Jiang Shan, Sun Zhihui, Feng Zhenkai, Qi Yuanpeng, Chen Hui, Wang Yu, Qi Junsheng, Guo Yan, Yang Shuhua, Gong Zhizhong
State Key Laboratory of Plant Environmental Resilience, Frontiers Science Center for Molecular Design Breeding, Center for Crop Functional Genomics and Molecular Breeding, College of Biological Sciences, the China Agricultural University, Beijing, 100193, China.
College of Life Sciences, Institute of Life Science and Green Development, Hebei University, Baoding, 071002, China.
J Integr Plant Biol. 2025 Jul;67(7):1787-1804. doi: 10.1111/jipb.13906. Epub 2025 Apr 14.
The calcineurin B-like protein (CBL)-CBL-interacting protein kinase (CIPK) Ca²⁺ sensors play crucial roles in the plant's response to drought stress. However, there have been few reports on the synergistic regulation of drought stress by CBL-CIPK and abscisic acid (ABA) core signaling components. In this study, we discovered that ZmCIPK33 positively regulates drought resistance in maize. ZmCIPK33 physically interacts with and is enhanced by phosphorylation from ZmSnRK2.10. Drought stress can activate ZmCIPK33, which is partially dependent on ZmSnRK2.10. ZmCIPK33 in combination with ZmSnRK2.10 can activate the slow anion channel ZmSLAC1 in Xenopus laevis oocytes independently of CBLs, whereas ZmCIPK33 or ZmSnRK2.10 alone is unable to do so. Furthermore, ZmCIPK33 phosphorylates ZmPP2C11 at Ser60, which leads to a reduction in the interaction between ZmPP2C11 and ZmEAR1 (the ortholog of Arabidopsis Enhancer of ABA co-Receptor 1) and weakens the phosphatase activity of ZmPP2C11, consequently, enhancing the activity of ZmSnRK2.10 in an in vitro assay and in the in-gel assay of the zmcipk33 mutant. Our findings provide novel insights into the molecular mechanisms underlying the reciprocal enhancement of Ca²⁺ and ABA signaling under drought stress in maize.
类钙调神经磷酸酶B蛋白(CBL)-CBL互作蛋白激酶(CIPK)钙传感器在植物对干旱胁迫的响应中起关键作用。然而,关于CBL-CIPK与脱落酸(ABA)核心信号成分对干旱胁迫的协同调控的报道较少。在本研究中,我们发现ZmCIPK33正向调控玉米的抗旱性。ZmCIPK33与ZmSnRK2.10发生物理相互作用,并被ZmSnRK2.10磷酸化增强。干旱胁迫可激活ZmCIPK33,这部分依赖于ZmSnRK2.10。ZmCIPK33与ZmSnRK2.10组合可在非洲爪蟾卵母细胞中独立于CBL激活慢阴离子通道ZmSLAC1,而单独的ZmCIPK33或ZmSnRK2.10则无法做到。此外,ZmCIPK33在Ser60位点磷酸化ZmPP2C11,导致ZmPP2C11与ZmEAR1(拟南芥ABA共受体增强子1的直系同源物)之间的相互作用减少,并削弱ZmPP2C11的磷酸酶活性,因此,在体外实验和zmcipk33突变体的凝胶内实验中增强了ZmSnRK2.10的活性。我们的研究结果为玉米干旱胁迫下Ca²⁺和ABA信号相互增强的分子机制提供了新的见解。