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Simultaneous mutations in ITPK4 and MRP5 genes result in a low phytic acid level without compromising salt tolerance in Arabidopsis

植酸 拟南芥 分生组织 甲基磺酸乙酯 基因 根毛 生长素 肌醇 细胞生物学 突变 拟南芥 ATP结合盒运输机 生物 野生型 遗传学 生物化学 运输机 突变体 受体
作者
Yuying Ren,Mengdan Jiang,Jian‐Kang Zhu,Wenkun Zhou,Chunzhao Zhao
出处
期刊:Journal of Integrative Plant Biology [Wiley]
卷期号:66 (10): 2109-2125 被引量:2
标识
DOI:10.1111/jipb.13745
摘要

ABSTRACT Generation of crops with low phytic acid ( myo ‐inositol‐1,2,3,4,5,6‐hexakisphosphate (InsP 6 )) is an important breeding direction, but such plants often display less desirable agronomic traits. In this study, through ethyl methanesulfonate‐mediated mutagenesis, we found that inositol 1,3,4‐trisphosphate 5/6‐kinase 4 (ITPK4), which is essential for producing InsP 6 , is a critical regulator of salt tolerance in Arabidopsis . Loss of function of ITPK4 gene leads to reduced root elongation under salt stress, which is primarily because of decreased root meristem length and reduced meristematic cell number. The itpk4 mutation also results in increased root hair density and increased accumulation of reactive oxygen species during salt exposure. RNA sequencing assay reveals that several auxin‐responsive genes are down‐regulated in the itpk4‐1 mutant compared to the wild‐type. Consistently, the itpk4‐1 mutant exhibits a reduced auxin level in the root tip and displays compromised gravity response, indicating that ITPK4 is involved in the regulation of the auxin signaling pathway. Through suppressor screening, it was found that mutation of Multidrug Resistance Protein 5 ( MRP5 ) 5 gene, which encodes an ATP‐binding cassette (ABC) transporter required for transporting InsP 6 from the cytoplasm into the vacuole, fully rescues the salt hypersensitivity of the itpk4‐1 mutant, but in the itpk4‐1 mrp5 double mutant, InsP 6 remains at a very low level. These results imply that InsP 6 homeostasis rather than its overall amount is beneficial for stress tolerance in plants. Collectively, this study uncovers a pair of gene mutations that confer low InsP 6 content without impacting stress tolerance, which offers a new strategy for creating “low‐phytate” crops.

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