拟南芥拟西莫多2突变体中聚半乳糖酶活性促进异常细胞分离

Q1 Immunology and Microbiology
William J. Barnes , Ellen Zelinsky , Charles T. Anderson
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引用次数: 3

摘要

在植物中,细胞粘附依赖于在组织扩张过程中平衡富含果胶的中间薄片的完整性和壁松动。果胶甲基转移酶QUASIMODO2 (QUA2)突变导致拟南芥下胚轴伸长缺陷和细胞粘附。然而,QUA2在细胞粘附中的分子功能被复杂的遗传和环境相互作用所掩盖。为了分析QUA2在细胞粘附中的作用,我们使用成像和生化技术相结合的方法研究了一个功能缺失的QUA2突变体和一个恢复细胞粘附的抑制突变体QUA2 esmeralda1。我们发现,qua2下胚轴在中间片的完整性、果胶甲基酯酶(PME)活性、果胶含量和分子质量以及细胞角处免疫检测到的Ca2+交联方面都有所降低,但甲基酯化和聚半乳糖酶(PG)活性有所增加,而qua2 esmd1具有野生型或中间型表型。我们的研究结果表明,过度的果胶降解阻止果胶积累和形成足够的Ca2+交联网络来维持qua2突变体的细胞粘附。我们认为PME和PG的活性平衡了组织水平的扩张和细胞分离。总之,这些数据提供了对qua2突变体细胞粘附缺陷的原因的深入了解,并强调了在植物生长发育过程中协调果胶修饰和降解的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Polygalacturonase activity promotes aberrant cell separation in the quasimodo2 mutant of Arabidopsis thaliana

Polygalacturonase activity promotes aberrant cell separation in the quasimodo2 mutant of Arabidopsis thaliana

Polygalacturonase activity promotes aberrant cell separation in the quasimodo2 mutant of Arabidopsis thaliana

Polygalacturonase activity promotes aberrant cell separation in the quasimodo2 mutant of Arabidopsis thaliana

In plants, cell adhesion relies on balancing the integrity of the pectin-rich middle lamella with wall loosening during tissue expansion. Mutation of QUASIMODO2 (QUA2), a pectin methyltransferase, causes defective hypocotyl elongation and cell adhesion in Arabidopsis thaliana hypocotyls. However, the molecular function of QUA2 in cell adhesion is obscured by complex genetic and environmental interactions. To dissect the role of QUA2 in cell adhesion, we investigated a qua2 loss-of-function mutant and a suppressor mutant with restored cell adhesion, qua2 esmeralda1, using a combination of imaging and biochemical techniques. We found that qua2 hypocotyls have reductions in middle lamellae integrity, pectin methyl-esterase (PME) activity, pectin content and molecular mass, and immunodetected Ca2+-crosslinking at cell corners, but increased methyl-esterification and polygalacturonase (PG) activity, with qua2 esmd1 having wild type-like or intermediate phenotypes. Our findings suggest that excessive pectin degradation prevents pectin accumulation and the formation of a sufficiently Ca2+-crosslinked network to maintain cell adhesion in qua2 mutants. We propose that PME and PG activities balance tissue-level expansion and cell separation. Together, these data provide insight into the cause of cell adhesion defects in qua2 mutants and highlight the importance of harmonizing pectin modification and degradation during plant growth and development.

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来源期刊
Cell Surface
Cell Surface Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
6.10
自引率
0.00%
发文量
18
审稿时长
49 days
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