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液泡“灯泡”结构是液泡膜的一种复杂的形态,其发生会受到拟南芥液泡 SNARE 和磷脂酶突变的影响。

The occurrence of 'bulbs', a complex configuration of the vacuolar membrane, is affected by mutations of vacuolar SNARE and phospholipase in Arabidopsis.

机构信息

Molecular Membrane Biology Laboratory, RIKEN Advanced Science Institute, Wako, Saitama 351-0198, Japan.

出版信息

Plant J. 2011 Oct;68(1):64-73. doi: 10.1111/j.1365-313X.2011.04665.x. Epub 2011 Jul 14.

Abstract

The plant vacuole fulfills a variety of functions, and is essential for plant growth and development. We previously identified complex and mobile structures on the continuous vacuolar membrane, which we refer to as 'bulbs'. To ascertain their biological significance and function, we searched for markers associated with bulbs, and mutants that show abnormalities with respect to bulbs. We observed bulb-like structures after expression of non-membranous proteins as well as the functional soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) molecules VAM3 and VTI11. Bulbs are formed in more tissues than previously reported, including flowering organs, suspension culture cells, endodermal cells in the flowering stem, and at very early stages of seed germination. Using existing and newly developed marker lines, we found that the frequency of bulb occurrence is significantly decreased in multiple shoot gravitropism (sgr) mutants, which are known to have a defect in vacuolar membrane properties in endodermal cells. Based on results with new marker lines, which enabled us to observe the process of bulb biogenesis, and analysis of the phenotypes of these mutants, we propose multiple mechanisms for bulb formation, one of which may be that used for formation of transvacuolar strands.

摘要

植物液泡具有多种功能,对植物生长和发育至关重要。我们之前在连续的液泡膜上发现了复杂且可移动的结构,我们称之为“泡状物”。为了确定其生物学意义和功能,我们寻找与泡状物相关的标记物,并寻找在泡状物方面表现出异常的突变体。我们观察到非膜蛋白表达后出现泡状结构,以及功能性可溶性 N-乙基马来酰亚胺敏感因子附着蛋白受体(SNARE)分子 VAM3 和 VTI11。泡状物形成的组织比以前报道的更多,包括花器官、悬浮培养细胞、花茎内胚层细胞以及种子萌发的早期阶段。使用现有的和新开发的标记线,我们发现,在多个 shoot gravitropism(sgr)突变体中,泡状物的出现频率明显降低,已知这些突变体在内胚层细胞的液泡膜性质上存在缺陷。基于新标记线的结果,我们能够观察泡状物生物发生的过程,并分析这些突变体的表型,我们提出了多种泡状物形成的机制,其中一种可能是用于形成跨液泡链。

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