SPIRRIG is required for BRICK1 stability and salt stress induced root hair developmental plasticity in Arabidopsis.

Chi Zhang, Jingyu Zeng, Wenjuan Xie, Chuanseng Liu, Linyu Niu, Yanling Wang, Yali Wang, Muyang Shi, Jingxia Shao, Wenjia Wang, John Schiefelbein, Fei Yu, Lijun An
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Abstract

Developmental plasticity is critical for plants to adapt to constantly changing environments. Plant root hairs display dramatic plasticity under different environments and therefore play crucial roles in defense against environmental stressors. Here, we report the isolation of an Arabidopsis mutant, salinity over-sensitive mutant 1-1 (som1-1), also exhibiting root hair developmental defects. Map-based cloning and allelic analyses confirmed that som1-1 is a new mutant allele of SPIRRIG (SPI), which encodes a Beige and Chediak Higashi (BEACH) domain-containing protein. SPI has been reported to facilitate actin dependent root hair development by temporally and spatially regulating the expression of BRICK1 (BRK1), a subunit of the SCAR/WAVE actin nucleating promoting complex. Our living cell imaging examinations revealed that salt stress induces an altered actin organization in root hair that mimics those in the spi mutant, implying SPI may respond to salt stress induced root hair plasticity by modulating actin cytoskeleton organization. Furthermore, we found BRK1 is also involved in root hair developmental change under salt stress, and overexpression of BRK1 resulted in root hairs over-sensitive to salt stress as those in spi mutant. Moreover, based on biochemical analyses, we found BRK1 is unstable and SPI mediates BRK1 stability. Functional loss of SPI results in the accumulation of steady-state of BRK1.

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拟南芥中 BRICK1 的稳定性和盐胁迫诱导的根毛发育可塑性需要 SPIRRIG。
发育可塑性对于植物适应不断变化的环境至关重要。植物根毛在不同环境下具有显著的可塑性,因此在抵御环境胁迫方面发挥着至关重要的作用。在此,我们报告了拟南芥突变体盐度过度敏感突变体 1-1(som1-1)的分离结果,该突变体也表现出根毛发育缺陷。基于图谱的克隆和等位基因分析证实,som1-1是SPIRRIG(SPI)的一个新突变等位基因,SPIRRIG编码一种含Beige和Chediak Higashi(BEACH)结构域的蛋白质。据报道,SPI 通过在时间和空间上调节 BRICK1(BRK1)的表达,促进了肌动蛋白依赖性根毛的发育,而 BRICK1 是 SCAR/WAVE 肌动蛋白成核促进复合体的一个亚基。我们的活细胞成像检查发现,盐胁迫诱导根毛中的肌动蛋白组织发生了改变,这与 spi 突变体中的情况相似,这意味着 SPI 可能通过调节肌动蛋白细胞骨架组织来应对盐胁迫诱导的根毛可塑性。此外,我们还发现BRK1也参与了盐胁迫下根毛的发育变化,过表达BRK1会导致根毛对盐胁迫过度敏感,与spi突变体一样。此外,基于生化分析,我们发现 BRK1 是不稳定的,而 SPI 介导 BRK1 的稳定性。SPI 的功能缺失会导致 BRK1 的稳态积累。
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