砧木
茉莉酸甲酯
生物
苹果属植物
基因
候选基因
生物逆境
转录因子
大块分离分析
数量性状位点
遗传学
拟南芥
抑制因子
茉莉酸
分泌物
植物
植物生理学
基因沉默
表型
发起人
多叶的
基因表达
水杨酸甲酯
基因座(遗传学)
野生型
抄写(语言学)
非生物胁迫
苹果树
基因表达谱
水杨酸
作者
Xuewen Zhao,Zhongli Zhou,Mengke Li,Shuo Zhao,Pengjing Guo,Guofei Ji,Xuefeng Xu,Zhenhai Han,Changpeng Qiu
出处
期刊:Plant Physiology
[Oxford University Press]
日期:2025-09-01
卷期号:199 (1)
被引量:2
标识
DOI:10.1093/plphys/kiaf277
摘要
Phosphorus (P) deficiency is a prevalent constraint in agricultural soils, which limiting plant growth and productivity. In apple (Malus domestica Borkh.), the molecular mechanisms underlying the response to low-P (LP) stress remain largely unclear. Here, we employed a multi-omics approach to elucidate the mechanism of apple rootstock response to low-P stress. The progenies derived from LP-tolerant (PT) apple rootstock Baleng Crab (Malus robusta Rehd., BC) × LP-sensitive (PS) rootstock M9 (M. pumila Mill.) were used for bulked segregant analysis sequencing (BSA-seq) and RNA-sequencing. Integrating variation information, transcript levels and function annotation, 24 candidate genes related to low-P tolerance were predicted from the quantitative trait locus (QTL) regions. Furthermore, metabolomic profiling of parental root exudates revealed significantly higher methyl jasmonate (MeJA) secretion in BC under LP stress compared with that in M9. The association analysis demonstrated a negative relationship between the expression of HOMEOBOX PROTEIN 52 (MdHB52) from the candidate genes and MeJA biosynthetic genes. Silencing MdHB52 resulted in increased MeJA secretion and elevated P content. MdHB52 bound to the promoters of MeJA biosynthetic genes and suppressed their expression. Interestingly, a single nucleotide polymorphism variation within the MdHB52 promoter of the PT apple rootstocks disrupted the MYBCORE cis element, affecting its expression level and leading to increased MeJA secretion and P uptake. This study identified reliable candidate genes through multi-omics analysis, providing valuable insights for apple rootstock breeding aimed at enhancing tolerance to P-deficient soils.
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