Expression divergence of BAG gene family in maize under heat stress.

IF 4.8 2区 生物学 Q1 PLANT SCIENCES BMC Plant Biology Pub Date : 2025-01-04 DOI:10.1186/s12870-024-06020-5
Babar Farid, Muhammad Abu Bakar Saddique, Muhammad Hammad Nadeem Tahir, Rao Muhammad Ikram, Zulfiqar Ali, Waseem Akbar
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Abstract

Heat stress poses a significant challenge for maize production, especially during the spring when high temperatures disrupt cellular processes, impeding plant growth and development. The B-cell lymphoma-2 (Bcl-2) associated athanogene (BAG) gene family is known to be relatively conserved across various species. It plays a crucial role as molecular chaperone cofactors that are responsible for programmed cell death and tumorigenesis. Once the plant is under heat stress, the BAG genes act as co-chaperones and modulate the molecular functions of HSP70/HSC70 saving the plant from the damage of high temperature stress. The study was planned to identify and characterize the BAG genes for heat stress responsiveness in maize. Twenty-one (21) BAG genes were identified in the latest maize genome. The evolutionary relationship of Zea mays BAGs (ZmBAGs) with Arabidopsis thaliana, Solanum lycopersicum, Theobroma cacao, Sorghum bicolor, Ananas comosus, Physcomitrium patens, Oryza sativa and Populus trichocarpa were represented by the phylogenetic analysis. Differential expressions of BAG gene family in leaf, endosperm, anther, silk, seed and developing embryo depict their contribution to the growth and development. The in-silico gene expression analysis indicated ZmBAG-8 (Zm00001eb170080), and ZmBAG-11 (Zm00001eb237960) showed higher expression under abiotic stresses (cold, heat and salinity). The RT-qPCR further confirmed the expression of ZmBAG-8 and ZmBAG-11 in plant leaf tissue across the contrasting inbred lines and their F1 hybrid (DR-139, UML-1 and DR-139 × UML-1) when exposed to heat stress. Furthermore, the protein-protein interaction networks of ZmBAG-8 and ZmBAG-11 further elucidated their role in stress tolerance related pathways. This research offers a roadmap to plan functional research and utilize ZmBAG genes to enhance heat tolerance in grasses.

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热胁迫下玉米BAG基因家族的表达差异
热应激对玉米生产构成重大挑战,特别是在春季,高温破坏细胞过程,阻碍植物生长发育。已知b细胞淋巴瘤-2 (Bcl-2)相关凋亡基因(BAG)基因家族在不同物种中相对保守。它作为分子伴侣辅助因子在程序性细胞死亡和肿瘤发生中起着至关重要的作用。一旦植物处于高温胁迫下,BAG基因作为共伴侣,调控HSP70/HSC70的分子功能,使植物免受高温胁迫的伤害。本研究旨在鉴定和鉴定玉米热胁迫响应的BAG基因。在最新的玉米基因组中鉴定出21个BAG基因。通过系统发育分析,阐述了Zea mays BAGs (ZmBAGs)与拟南芥、番茄茄、可可可可、双色高粱、红豆、绿棉、水稻和毛卡柏的进化关系。BAG基因家族在叶片、胚乳、花药、蚕丝、种子和发育中的胚中的差异表达描述了它们对生长发育的贡献。基因表达分析表明,ZmBAG-8 (Zm00001eb170080)和ZmBAG-11 (Zm00001eb237960)在非生物胁迫(冷、热、盐)下表达量较高。RT-qPCR进一步证实了ZmBAG-8和ZmBAG-11在高温胁迫下在对照自交系及其F1杂交种(DR-139、UML-1和DR-139 × UML-1)叶片组织中的表达。此外,ZmBAG-8和ZmBAG-11的蛋白-蛋白相互作用网络进一步阐明了它们在胁迫耐受相关通路中的作用。本研究为规划ZmBAG基因的功能研究和利用ZmBAG基因增强禾本科植物的耐热性提供了路线图。
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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
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