Jiang Hailong, Liu Xiaoya, Xiao Peixiang, Wang Yan, Xie Qihui, Wu Xiaoxia, Ding Haidong
College of Bioscience and Biotechnology, Yangzhou University, Yangzhou, China.
Joint International Research Laboratory of Agriculture and Agri-Product Safety of Ministry of Education of China, Yangzhou, China.
Front Plant Sci. 2023 Mar 28;14:1136873. doi: 10.3389/fpls.2023.1136873. eCollection 2023.
Bcl-2-associated athanogene (BAG) gene family is a highly conserved molecular chaperone cofactor in evolution from yeast to humans and plants playing important roles in a variety of signal pathways. Plant BAG proteins have special structures, especially those containing CaM-binding IQ motifs which are unique to plants. While early studies focused more on the structure and physiological function of plant BAGs, recent studies have revealed many novel functional mechanisms involved in multiple cellular processes. How to achieve signal specificity has become an interesting topic of plant BAG research. In this review, we have provided a historic view of plant BAG research and summarized recent advances in the establishment of BAG as essential components in normal plant growth, environmental stress response, and plant immunity. Based on the relationship between BAG proteins and their newly interacting proteins, this review highlights the functional mechanisms of various cellular signals mediated by plant BAGs. Future work needs to focus on the post-translational modification of BAG proteins, and on understanding how specificity is achieved among BAG signaling pathways.
Bcl-2相关抗凋亡基因(BAG)家族是一种在从酵母到人类及植物的进化过程中高度保守的分子伴侣辅因子,在多种信号通路中发挥重要作用。植物BAG蛋白具有特殊结构,尤其是那些含有植物特有的钙调蛋白结合IQ模体的蛋白。早期研究更多地关注植物BAG的结构和生理功能,而最近的研究揭示了许多参与多种细胞过程的新功能机制。如何实现信号特异性已成为植物BAG研究的一个有趣课题。在本综述中,我们提供了植物BAG研究的历史视角,并总结了BAG作为正常植物生长、环境应激反应和植物免疫的重要组成部分的最新进展。基于BAG蛋白与其新相互作用蛋白之间的关系,本综述重点介绍了植物BAG介导的各种细胞信号的功能机制。未来的工作需要关注BAG蛋白的翻译后修饰,以及理解BAG信号通路之间如何实现特异性。