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Blue Light Promotes Root Iron Acquisition via a Shoot CRY-HY5 Signaling Module in Arabidopsis.

Jakhar, P.; Mankotia, S.; Ladhwal, S.; Bodh, N.; Dhanawat, K.; Pandey, A. K.; Satbhai, S. B.

2025-11-03 plant biology
10.1101/2025.11.02.686065 bioRxiv
Show abstract

O_LIIron (Fe) is an essential element for almost all living organisms and its deficiency severely impacts crop productivity and human health. While the mechanisms underlying iron uptake and accumulation are well studied, the role of light in modulating iron homeostasis remains poorly understood. In this study, we report that blue light enhances iron accumulation thereby positively regulating iron homeostasis in Arabidopsis thaliana. C_LIO_LIUnder iron-deficient conditions, root elongation is specifically promoted by blue light, not red light. We further revealed that, light perceived by shoots is required for optimum iron accumulation and for iron deficiency induced increase in root length. C_LIO_LIThe transcription factor HY5 (Elongated Hypocotyl 5), mediates these blue light-driven responses. The hy5 mutant showed reduced root elongation under -Fe conditions as well as iron accumulation under blue light as compared to wild-type plants. C_LIO_LIFurther we report that CRY1 and CRY2 are the photoreceptor that acts as a connecting link between blue light and HY5 to regulate iron uptake in Arabidopsis. C_LIO_LITaken together, our work reveals new regulatory mechanism and offers potential insights into optimizing light conditions to enhance iron accumulation and improve the nutritional quality of crops. C_LI

Published in Plant Physiology (predicted rank #5) · training set

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