Benavente Larissa M, Alonso Jose M
Department of Genetics, North Carolina State University, Raleigh, NC 27695, USA.
Mol Biosyst. 2006 Mar;2(3-4):165-73. doi: 10.1039/b513874d. Epub 2006 Jan 19.
Ethylene is a gaseous plant hormone involved in several important physiological processes throughout a plant's life cycle. Decades of scientific research devoted to deciphering how plants are able to sense and respond to this key molecule have culminated in the establishment of one of the best characterized signal transduction pathways in plants. The ethylene signaling pathway starts with the perception of this gaseous hormone by a family of membrane-anchored receptors followed by a Raf-like kinase CTR1 that is physically associated with the receptors and actively inhibits downstream components of the pathway. A major gap is represented by the mysterious plant protein EIN2 that genetically works downstream of CTR1 and upstream of the key transcription factor EIN3. Transcriptional regulation by EIN3 and EIN3-family members has emerged as a key aspect of ethylene responses. The major components of this transcriptional cascade have been characterized and the involvement of post-transcriptional control by ubiquitination has been determined. Nevertheless, many aspects of this pathway still remain unknown. Recent genomic studies aiming to provide a more comprehensive view of modulation of gene expression have further emphasized the ample role of ethylene in a myriad of cellular processes and particularly in its crosstalk with other important plant hormones. This review aims to serve as a guide to the main scientific discoveries that have shaped the field of ethylene biology in the recent years.
乙烯是一种气态植物激素,在植物的整个生命周期中参与多个重要的生理过程。数十年来,致力于破译植物如何感知和响应这一关键分子的科学研究,最终确立了植物中特征最明确的信号转导途径之一。乙烯信号通路始于一类膜锚定受体对这种气态激素的感知,随后是一种与受体物理结合并积极抑制该通路下游成分的类Raf激酶CTR1。一个主要的空白是神秘的植物蛋白EIN2,它在基因上作用于CTR1的下游和关键转录因子EIN3的上游。EIN3和EIN3家族成员的转录调控已成为乙烯反应的一个关键方面。这个转录级联反应的主要成分已被鉴定,泛素化对转录后控制的参与也已确定。然而,这条通路的许多方面仍然未知。最近旨在更全面地了解基因表达调控的基因组研究,进一步强调了乙烯在众多细胞过程中的重要作用,特别是在其与其他重要植物激素的相互作用中。这篇综述旨在作为近年来塑造乙烯生物学领域的主要科学发现的指南。