Related Experiment Video
Updated: Dec 26, 2025

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Functional switching of NPR1 between chloroplast and nucleus for adaptive response to salt stress
So Yeon Seo1, Soo Jin Wi1, Ky Young Park2
1Department of Biology, Sunchon National University, Sunchon, Chonnam, Republic of Korea.
Abstract:
Salt stress causes rapid accumulation of nonexpressor of pathogenesis-related genes 1 (NPR1) protein, known as the redox-sensitive transcription coactivator, which in turn elicits many adaptive responses. The NPR1 protein transiently accumulates in chloroplast stroma under salt stress, which attenuates stress-triggered down-regulation of photosynthetic capability. We observed that oligomeric NPR1 in chloroplasts and cytoplasm had chaperone activity, whereas monomeric NPR1 in the nucleus did not. Additionally, NPR1 overexpression resulted in reinforcement of morning-phased and evening-phased circadian clock. NPR1 overexpression also enhanced antioxidant activity and reduced stress-induced reactive oxygen species (ROS) generation at early stage, followed with transcription levels for ROS detoxification. These results suggest a functional switch from a molecular chaperone to a transcriptional coactivator, which is dependent on subcellular localization. Our findings imply that dual localization of NPR1 is related to proteostasis and redox homeostasis in chloroplasts for emergency restoration as well as transcriptional coactivator in the nucleus for adaptation to stress.
Related Concept Videos
Responses to Salt Stress
Responses to Heat and Cold Stress
Export of Mitochondrial and Chloroplast Genes
Photoreceptors and Plant Responses to Light
Cell Signaling in Plants
Other Stress Responses in Bacteria

