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The regulation of ethylene biosynthesis: a complex multilevel control circuitry

期刊

NEW PHYTOLOGIST
卷 229, 期 2, 页码 770-782

出版社

WILEY
DOI: 10.1111/nph.16873

关键词

1-aminocyclopropane-1-carboxylic acid (ACC) metabolism; ethylene biosynthesis; posttranslational regulation; S-adenosyl-l-methionine (SAM) metabolism; transcriptional regulation; Yang cycle

资金

  1. Flemish Fund for Scientific Research (FWO) [G092419N, G0G0219N]
  2. KU Leuven internal research fund [C14/18/056]

向作者/读者索取更多资源

The biosynthesis of the plant hormone ethylene is controlled by a complex regulatory network involving transcriptional and posttranslational control of precursor synthesis enzymes and metabolic flux. Various factors, including transcription factors and posttranslational modifications, regulate the activity and stability of enzymes involved in ethylene production. Additionally, the nonproteinogenic amino acid ACC, a key intermediate in ethylene biosynthesis, is tightly regulated through conjugation and translocation processes.
The gaseous plant hormone ethylene is produced by a fairly simple two-step biosynthesis route. Despite this pathway's simplicity, recent molecular and genetic studies have revealed that the regulation of ethylene biosynthesis is far more complex and occurs at different layers. Ethylene production is intimately linked with the homeostasis of its general precursorS-adenosyl-l-methionine (SAM), which experiences transcriptional and posttranslational control of its synthesising enzymes (SAM synthetase), as well as the metabolic flux through the adjacent Yang cycle. Ethylene biosynthesis continues from SAM by two dedicated enzymes: 1-aminocyclopropane-1-carboxylic (ACC) synthase (ACS) and ACC oxidase (ACO). Although the transcriptional dynamics ofACSandACOhave been well documented, the first transcription factors that controlACSandACOexpression have only recently been discovered. Both ACS and ACO display a type-specific posttranslational regulation that controls protein stability and activity. The nonproteinogenic amino acid ACC also shows a tight level of control through conjugation and translocation. Different players in ACC conjugation and transport have been identified over the years, however their molecular regulation and biological significance is unclear, yet relevant, as ACC can also signal independently of ethylene. In this review, we bring together historical reports and the latest findings on the complex regulation of the ethylene biosynthesis pathway in plants.

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