Sep 2026· Plant physiology and biochemistry : PPB· Vol 238, pp.
111704
· 0 citations· 76 references
Medicine
TL;DR
Findings reveal that CiCIPK8 and CiCIPK11 function as positive regulators of osmotic stress tolerance by integrating ROS scavenging, osmotic adjustment, and transcriptional reprogramming.
Abstract
Osmotic stress severely limits plant growth and agricultural productivity, primarily by disrupting cellular water balance. Although the CBL-CIPK signaling network is recognized as a central mediator of abiotic stress responses, the functions of CiCIPKs from pecan (Carya illinoinensis) in osmotic stress tolerance remain largely unclear. In this study, two osmotic stress-responsive genes, CiCIPK8 and CiCIPK11, were cloned and functionally characterized via heterologous expression in Arabidopsis. Under mannitol-induced osmotic stress, transgenic lines exhibited significantly enhanced seed germination and root elongation compared with the wild-type (WT) plants. Physiological analyses revealed that overexpression of CiCIPK8 and CiCIPK11 improved osmotic stress tolerance by increasing antioxidant enzyme activities, reducing oxidative damage, and promoting the accumulation of compatible osmolytes, including proline, soluble proteins, and soluble sugars. Transcriptomic profiling, combined with quantitative reverse transcription-polymerase chain reaction (qRT-PCR) validation, demonstrated that CiCIPK8 and CiCIPK11 coordinately regulate multiple stress-responsive pathways, including plant hormone signal transduction, mitogen-activated protein kinase (MAPK) cascades, cell wall dynamics, and metabolic regulation. In addition, yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) assays demonstrated that CiCIPK8 interacted with CiCBL1 and CiCBL8, whereas CiCIPK11 specifically interacted with CiCBL1, suggesting the involvement of a Ca2+-dependent CBL-CIPK signaling module. In conclusion, these findings reveal that CiCIPK8 and CiCIPK11 function as positive regulators of osmotic stress tolerance by integrating ROS scavenging, osmotic adjustment, and transcriptional reprogramming. This study provides valuable insights into stress signaling in pecan and offers candidate targets for the molecular breeding of osmotic stress-tolerant woody crops.
Low-temperature stress restricts plant growth, development, and geographical distribution. The C-repeat binding factor (CBF) is a core transcriptional regulator in plant cold stress responses, but its role in the thermophilic "Manaohong" cherry (Cerasus pseudocerasus Lindl.) remains elusive. Here, a cold-induced transc...
Juan Fu, Tao Tang, Jin-Yu Wu et al.· Physiologia Plantarum : An I...· 0 citations
Findings identify AtATS1 as a negative regulator of salt tolerance in B. napus and highlights the need for careful modulation of glycerolipid biosynthesis when engineering salt-resilient rapeseed varieties.
Yue-Ping Zheng, Yanyi Lin, Shao-Feng Cui et al.· Horticulturae· 0 citations
Salt stress severely restricts pepper growth and productivity. Although AP2/ERF transcription factors are widely involved in plant responses to environmental stress, their functions in salt tolerance in pepper remain largely unknown. In this study, transcriptome-based screening identified CaERF3 (Capana07g002313) as a...
Hao-Wei Gong, Zhan-Ming Tan, Bing-Long Hu et al.· Horticulturae· 0 citations
A genome-wide identification of the wheat AT gene family is performed and a novel TaOBF1B-TaNAAT1 regulatory module associated with salt tolerance is identified, potentially involving metabolic adjustments that await further biochemical characterization.
Kexin Niu, Yuan-Qing He, Xiao-Hang Xi et al.· Plant Science· 0 citations
The calmodulin-binding protein 60-like protein family plays important roles in plant immunity and stress responses, but its functions in ornamental plants remain poorly understood. In this study, we characterized PhCBP60b from Petunia × hybrida ‘Mitchell Diploid’ and investigated its role in drought tolerance. PhCBP60b...
Siyu Liu, Chao-Qun Li, Xinyi Deng et al.· BMC Plant Biology· 0 citations
Salt stress disrupts ion homeostasis, leading to toxic sodium accumulation and reduced potassium uptake. The Calcineurin B-like protein (CBL) and CBL-interacting protein kinase (CIPK) network plays pivotal roles in response to abiotic stresses. Here, the root preferentially expressed OsCIPK7 with significantly salt-ind...
Yuan Qin, Qun Gao, Xin Fan et al.· Journal of Experimental Bota...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.