Waite Research Institute, School of Agriculture, Food & Wine, The University of Adelaide, Urrbrae, SA 5064, Australia.
Int J Mol Sci. 2021 May 24;22(11):5532. doi: 10.3390/ijms22115532.
Heat stress is a major limiting factor of grain yield and quality in crops. Abiotic stresses have a transgenerational impact and the mechanistic basis is associated with epigenetic regulation. The current study presents the first systematic analysis of the transgenerational effects of post-anthesis heat stress in tetraploid wheat. Leaf physiological traits, harvest components and grain quality traits were characterized under the impact of parental and progeny heat stress. The parental heat stress treatment had a positive influence on the offspring for traits including chlorophyll content, grain weight, grain number and grain total starch content. Integrated sequencing analysis of the small RNAome, mRNA transcriptome and degradome provided the first description of the molecular networks mediating heat stress adaptation under transgenerational influence. The expression profile of 1771 microRNAs (733 being novel) and 66,559 genes was provided, with differentially expressed microRNAs and genes characterized subject to the progeny treatment, parental treatment and tissue-type factors. Gene Ontology and KEGG pathway analysis of stress responsive microRNAs-mRNA modules provided further information on their functional roles in biological processes such as hormone homeostasis, signal transduction and protein stabilization. Our results provide new insights on the molecular basis of transgenerational heat stress adaptation, which can be used for improving thermo-tolerance in breeding.
热应激是作物产量和品质的主要限制因素。非生物胁迫具有跨代影响,其机制基础与表观遗传调控有关。本研究首次对四倍体小麦花后热应激的跨代效应进行了系统分析。在亲代和子代热应激的影响下,对叶片生理特性、收获成分和籽粒品质特性进行了表征。亲代热应激处理对后代的叶绿素含量、粒重、粒数和籽粒总淀粉含量等性状有积极影响。小 RNAome、mRNA 转录组和降解组的综合测序分析提供了在跨代影响下介导热应激适应的分子网络的首次描述。提供了 1771 个 microRNAs(733 个是新的)和 66559 个基因的表达谱,对受子代处理、亲代处理和组织类型因素影响的差异表达 microRNAs 和基因进行了表征。应激响应 microRNAs-mRNA 模块的基因本体论和 KEGG 通路分析提供了更多关于它们在激素稳态、信号转导和蛋白质稳定等生物过程中的功能作用的信息。我们的研究结果为跨代热应激适应的分子基础提供了新的见解,可用于改良育种中的耐热性。