker-trait association (MTA) analysis identified nine significant MTAs under optimal conditions and 12 under heat stress. Under heat stress, two MTAs for days to flowering were detected on chromosome (Chr) 3 (S3_8626095) and Chr5 (S5_26149549). These SNPs explained 2.3% to 4.3% of the phenotypic variance explained (PVE). Eleven putative candidate genes were identified, including LOC106757788 encoding phytochrome A-like proteins, LOC106770897 encoding leucine-rich repeat extension-like proteins (maintaining structural integrity under heat stress), and LOC106761867 encoding calcium ATPases (maintaining low cytoplasmic calcium and preventing cytotoxicity). These findings identify key genomic regions and pathways associated with heat stress tolerance, offering valuable resources for marker-assisted breeding of heat-resilient mung bean cultivars. Further validation of candidate genes will enable designing of improved climate resilient varieties. This article supports United Nations’ Sustainable Development Goal: SDG-2 (Zero Hunger) by advancing molecular and cytogenetic research for the genetic improvement of mung bean.
dc.description.sponsorshipAuthors are grateful to KSU for conducting this study. The authors are also thankful to Dr. Shyam Tallury from Plant Genetic Resources Conservation Unit in Griffin, GA,30223, USA, for providing us with the germplasm for conducting this research. Contribution Number 27-017-J from the Kansas Agricultural Experiment Station is acknowledged.PV Vara Prasad acquired the necessary funding and supervised this study.
dc.identifier.citationThe Nucleus, (In Press)
dc.identifier.issn0976-7975
dc.identifier.issn0029-568X
dc.identifier.otherhttps://doi.org/10.1007/s13237-026-00705-y
dc.identifier.urihttps://link.springer.com/article/10.1007/s13237-026-00705-y
dc.identifier.urihttps://ndkr-library.nipgr.ac.in/handle/123456789/1845
dc.language.isoen_US
dc.publisherSpringer Nature Publishing AG
dc.subjectMung bean
dc.subjectHeat stress
dc.subjectGWAS
dc.subjectClimate resilience
dc.subjectMarker-trait association
dc.subjectCandidate genes
dc.subjectSDG-2 (zero hunger)
dc.titleGenome-wide association study delineating genomic regions contributing to heat stress tolerance at vegetative stage in mung bean [Vigna radiata (L.) R. Wilczek]
dc.typeArticle

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