Guo Zhonglong, Dzinyela Raphael, Yang Liming, Hwarari Delight
State Key Laboratory of Tree Genetics and Breeding, College of Life Sciences, Nanjing Forestry University, Nanjing 213007, China.
Plants (Basel). 2024 Jul 25;13(15):2058. doi: 10.3390/plants13152058.
Plant growth, yield, and distribution are significantly impacted by abiotic stresses, affecting global ecosystems and forestry practices. However, plants have evolved complex adaptation mechanisms governed by numerous genes and transcription factors (TFs) to manage these stresses. Among these, bZIP (basic leucine zipper) is a crucial regulator orchestrating morphological adaptations. This review aims to elucidate the multifaceted roles of bZIP TFs in plant species. We discuss the morphological changes induced by stress stimuli and the pivotal functions of bZIP TFs in mediating these responses. While several publications have explored the mechanisms of bZIP TFs in response to abiotic stresses, this review delves into the intricate regulatory networks, summarizing alternative splicing and post-translational modifications, signaling networks interacting with bZIP TFs, and genetic engineering of bZIP TFs. By synthesizing current research, this review provides an updated discussion on bZIP interactions with other proteins to regulate stresses such as cold, heat, drought, and salt. Additionally, it offers avenues for future research and applications of bZIP TFs to improve abiotic stress resilience in plants through genetic engineering.
植物的生长、产量和分布受到非生物胁迫的显著影响,这对全球生态系统和林业实践产生了影响。然而,植物已经进化出由众多基因和转录因子(TFs)调控的复杂适应机制来应对这些胁迫。其中,bZIP(碱性亮氨酸拉链)是协调形态适应的关键调节因子。本综述旨在阐明bZIP转录因子在植物物种中的多方面作用。我们讨论了胁迫刺激引起的形态变化以及bZIP转录因子在介导这些反应中的关键作用。虽然已有多篇文献探讨了bZIP转录因子响应非生物胁迫的机制,但本综述深入研究了复杂的调控网络,总结了可变剪接和翻译后修饰、与bZIP转录因子相互作用的信号网络以及bZIP转录因子的基因工程。通过综合当前的研究,本综述提供了关于bZIP与其他蛋白质相互作用以调节冷、热、干旱和盐等胁迫的最新讨论。此外,它还为未来通过基因工程研究和应用bZIP转录因子来提高植物对非生物胁迫的耐受性提供了途径。