Knock-Down of Arabidopsis PLC5 Reduces Primary Root Growth and Secondary Root Formation While Overexpression Improves Drought Tolerance and Causes Stunted Root Hair Growth

根毛 生物 次生生长 分生组织 细胞生物学 拟南芥 拟南芥 警卫室 磷脂酰肌醇 侧根 第二信使系统 磷脂酸 肌醇 植物 突变体 激酶 信号转导 生物化学 基因 磷脂 受体 木质部
作者
Qianqian Zhang,Ringo van Wijk,Xavier Zarza,Muhammad Shahbaz,Max van Hooren,Aisha Guardia,Denise Scuffi,Carlos Garcı́a-Mata,Wim Van den Ende,Susanne Hoffmann-Benning,Michel A. Haring,Ana M. Laxalt,Teun Munnik
出处
期刊:Plant and Cell Physiology [Oxford University Press]
卷期号:59 (10): 2004-2019 被引量:43
标识
DOI:10.1093/pcp/pcy120
摘要

Phospholipase C (PLC) is a well-known signaling enzyme in metazoans that hydrolyzes phosphatidylinositol 4,5-bisphosphate (PIP2) to produce inositol 1,4,5-trisphosphate and diacylglycerol as second messengers involved in mutiple processes. Plants contain PLC too, but relatively little is known about its function there. The model system Arabidopsis thaliana contains nine PLC genes. Reversed genetics have implicated several roles for PLCs in plant development and stress signaling. Here, PLC5 is functionally addressed. Promoter-β-glucuronidase (GUS) analyses revealed expression in roots, leaves and flowers, predominantly in vascular tissue, most probably phloem companion cells, but also in guard cells, trichomes and root apical meristem. Only one plc5-1 knock-down mutant was obtained, which developed normally but grew more slowly and exhibited reduced primary root growth and decreased lateral root numbers. These phenotypes could be complemented by expressing the wild-type gene behind its own promoter. Overexpression of PLC5 (PLC5-OE) using the UBQ10 promoter resulted in reduced primary and secondary root growth, stunted root hairs, decreased stomatal aperture and improved drought tolerance. PLC5-OE lines exhibited strongly reduced phosphatidylinositol 4-monophosphate (PIP) and PIP2 levels and increased amounts of phosphatidic acid, indicating enhanced PLC activity in vivo. Reduced PIP2 levels and stunted root hair growth of PLC5-OE seedlings could be recovered by inducible overexpression of a root hair-specific PIP 5-kinase, PIP5K3. Our results show that PLC5 is involved in primary and secondary root growth and that its overexpression improves drought tolerance. Independently, we provide new evidence that PIP2 is essential for the polar tip growth of root hairs.
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