Literature DB >> 30804009

Synergistic Pectin Degradation and Guard Cell Pressurization Underlie Stomatal Pore Formation.

Yue Rui1,2, Yintong Chen1,3, Hojae Yi4, Taylor Purzycki1, Virendra M Puri4, Charles T Anderson5,2,3,6.   

Abstract

Stomatal pores are vital for the diffusion of gasses into and out of land plants and are, therefore, gatekeepers for photosynthesis and transpiration. Although much published literature has described the intercellular signaling and transcriptional regulators involved in early stomatal development, little is known about the cellular details of the local separation between sister guard cells that give rise to the stomatal pore or how formation of this pore is achieved. Using three-dimensional (3D) time-lapse imaging, we found that stomatal pore formation in Arabidopsis (Arabidopsis thaliana) is a highly dynamic process involving pore initiation and enlargement and traverses a set of morphological milestones in 3D. Confocal imaging data revealed an enrichment of exocytic machinery, de-methyl-esterified pectic homogalacturonan (HG), and an HG-degrading enzyme at future pore sites, suggesting that both localized HG deposition and degradation might function in pore formation. By manipulating HG modification via enzymatic, chemical, and genetic perturbations in seedling cotyledons, we found that augmenting HG modification promotes pore formation, whereas preventing HG de-methyl-esterification delays pore initiation and inhibits pore enlargement. Through mechanical modeling and experimentation, we tested whether pore formation is an outcome of sister guard cells being pulled away from each other upon turgor increase. Osmotic treatment to reduce turgor pressure did not prevent pore initiation but did lessen pore enlargement. Together, these data provide evidence that HG delivery and modification, and guard cell pressurization, make functional contributions to stomatal pore initiation and enlargement.
© 2019 American Society of Plant Biologists. All Rights Reserved.

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Year:  2019        PMID: 30804009      PMCID: PMC6501081          DOI: 10.1104/pp.19.00135

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  37 in total

1.  Ultrastructure of stomatal development in Arabidopsis (Brassicaceae) leaves.

Authors:  L Zhao; F D Sack
Journal:  Am J Bot       Date:  1999-07       Impact factor: 3.844

2.  Arabidopsis phyllotaxis is controlled by the methyl-esterification status of cell-wall pectins.

Authors:  Alexis Peaucelle; Romain Louvet; Jorunn N Johansen; Herman Höfte; Patrick Laufs; Jérome Pelloux; Grégory Mouille
Journal:  Curr Biol       Date:  2008-12-23       Impact factor: 10.834

3.  Microtubule arrays and Arabidopsis stomatal development.

Authors:  Jessica R Lucas; Jeanette A Nadeau; Fred D Sack
Journal:  J Exp Bot       Date:  2005-11-22       Impact factor: 6.992

4.  The Control of Growth Symmetry Breaking in the Arabidopsis Hypocotyl.

Authors:  Alexis Peaucelle; Raymond Wightman; Herman Höfte
Journal:  Curr Biol       Date:  2015-06-11       Impact factor: 10.834

5.  A new reaction for colorimetric determination of carbohydrates.

Authors:  M Lever
Journal:  Anal Biochem       Date:  1972-05       Impact factor: 3.365

6.  Mechanical regulation of organ asymmetry in leaves.

Authors:  Jiyan Qi; Binbin Wu; Shiliang Feng; Shouqin Lü; Chunmei Guan; Xiao Zhang; Dengli Qiu; Yingchun Hu; Yihua Zhou; Chuanyou Li; Mian Long; Yuling Jiao
Journal:  Nat Plants       Date:  2017-09-04       Impact factor: 15.793

7.  Plant cell wall homeostasis is mediated by brassinosteroid feedback signaling.

Authors:  Sebastian Wolf; Jozef Mravec; Steffen Greiner; Grégory Mouille; Herman Höfte
Journal:  Curr Biol       Date:  2012-08-09       Impact factor: 10.834

8.  ARABIDOPSIS DEHISCENCE ZONE POLYGALACTURONASE1 (ADPG1), ADPG2, and QUARTET2 are Polygalacturonases required for cell separation during reproductive development in Arabidopsis.

Authors:  Mikihiro Ogawa; Pippa Kay; Sarah Wilson; Stephen M Swain
Journal:  Plant Cell       Date:  2009-01-23       Impact factor: 11.277

9.  AtEXO70A1, a member of a family of putative exocyst subunits specifically expanded in land plants, is important for polar growth and plant development.

Authors:  Lukás Synek; Nicole Schlager; Marek Eliás; Michaël Quentin; Marie-Theres Hauser; Viktor Zárský
Journal:  Plant J       Date:  2006-08-31       Impact factor: 6.417

10.  Patterns of expansion and expression divergence in the plant polygalacturonase gene family.

Authors:  Joonyup Kim; Shin-Han Shiu; Sharon Thoma; Wen-Hsiung Li; Sara E Patterson
Journal:  Genome Biol       Date:  2006       Impact factor: 13.583

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  5 in total

Review 1.  Dynamics of pectic homogalacturonan in cellular morphogenesis and adhesion, wall integrity sensing and plant development.

Authors:  Juan Du; Charles T Anderson; Chaowen Xiao
Journal:  Nat Plants       Date:  2022-04-11       Impact factor: 15.793

2.  Two galacturonosyltransferases function in plant growth, stomatal development, and dynamics.

Authors:  Huimin Guo; Chuanlei Xiao; Qing Liu; Ruiying Li; Zhiqiang Yan; Xuan Yao; Honghong Hu
Journal:  Plant Physiol       Date:  2021-12-04       Impact factor: 8.005

3.  Pectin homogalacturonan nanofilament expansion drives morphogenesis in plant epidermal cells.

Authors:  Kalina T Haas; Raymond Wightman; Elliot M Meyerowitz; Alexis Peaucelle
Journal:  Science       Date:  2020-02-28       Impact factor: 47.728

4.  Variation in climatic tolerance, but not stomatal traits, partially explains Pooideae grass species distributions.

Authors:  Aayudh Das; Anoob Prakash; Natalie Dedon; Alex Doty; Muniba Siddiqui; Jill C Preston
Journal:  Ann Bot       Date:  2021-07-28       Impact factor: 4.357

5.  Guard Cell-Specific Pectin METHYLESTERASE53 Is Required for Abscisic Acid-Mediated Stomatal Function and Heat Response in Arabidopsis.

Authors:  Hui-Chen Wu; Shih-Yu Yu; Yin-Da Wang; Tsung-Luo Jinn
Journal:  Front Plant Sci       Date:  2022-02-21       Impact factor: 5.753

  5 in total

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