苗木
延伸率
钙调蛋白
突变体
生长素
发芽
串扰
拟南芥
水稻
根冠
细胞生物学
细胞分裂
胞浆
基因
生物
植物
生物化学
细胞
酶
分生组织
材料科学
极限抗拉强度
冶金
物理
光学
作者
Shuang Liu,Yàzhōu Zhèng,Liyan Zhao,Mihray Gulam,Aman Ullah,Guosheng Xie
出处
期刊:Plant Physiology
[Oxford University Press]
日期:2024-03-06
卷期号:195 (2): 1660-1680
被引量:1
标识
DOI:10.1093/plphys/kiae130
摘要
Abstract Low-temperature sensitivity at the germination stage is a challenge for direct seeding of rice in Asian countries. How Ca2+ and auxin (IAA) signaling regulate primary root growth under chilling remains unexplored. Here, we showed that OsCML16 interacted specifically with OsPILS7a to improve primary root elongation of early rice seedlings under chilling. OsCML16, a subgroup 6c member of the OsCML family, interacted with multiple cytosolic loop regions of OsPILS7a in a Ca2+-dependent manner. OsPILS7a localized to the endoplasmic reticulum membranes and functioned as an auxin efflux carrier in a yeast growth assay. Transgenics showed that presence of OsCML16 enhanced primary root elongation under chilling, whereas the ospils7a knockout mutant lines showed the opposite phenotype. Moreover, under chilling conditions, OsCML16 and OsPILS7a-mediated Ca2+ and IAA signaling and regulated the transcription of IAA signaling-associated genes (OsIAA11, OsIAA23, and OsARF16) and cell division marker genes (OsRAN1, OsRAN2, and OsLTG1) in primary roots. These results show that OsCML16 and OsPILS7a cooperatively regulate primary root elongation of early rice seedlings under chilling. These findings enhance our understanding of the crosstalk between Ca2+ and IAA signaling and reveal insights into the mechanisms underlying cold-stress response during rice germination.
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