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本文引用的文献

1
Effects of Pectin Molecular Weight Changes on the Structure, Dynamics, and Polysaccharide Interactions of Primary Cell Walls of Arabidopsis thaliana: Insights from Solid-State NMR.果胶分子量变化对拟南芥初生细胞壁结构、动力学和多糖相互作用的影响:固态 NMR 的见解。
Biomacromolecules. 2017 Sep 11;18(9):2937-2950. doi: 10.1021/acs.biomac.7b00888. Epub 2017 Aug 22.
2
A computational approach for inferring the cell wall properties that govern guard cell dynamics.一种用于推断控制保卫细胞动态的细胞壁特性的计算方法。
Plant J. 2017 Oct;92(1):5-18. doi: 10.1111/tpj.13640. Epub 2017 Aug 23.
3
PECTIN METHYLESTERASE34 Contributes to Heat Tolerance through Its Role in Promoting Stomatal Movement.果胶甲酯酶34通过促进气孔运动对耐热性有贡献。
Plant Physiol. 2017 Jun;174(2):748-763. doi: 10.1104/pp.17.00335. Epub 2017 Apr 5.
4
Stomatal cell wall composition: distinctive structural patterns associated with different phylogenetic groups.气孔细胞壁组成:与不同系统发育类群相关的独特结构模式。
Ann Bot. 2017 Apr 1;119(6):1021-1033. doi: 10.1093/aob/mcw275.
5
Formation of the Stomatal Outer Cuticular Ledge Requires a Guard Cell Wall Proline-Rich Protein.气孔外角质层壁架的形成需要保卫细胞壁富含脯氨酸的蛋白质。
Plant Physiol. 2017 Jun;174(2):689-699. doi: 10.1104/pp.16.01715. Epub 2017 Feb 2.
6
Activation tagging of Arabidopsis POLYGALACTURONASE INVOLVED IN EXPANSION2 promotes hypocotyl elongation, leaf expansion, stem lignification, mechanical stiffening, and lodging.参与扩展2的拟南芥多聚半乳糖醛酸酶的激活标签促进下胚轴伸长、叶片扩展、茎木质化、机械硬化和抗倒伏能力。
Plant J. 2017 Mar;89(6):1159-1173. doi: 10.1111/tpj.13453. Epub 2017 Feb 11.
7
Connecting Homogalacturonan-Type Pectin Remodeling to Acid Growth.连接半乳糖醛酸型果胶重塑与酸生长。
Trends Plant Sci. 2017 Jan;22(1):20-29. doi: 10.1016/j.tplants.2016.10.009. Epub 2016 Nov 21.
8
Stomatal Function Requires Pectin De-methyl-esterification of the Guard Cell Wall.气孔功能需要保卫细胞壁的果胶去甲基化作用。
Curr Biol. 2016 Nov 7;26(21):2899-2906. doi: 10.1016/j.cub.2016.08.021. Epub 2016 Oct 6.
9
Enzyme-Less Growth in Chara and Terrestrial Plants.轮藻和陆生植物中的无酶生长。
Front Plant Sci. 2016 Jun 21;7:866. doi: 10.3389/fpls.2016.00866. eCollection 2016.
10
Shifting foundations: the mechanical cell wall and development.不断变化的基础:机械细胞壁与发育
Curr Opin Plant Biol. 2016 Feb;29:115-20. doi: 10.1016/j.pbi.2015.12.009. Epub 2016 Jan 19.

多聚半乳糖醛酸酶参与扩张 3 功能在幼苗发育、莲座丛生长和气孔动态在.

POLYGALACTURONASE INVOLVED IN EXPANSION3 Functions in Seedling Development, Rosette Growth, and Stomatal Dynamics in .

机构信息

Department of Biology, The Pennsylvania State University, University Park, Pennsylvania 16802.

Intercollege Graduate Degree Program in Plant Biology, The Pennsylvania State University, University Park, Pennsylvania 16802.

出版信息

Plant Cell. 2017 Oct;29(10):2413-2432. doi: 10.1105/tpc.17.00568. Epub 2017 Oct 3.

DOI:10.1105/tpc.17.00568
PMID:28974550
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5774581/
Abstract

Plant cell separation and expansion require pectin degradation by endogenous pectinases such as polygalacturonases, few of which have been functionally characterized. Stomata are a unique system to study both processes because stomatal maturation involves limited separation between sister guard cells and stomatal responses require reversible guard cell elongation and contraction. However, the molecular mechanisms for how stomatal pores form and how guard cell walls facilitate dynamic stomatal responses remain poorly understood. We characterized (), which is expressed in expanding tissues and guard cells. PGX3-GFP localizes to the cell wall and is enriched at sites of stomatal pore initiation in cotyledons. In seedlings, ablating or overexpressing affects both cotyledon shape and the spacing and pore dimensions of developing stomata. In adult plants, affects rosette size. Although stomata in true leaves display normal density and morphology when expression is altered, loss of prevents smooth stomatal closure, and overexpression of accelerates stomatal opening. These phenotypes correspond with changes in pectin molecular mass and abundance that can affect wall mechanics. Together, these results demonstrate that PGX3-mediated pectin degradation affects stomatal development in cotyledons, promotes rosette expansion, and modulates guard cell mechanics in adult plants.

摘要

植物细胞的分离和扩张需要内源性果胶酶(如多聚半乳糖醛酸酶)降解果胶,其中只有少数几种被功能表征。气孔是研究这两个过程的独特系统,因为气孔成熟涉及到姐妹保卫细胞之间的有限分离,而气孔响应需要保卫细胞的可逆伸长和收缩。然而,气孔孔形成的分子机制以及保卫细胞壁如何促进动态气孔响应仍然知之甚少。我们对在扩张组织和保卫细胞中表达的 () 进行了表征。PGX3-GFP 定位于细胞壁,在子叶中气孔孔起始部位富集。在幼苗中, 的缺失或过表达会影响子叶的形状以及发育中气孔的间距和孔径。在成年植物中, 会影响玫瑰形花序的大小。尽管当 表达改变时,真叶中的气孔显示出正常的密度和形态,但 的缺失会阻止气孔的平滑关闭,而过表达 会加速气孔的打开。这些表型与影响细胞壁力学的果胶分子量和丰度的变化相对应。总之,这些结果表明,PGX3 介导的果胶降解影响子叶中的气孔发育,促进玫瑰形花序的扩张,并调节成年植物保卫细胞的力学。