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本文引用的文献

1
Involvement of C-Terminal Histidines in Soybean PM1 Protein Oligomerization and Cu2+ Binding.C末端组氨酸在大豆PM1蛋白寡聚化及铜离子结合中的作用
Plant Cell Physiol. 2017 Jun 1;58(6):1018-1029. doi: 10.1093/pcp/pcx046.
2
Folding of intrinsically disordered plant LEA proteins is driven by glycerol-induced crowding and the presence of membranes.天然无序植物 LEA 蛋白的折叠是由甘油诱导的拥挤和膜的存在驱动的。
FEBS J. 2017 Mar;284(6):919-936. doi: 10.1111/febs.14023. Epub 2017 Feb 8.
3
The role of hydrophobic amino acids of K-segments in the cryoprotection of lactate dehydrogenase by dehydrins.脱水蛋白中K片段的疏水氨基酸在乳酸脱氢酶冷冻保护中的作用
J Plant Physiol. 2017 Mar;210:18-23. doi: 10.1016/j.jplph.2016.12.003. Epub 2016 Dec 14.
4
Group 3 LEA protein model peptides protect enzymes against desiccation stress.第3组LEA蛋白模型肽可保护酶免受干燥胁迫。
Biochim Biophys Acta. 2016 Sep;1864(9):1237-1243. doi: 10.1016/j.bbapap.2016.04.012. Epub 2016 Apr 27.
5
The Unstructured N-terminal Region of Arabidopsis Group 4 Late Embryogenesis Abundant (LEA) Proteins Is Required for Folding and for Chaperone-like Activity under Water Deficit.拟南芥第4组成熟胚胎晚期丰富(LEA)蛋白的无结构N端区域在水分亏缺条件下对于折叠和伴侣样活性是必需的。
J Biol Chem. 2016 May 13;291(20):10893-903. doi: 10.1074/jbc.M116.720318. Epub 2016 Mar 22.
6
Conformational propensities of intrinsically disordered proteins influence the mechanism of binding and folding.内在无序蛋白质的构象倾向影响结合和折叠机制。
Proc Natl Acad Sci U S A. 2015 Aug 4;112(31):9614-9. doi: 10.1073/pnas.1512799112. Epub 2015 Jul 20.
7
Disorder and function: a review of the dehydrin protein family.紊乱与功能:脱水素蛋白家族综述
Front Plant Sci. 2014 Oct 31;5:576. doi: 10.3389/fpls.2014.00576. eCollection 2014.
8
A group 6 late embryogenesis abundant protein from common bean is a disordered protein with extended helical structure and oligomer-forming properties.菜豆中的一种6组晚期胚胎发生丰富蛋白是一种具有延伸螺旋结构和寡聚体形成特性的无序蛋白。
J Biol Chem. 2014 Nov 14;289(46):31995-32009. doi: 10.1074/jbc.M114.583369. Epub 2014 Sep 30.
9
Disordered cold regulated15 proteins protect chloroplast membranes during freezing through binding and folding, but do not stabilize chloroplast enzymes in vivo.冷调节蛋白15功能紊乱时,通过结合和折叠在冷冻过程中保护叶绿体膜,但在体内不能稳定叶绿体酶。
Plant Physiol. 2014 Sep;166(1):190-201. doi: 10.1104/pp.114.245399. Epub 2014 Aug 5.
10
Distinguishing induced fit from conformational selection.区分诱导契合和构象选择。
Biophys Chem. 2014 May;189:33-9. doi: 10.1016/j.bpc.2014.03.003. Epub 2014 Apr 1.

第4组晚期胚胎发生丰富蛋白作为研究植物内在无序蛋白的模型。

Group 4 late embryogenesis abundant proteins as a model to study intrinsically disordered proteins in plants.

作者信息

Cuevas-Velazquez Cesar L, Reyes Jose Luis, Covarrubias Alejandra A

机构信息

a Departamento de Biología Molecular de Plantas , Instituto de Biotecnología, Universidad Nacional Autónoma de México , Cuernavaca , México.

出版信息

Plant Signal Behav. 2017 Jul 3;12(7):e1343777. doi: 10.1080/15592324.2017.1343777. Epub 2017 Jun 26.

DOI:10.1080/15592324.2017.1343777
PMID:28650260
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5586357/
Abstract

Late Embryogenesis Abundant (LEA) proteins comprise a heterogeneous group of proteins that accumulate to high levels in the dry seed and in vegetative plant tissues under water deficit. We recently reported that group 4 LEA proteins from Arabidopsis thaliana, regardless of their structural disorder prevalent in aqueous solution, are able to fold into α-helix when subjected to water deficit and/or macromolecular crowding environments. Interestingly, the ability to gain structure under water limiting conditions is circumscribed to the N-terminal conserved region. This environment- driven conformational plasticity has a functional impact because the conserved N-terminal region is necessary and sufficient to prevent the inactivation and/or aggregation of reporter enzymes, when they are subjected to partial dehydration or freeze-thaw treatments. In this addendum we present a broader analysis of the data and propose that the mechanism by which group 4 LEA proteins exert their chaperone-like activity occurs via a selection of particular LEA structural conformations favored by water deficit environments. In addition, we include further observations regarding the abundance and conservation of histidine residues in LEA proteins of this group, particularly at the C-terminal variable region, supporting the presence of an additional function in the same polypeptides as metal ion sequesters. The structural characteristics of group 4 LEA proteins together with their conceivable multifunctionality, a widespread feature in Intrinsically Disordered Proteins (IDPs), raises the possibility of using this set of proteins as a model to investigate the structure-function relationship of IDPs in plants.

摘要

胚胎后期丰富(LEA)蛋白是一类异质性蛋白,在干燥种子以及水分亏缺条件下的植物营养组织中大量积累。我们最近报道,拟南芥第4组LEA蛋白,无论其在水溶液中普遍存在的结构无序状态如何,在水分亏缺和/或大分子拥挤环境中都能够折叠成α-螺旋。有趣的是,在水分限制条件下获得结构的能力仅限于N端保守区域。这种环境驱动的构象可塑性具有功能影响,因为当报告酶经受部分脱水或冻融处理时,保守的N端区域对于防止其失活和/或聚集是必要且充分的。在本附录中,我们对数据进行了更广泛的分析,并提出第4组LEA蛋白发挥其类似伴侣活性的机制是通过选择水分亏缺环境所青睐的特定LEA结构构象来实现的。此外,我们还包括了关于该组LEA蛋白中组氨酸残基丰度和保守性的进一步观察结果,特别是在C端可变区域,支持了这些多肽作为金属离子螯合剂还具有额外功能的观点。第4组LEA蛋白的结构特征及其可能的多功能性(这是内在无序蛋白(IDP)中的一个普遍特征),增加了将这组蛋白用作模型来研究植物中IDP结构-功能关系的可能性。