果胶METHYLESTERASE51对拟南芥气孔尺寸、莲座面积和根长的影响

IF 2.3 3区 生物学 Q2 PLANT SCIENCES
Plant Direct Pub Date : 2025-04-13 eCollection Date: 2025-04-01 DOI:10.1002/pld3.70066
Angelica L Dunham, Chetana Tamadaddi, Rayna Marshall, Charles T Anderson
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引用次数: 0

摘要

果胶在植物细胞壁中含量丰富,参与决定气孔保护细胞的发育和生物力学,气孔保护细胞通过动态扩张和收缩来打开和关闭植物表面气孔,调节光合作用和水分运输。果胶均半乳糖醛酸以甲基化形式传递到细胞壁,但可以在细胞壁被果胶甲基化酶去甲基化,增加了其通过钙形成交联的能力,也增加了其对内源性果胶酶降解的易感性。虽然一些果胶甲基酯酶与气孔发育和功能有关,但这一大家族的蛋白质如何调节气孔保护细胞尚未得到充分的表征。本文研究了PME51 (PME51)在拟南芥幼苗和成体气孔形态发生中的功能。PME51是一种果胶甲基化酶编码基因,在发育中的保护细胞中表达。过表达PME51导致成株气孔复合体较小,对开放和关闭刺激的初始反应发生细微变化,而过表达PME51导致幼苗气孔复合体较小,根系较长。我们在敲除和过表达植物中观察到果胶标记的变化,这意味着PME51在调节均半乳糖酸甲基化程度方面具有特定功能。总之,这些发现扩大了我们对果胶甲基酯酶修饰果胶如何影响气孔保护细胞的发育和功能的理解,气孔保护细胞必须保持强度和柔韧性的平衡才能优化植物的生长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PECTIN METHYLESTERASE51 Affects Stomatal Dimensions, Rosette Area, and Root Length in Arabidopsis thaliana.

Pectins are abundant in the cell walls of eudicot plants and have been implicated in determining the development and biomechanics of stomatal guard cells, which expand and contract dynamically to open and close stomatal pores on the plant surface, modulating photosynthesis and water transport. Pectic homogalacturonan is delivered to the cell wall in a methylesterified form but can be demethylesterified in the wall by pectin methylesterases, increasing both its ability to form crosslinks via calcium and its susceptibility to degradation by endogenous pectinases. Although a few pectin methylesterases have been implicated in stomatal development and function, this large family of proteins has not been fully characterized with respect to how they modulate stomatal guard cells. Here, we characterized the function of PECTIN METHYLESTERASE51 (PME51), a pectin methylesterase-encoding gene that is expressed in developing guard cells, in stomatal morphogenesis in seedlings and adult plants of Arabidopsis thaliana. Overexpressing PME51 led to smaller adult plants with smaller stomatal complexes and subtle changes in initial responses to opening and closure stimuli, whereas knocking out PME51 resulted in smaller stomatal complexes and longer roots in seedlings. We observed changes in pectin labeling in knockout and overexpression plants that imply a specific function for PME51 in modulating the degree of methylesterification for homogalacturonan. Together, these findings expand our understanding of how pectin modification by pectin methylesterases affects the development and function of stomatal guard cells, which must maintain a balance of strength and flexibility to optimize plant growth.

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来源期刊
Plant Direct
Plant Direct Environmental Science-Ecology
CiteScore
5.00
自引率
3.30%
发文量
101
审稿时长
14 weeks
期刊介绍: Plant Direct is a monthly, sound science journal for the plant sciences that gives prompt and equal consideration to papers reporting work dealing with a variety of subjects. Topics include but are not limited to genetics, biochemistry, development, cell biology, biotic stress, abiotic stress, genomics, phenomics, bioinformatics, physiology, molecular biology, and evolution. A collaborative journal launched by the American Society of Plant Biologists, the Society for Experimental Biology and Wiley, Plant Direct publishes papers submitted directly to the journal as well as those referred from a select group of the societies’ journals.
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