The Key Laboratory of Plant Development and Environmental Adaptation Biology, Ministry of Education, School of Life Sciences, Shandong University, Qingdao, 266237, China.
Institute of Science and Technology (IST), Klosterneuburg, 3400, Austria.
J Integr Plant Biol. 2022 Feb;64(2):371-392. doi: 10.1111/jipb.13225.
Auxin, one of the first identified and most widely studied phytohormones, has been and will remain a hot topic in plant biology. After more than a century of passionate exploration, the mysteries of its synthesis, transport, signaling, and metabolism have largely been unlocked. Due to the rapid development of new technologies, new methods, and new genetic materials, the study of auxin has entered the fast lane over the past 30 years. Here, we highlight advances in understanding auxin signaling, including auxin perception, rapid auxin responses, TRANSPORT INHIBITOR RESPONSE 1 and AUXIN SIGNALING F-boxes (TIR1/AFBs)-mediated transcriptional and non-transcriptional branches, and the epigenetic regulation of auxin signaling. We also focus on feedback inhibition mechanisms that prevent the over-amplification of auxin signals. In addition, we cover the TRANSMEMBRANE KINASE-mediated non-canonical signaling, which converges with TIR1/AFBs-mediated transcriptional regulation to coordinate plant growth and development. The identification of additional auxin signaling components and their regulation will continue to open new avenues of research in this field, leading to an increasingly deeper, more comprehensive understanding of how auxin signals are interpreted at the cellular level to regulate plant growth and development.
生长素是最早被发现和研究最广泛的植物激素之一,它一直是并且将继续是植物生物学的热门话题。经过一个多世纪的热烈探索,其合成、运输、信号转导和代谢的奥秘已基本被揭示。由于新技术、新方法和新遗传材料的快速发展,过去 30 年来,生长素的研究已经进入了快车道。在这里,我们重点介绍了生长素信号转导理解方面的进展,包括生长素的感知、快速生长素反应、TRANSPORT INHIBITOR RESPONSE 1 和 AUXIN SIGNALING F-boxes(TIR1/AFBs)介导的转录和非转录分支,以及生长素信号转导的表观遗传调控。我们还关注反馈抑制机制,该机制可防止生长素信号的过度放大。此外,我们还介绍了 TRANSMEMBRANE KINASE 介导的非经典信号转导,该信号转导与 TIR1/AFBs 介导的转录调控相融合,以协调植物的生长和发育。鉴定更多的生长素信号转导组件及其调控将继续为该领域的研究开辟新的途径,从而使我们对生长素信号如何在细胞水平上被解释以调节植物的生长和发育有了越来越深入和全面的理解。