A cold-induced outside-in signaling pathway that links cytoplasmic cold perception to chloroplast remodeling and nuclear defense is revealed, establishing a conceptual framework that balances energy production with stress resilience.
Abstract
Chloroplasts are plant-specific organelles for photosynthesis and play crucial roles in stress response. However, how chloroplasts respond to cold stress remains unclear. Here, we identify an rapidly accelerated fifibrosarcoma (RAF)-like bi-kinase module, RAF3/6, as key mediators in chloroplast cold-stress responses. RAF3/6 separately localize to the cytoplasm and plasma membrane under growth conditions. Upon cold stress, RAF3/6 translocate into chloroplasts mediated by the chaperone HSP70-1, where they phosphorylate the PSII components D1 and LHCB1, promoting their redistribution across thylakoid membranes and subsequent degradation, thereby suppressing photosynthetic activity. Concurrently, RAF3/6 phosphorylate the chloroplast-to-nucleus shuttling protein WHY1, promoting its nuclear accumulation and cold-defense gene activation. Notably, the natural variation of RAF6 contains a latitude-correlated SNP that affects its chloroplast import, suggesting an evolutionary cold adaptation. Together, these findings reveal a cold-induced outside-in signaling pathway that links cytoplasmic cold perception to chloroplast remodeling and nuclear defense, establishing a conceptual framework that balances energy production with stress resilience.
The reviewed studies indicate that ROS represent important early stress signals, while PAP and MEcPP function as metabolic messengers under specific stress conditions, and GUN1 and associated nuclear regulatory factors participate in coordinating chloroplast status with nuclear gene expression.
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