液泡
细胞生物学
拟南芥
生物发生
生物
内体
自噬
细胞内
突变体
拟南芥
细胞器
生物化学
细胞质
基因
细胞凋亡
作者
Cornelia Kolb,Marie-Kristin Nagel,Kamila Kalinowska,Jörg Hagmann,Mie Ichikawa,Franziska Anzenberger,Angela Alkofer,Masa H. Sato,Pascal Falter‐Braun,Erika Isono
出处
期刊:Plant Physiology
[Oxford University Press]
日期:2015-02-19
卷期号:167 (4): 1361-1373
被引量:125
标识
DOI:10.1104/pp.114.253377
摘要
Abstract The plant vacuole is a central organelle that is involved in various biological processes throughout the plant life cycle. Elucidating the mechanism of vacuole biogenesis and maintenance is thus the basis for our understanding of these processes. Proper formation of the vacuole has been shown to depend on the intracellular membrane trafficking pathway. Although several mutants with altered vacuole morphology have been characterized in the past, the molecular basis for plant vacuole biogenesis has yet to be fully elucidated. With the aim to identify key factors that are essential for vacuole biogenesis, we performed a forward genetics screen in Arabidopsis (Arabidopsis thaliana) and isolated mutants with altered vacuole morphology. The vacuolar fusion defective1 (vfd1) mutant shows seedling lethality and defects in central vacuole formation. VFD1 encodes a Fab1, YOTB, Vac1, and EEA1 (FYVE) domain-containing protein, FYVE1, that has been implicated in intracellular trafficking. FYVE1 localizes on late endosomes and interacts with Src homology-3 domain-containing proteins. Mutants of FYVE1 are defective in ubiquitin-mediated protein degradation, vacuolar transport, and autophagy. Altogether, our results show that FYVE1 is essential for plant growth and development and place FYVE1 as a key regulator of intracellular trafficking and vacuole biogenesis.
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