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拟南芥 CYP72C1 是一种非典型细胞色素 P450,可使油菜素内酯失活。

Arabidopsis CYP72C1 is an atypical cytochrome P450 that inactivates brassinosteroids.

机构信息

Department of Biology, The College of New Jersey, Ewing, 08628, USA.

出版信息

Plant Mol Biol. 2010 Sep;74(1-2):167-81. doi: 10.1007/s11103-010-9663-y. Epub 2010 Jul 30.

DOI:10.1007/s11103-010-9663-y
PMID:20669042
Abstract

Cytochrome P450 monooxygenases (P450s) are a diverse family of proteins that have specialized roles in secondary metabolism and in normal cell development. Two P450s in particular, CYP734A1 and CYP72C1, have been identified as brassinosteroid-inactivating enzymes important for steroid-mediated signal transduction in Arabidopsis thaliana. Genetic analyses have demonstrated that these P450s modulate growth throughout plant development. While members of the CYP734A subfamily inactivate brassinosteroids through C-26 hydroxylation, the biochemical activity of CYP72C1 is unknown. Because CYP734A1 and CYP72C1 in Arabidopsis diverge more than brassinosteroid inactivating P450s in other plants, this study examines the structure and biochemistry of each enzyme. Three-dimensional models were generated to examine the substrate binding site structures and determine how they might affect the function of each P450. These models have indicated that the active site of CYP72C1 does not contain several conserved amino acids typically needed for substrate hydroxylation. Heterologous expression of these P450s followed by substrate binding analyses have indicated that CYP734A1 binds active brassinosteroids, brassinolide and castasterone, as well as their upstream precursors whereas CYP72C1 binds precursors more effectively. Seedling growth assays have demonstrated that the genetic state of CYP734A1, but not CYP72C1, affected responsiveness to high levels of exogenous brassinolide supporting our observations that CYP72C1 acts on brassinolide precursors. Although there may be some overlap in their physiological function, the distinct biochemical functions of these proteins in Arabidopsis has significant potential to fine-tune the levels of different brassinosteroid hormones throughout plant growth and development.

摘要

细胞色素 P450 单加氧酶(P450s)是一个多样化的蛋白质家族,在次生代谢和正常细胞发育中具有特殊作用。特别是两种 P450,CYP734A1 和 CYP72C1,被鉴定为油菜素内酯失活酶,对于拟南芥中的甾醇介导的信号转导很重要。遗传分析表明,这些 P450 调节植物发育过程中的生长。虽然 CYP734A 亚家族的成员通过 C-26 羟化作用使油菜素内酯失活,但 CYP72C1 的生化活性尚不清楚。由于 CYP734A1 和 CYP72C1 在拟南芥中的分化程度超过了其他植物中的油菜素内酯失活 P450,因此本研究检查了每种酶的结构和生物化学特性。生成了三维模型以检查底物结合位点的结构,并确定它们如何影响每种 P450 的功能。这些模型表明,CYP72C1 的活性位点不包含通常需要底物羟化的几个保守氨基酸。这些 P450 的异源表达以及随后的底物结合分析表明,CYP734A1 结合活性油菜素内酯,油菜素内酯和 castasterone,以及它们的上游前体,而 CYP72C1 更有效地结合前体。幼苗生长测定表明,CYP734A1 的遗传状态,但不是 CYP72C1,影响对外源油菜素内酯的高响应性,支持我们的观察结果,即 CYP72C1 作用于油菜素内酯前体。尽管它们的生理功能可能有一些重叠,但这些蛋白质在拟南芥中的独特生化功能具有显著潜力,可以在植物生长和发育的整个过程中精细调节不同油菜素内酯激素的水平。

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