Department of Horticultural Science and the Microbial and Plant Genomics Institute, University of Minnesota, Saint Paul, MN 55108, USA.
Department of Biology, Duke University, Durham, NC 27008, USA.
Plant Cell. 2024 May 1;36(5):1410-1428. doi: 10.1093/plcell/koae054.
The phytohormone auxin is at times called the master regulator of plant processes and has been shown to be a central player in embryo development, the establishment of the polar axis, early aspects of seedling growth, as well as growth and organ formation during later stages of plant development. The Plant Cell has been key, since the inception of the journal, to developing an understanding of auxin biology. Auxin-regulated plant growth control is accomplished by both changes in the levels of active hormones and the sensitivity of plant tissues to these concentration changes. In this historical review, we chart auxin research as it has progressed in key areas and highlight the role The Plant Cell played in these scientific developments. We focus on understanding auxin-responsive genes, transcription factors, reporter constructs, perception, and signal transduction processes. Auxin metabolism is discussed from the development of tryptophan auxotrophic mutants, the molecular biology of conjugate formation and hydrolysis, indole-3-butyric acid metabolism and transport, and key steps in indole-3-acetic acid biosynthesis, catabolism, and transport. This progress leads to an expectation of a more comprehensive understanding of the systems biology of auxin and the spatial and temporal regulation of cellular growth and development.
植物激素生长素有时被称为植物过程的主调控因子,它被证明是胚胎发育、极性轴建立、幼苗生长早期阶段以及植物发育后期生长和器官形成的核心参与者。自该期刊创立以来,《植物细胞》一直是深入了解生长素生物学的关键。生长素调节的植物生长控制是通过活性激素水平的变化以及植物组织对这些浓度变化的敏感性来实现的。在这篇历史综述中,我们描绘了生长素研究在关键领域的进展,并强调了《植物细胞》在这些科学发展中所扮演的角色。我们专注于理解生长素应答基因、转录因子、报告构建体、感知和信号转导过程。从色氨酸营养缺陷型突变体的发展、共轭形成和水解的分子生物学、吲哚-3-丁酸代谢和运输以及吲哚-3-乙酸生物合成、分解代谢和运输的关键步骤讨论生长素代谢。这一进展使得人们对生长素的系统生物学以及细胞生长和发育的时空调节有了更全面的理解。