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1-aminocyclopropane-1-carboxylic acid (ACC) in plants: more than just the precursor of ethylene!

机译:植物中的1-氨基环丙烷-1-羧酸(ACC):不仅仅是乙烯的前体!

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摘要

Ethylene is a simple two carbon atom molecule with profound effects on plants. There are quite a few review papers covering all aspects of ethylene biology in plants, including its biosynthesis, signaling and physiology. This is merely a logical consequence of the fascinating and pleiotropic nature of this gaseous plant hormone. Its biochemical precursor, 1-aminocyclopropane-1-carboxylic acid (ACC) is also a fairly simple molecule, but perhaps its role in plant biology is seriously underestimated. This triangularly shaped amino acid has many more features than just being the precursor of the lead-role player ethylene. For example, ACC can be conjugated to three different derivatives, but their biological role remains vague. ACC can also be metabolized by bacteria using ACC-deaminase, favoring plant growth and lowering stress susceptibility. ACC is also subjected to a sophisticated transport mechanism to ensure local and long-distance ethylene responses. Last but not least, there are now a few exciting studies where ACC has been reported to function as a signal itself, independently from ethylene. This review puts ACC in the spotlight, not to give it the lead-role, but to create a picture of the stunning co-production of the hormone and its precursor.
机译:乙烯是对植物具有深远影响的简单的两个碳原子分子。有相当多的综述文章涉及植物中乙烯生物学的各个方面,包括其生物合成,信号传导和生理学。这仅仅是这种气态植物激素的迷人和多效性的逻辑结果。它的生化前体1-氨基环丙烷-1-羧酸(ACC)也是一个相当简单的分子,但可能严重低估了它在植物生物学中的作用。这种三角形的氨基酸不仅具有铅角色扮演者乙烯的前体的功能,而且具有更多的功能。例如,ACC可以与三种不同的衍生物缀合,但是它们的生物学作用仍然不清楚。 ACC还可通过细菌使用ACC脱氨酶代谢,从而有利于植物生长并降低胁迫敏感性。 ACC还受到复杂的运输机制的影响,以确保乙烯的局部和长距离响应。最后但并非最不重要的一点是,现在有一些令人兴奋的研究,据报道,ACC本身就独立于乙烯发挥信号作用。这篇评论使ACC成为人们关注的焦点,而不是给它以铅的作用,而是为该激素及其前体的惊人合成提供了图片。

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