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拟南芥YUC6的一种新型硫醇还原酶活性独立于生长素生物合成赋予植物耐旱性。

A novel thiol-reductase activity of Arabidopsis YUC6 confers drought tolerance independently of auxin biosynthesis.

作者信息

Cha Joon-Yung, Kim Woe-Yeon, Kang Sun Bin, Kim Jeong Im, Baek Dongwon, Jung In Jung, Kim Mi Ri, Li Ning, Kim Hyun-Jin, Nakajima Masatoshi, Asami Tadao, Sabir Jamal S M, Park Hyeong Cheol, Lee Sang Yeol, Bohnert Hans J, Bressan Ray A, Pardo Jose M, Yun Dae-Jin

机构信息

Division of Applied Life Science (BK21Plus), PMBBRC &IALS, Gyeongsang National University, Jinju 660-701, Republic of Korea.

Department of Biochemistry, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

Nat Commun. 2015 Aug 28;6:8041. doi: 10.1038/ncomms9041.

Abstract

YUCCA (YUC) proteins constitute a family of flavin monooxygenases (FMOs), with an important role in auxin (IAA) biosynthesis. Here we report that Arabidopsis plants overexpressing YUC6 display enhanced IAA-related phenotypes and exhibit improved drought stress tolerance, low rate of water loss and controlled ROS accumulation under drought and oxidative stresses. Co-overexpression of an IAA-conjugating enzyme reduces IAA levels but drought stress tolerance is unaffected, indicating that the stress-related phenotype is not based on IAA overproduction. YUC6 contains a previously unrecognized FAD- and NADPH-dependent thiol-reductase activity (TR) that overlaps with the FMO domain involved in IAA biosynthesis. Mutation of a conserved cysteine residue (Cys-85) preserves FMO but suppresses TR activity and stress tolerance, whereas mutating the FAD- and NADPH-binding sites, that are common to TR and FMO domains, abolishes all outputs. We provide a paradigm for a single protein playing a dual role, regulating plant development and conveying stress defence responses.

摘要

YUCCA(YUC)蛋白构成了一个黄素单加氧酶(FMO)家族,在生长素(IAA)生物合成中起重要作用。在此我们报道,过表达YUC6的拟南芥植株表现出与IAA相关的增强表型,并且在干旱和氧化胁迫下展现出提高的干旱胁迫耐受性、低失水率以及受控制的活性氧积累。共过表达一种IAA缀合酶会降低IAA水平,但干旱胁迫耐受性不受影响,这表明与胁迫相关的表型并非基于IAA的过量产生。YUC6含有一种先前未被识别的依赖FAD和NADPH的硫醇还原酶活性(TR),该活性与参与IAA生物合成的FMO结构域重叠。一个保守半胱氨酸残基(Cys-85)的突变保留了FMO但抑制了TR活性和胁迫耐受性,而突变TR和FMO结构域共有的FAD和NADPH结合位点则消除了所有相关效应。我们提供了一个单一蛋白发挥双重作用的范例,即调节植物发育并传递胁迫防御反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9cf/4560777/41e808323230/ncomms9041-f1.jpg

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