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交联支持植物质膜 P 型 H+-ATP 酶调控的从头至尾机制。

cross-linking supports a head-to-tail mechanism for regulation of the plant plasma membrane P-type H-ATPase.

机构信息

From the Biotechnology Center and.

Biochemistry Department, University of Wisconsin-Madison, Madison, Wisconsin 53706.

出版信息

J Biol Chem. 2018 Nov 2;293(44):17095-17106. doi: 10.1074/jbc.RA118.003528. Epub 2018 Sep 14.

DOI:10.1074/jbc.RA118.003528
PMID:30217814
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6222091/
Abstract

In higher plants, a P-type proton-pumping ATPase generates the proton-motive force essential for the function of all other transporters and for proper growth and development. X-ray crystallographic studies of the plant plasma membrane proton pump have provided information on amino acids involved in ATP catalysis but provided no information on the structure of the C-terminal regulatory domain. Despite progress in elucidating enzymes involved in the signaling pathways that activate or inhibit this pump, the site of interaction of the C-terminal regulatory domain with the catalytic domains remains a mystery. Genetic studies have pointed to amino acids in various parts of the protein that may be involved, but direct chemical evidence for which ones are specifically interacting with the C terminus is lacking. In this study, we used cross-linking experiments with a photoreactive unnatural amino acid, -benzoylphenylalanine, and tandem MS to obtain direct evidence that the C-terminal regulatory domain interacts with amino acids located within the N-terminal actuator domain. Our observations are consistent with a mechanism in which intermolecular, rather than intramolecular, interactions are involved. Our model invokes a "head-to-tail" organization of ATPase monomers in which the C-terminal domain of one ATPase molecule interacts with the actuator domain of another ATPase molecule. This model serves to explain why cross-linked peptides are found only in dimers and trimers, and it is consistent with prior studies suggesting that within the membrane the protein can be organized as homopolymers, including dimers, trimers, and hexamers.

摘要

在高等植物中,P 型质子泵 ATP 酶产生质子动力,这对于所有其他转运蛋白的功能以及正常的生长和发育都是必不可少的。对植物质膜质子泵的 X 射线晶体学研究提供了参与 ATP 催化的氨基酸的信息,但没有提供 C 端调节域结构的信息。尽管在阐明激活或抑制该泵的信号通路中涉及的酶方面取得了进展,但 C 端调节域与催化域相互作用的位点仍然是一个谜。遗传研究指出,该蛋白的不同部位的氨基酸可能参与其中,但缺乏与 C 端特异性相互作用的氨基酸的直接化学证据。在这项研究中,我们使用带有光反应性非天然氨基酸 -苯甲酰苯丙氨酸的交联实验和串联 MS,获得了直接证据,证明 C 端调节域与位于 N 端效应器结构域内的氨基酸相互作用。我们的观察结果与一种涉及分子间而非分子内相互作用的机制一致。我们的模型援引了 ATP 酶单体的“头对头”组织,其中一个 ATP 酶分子的 C 端结构域与另一个 ATP 酶分子的效应器结构域相互作用。该模型有助于解释为什么交联肽仅在二聚体和三聚体中发现,并且与先前的研究一致,表明在膜内,该蛋白可以组织为同聚物,包括二聚体、三聚体和六聚体。

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本文引用的文献

1
To Be or Not to Be? Five Guidelines to Avoid Misassignments in Cross-Linking/Mass Spectrometry.是或不是?避免交联/质谱实验中错误分配的五条准则。
Anal Chem. 2017 Aug 1;89(15):7832-7835. doi: 10.1021/acs.analchem.7b02316. Epub 2017 Jul 21.
2
2016 update of the PRIDE database and its related tools.PRIDE数据库及其相关工具的2016年更新。
Nucleic Acids Res. 2016 Jan 4;44(D1):D447-56. doi: 10.1093/nar/gkv1145. Epub 2015 Nov 2.
3
A peptide hormone and its receptor protein kinase regulate plant cell expansion.一种肽激素及其受体蛋白激酶调节植物细胞的扩张。
Science. 2014 Jan 24;343(6169):408-11. doi: 10.1126/science.1244454.
4
Structural analysis of guanylyl cyclase-activating protein-2 (GCAP-2) homodimer by stable isotope-labeling, chemical cross-linking, and mass spectrometry.通过稳定同位素标记、化学交联和质谱分析鸟苷酸环化酶激活蛋白-2(GCAP-2)同源二聚体的结构。
J Am Soc Mass Spectrom. 2013 Dec;24(12):1969-79. doi: 10.1007/s13361-013-0734-6. Epub 2013 Sep 12.
5
Active plasma membrane P-type H+-ATPase reconstituted into nanodiscs is a monomer.活性质膜 P 型 H+-ATP 酶重组成纳米盘后为单体。
J Biol Chem. 2013 Sep 13;288(37):26419-29. doi: 10.1074/jbc.M112.446948. Epub 2013 Jul 8.
6
StavroX--a software for analyzing crosslinked products in protein interaction studies.StavroX——一种用于分析蛋白质相互作用研究中交联产物的软件。
J Am Soc Mass Spectrom. 2012 Jan;23(1):76-87. doi: 10.1007/s13361-011-0261-2. Epub 2011 Oct 25.
7
Caught in the act: covalent cross-linking captures activator-coactivator interactions in vivo.当场抓获:共价交联在体内捕获激活剂-共激活剂相互作用。
ACS Chem Biol. 2011 Dec 16;6(12):1321-6. doi: 10.1021/cb200308e. Epub 2011 Nov 14.
8
A phosphorylation in the c-terminal auto-inhibitory domain of the plant plasma membrane H+-ATPase activates the enzyme with no requirement for regulatory 14-3-3 proteins.植物质膜 H+-ATP 酶 C 端自身抑制结构域中的一个磷酸化作用可使该酶激活,而不需要调节 14-3-3 蛋白。
J Biol Chem. 2011 May 27;286(21):18474-82. doi: 10.1074/jbc.M110.211953. Epub 2011 Apr 11.
9
Regulation of the plant plasma membrane H+-ATPase by its C-terminal domain: what do we know for sure?植物质膜 H+-ATPase 的 C 端结构域调控:我们究竟了解多少?
Eur J Cell Biol. 2010 Feb-Mar;89(2-3):145-51. doi: 10.1016/j.ejcb.2009.10.015. Epub 2009 Dec 24.
10
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Biochim Biophys Acta. 2009 Jun;1793(6):941-6. doi: 10.1016/j.bbamcr.2008.10.008. Epub 2008 Oct 29.