Multisite Light-Induced Phosphorylation of the Transcription Factor PIF3 Is Necessary for Both Its Rapid Degradation and Concomitant Negative Feedback Modulation of Photoreceptor phyB Levels in Arabidopsis

Author:

Ni Weimin12,Xu Shou-Ling34,Chalkley Robert J.3,Pham Thao Nguyen D.12,Guan Shenheng3,Maltby Dave A.3,Burlingame Alma L.3,Wang Zhi-Yong4,Quail Peter H.12

Affiliation:

1. Department of Plant and Microbial Biology, University of California, Berkeley, California 94720

2. U.S. Department of Agriculture/Agriculture Research Service, Plant Gene Expression Center, Albany, California 94710

3. Department of Pharmaceutical Chemistry, University of California, San Francisco, California 94143

4. Department of Plant Biology, Carnegie Institution for Science, Stanford, California 94305

Abstract

Abstract Plants constantly monitor informational light signals using sensory photoreceptors, which include the phytochrome (phy) family (phyA to phyE), and adjust their growth and development accordingly. Following light-induced nuclear translocation, photoactivated phy molecules bind to and induce rapid phosphorylation and degradation of phy-interacting basic Helix Loop Helix (bHLH) transcription factors (PIFs), such as PIF3, thereby regulating the expression of target genes. However, the mechanisms underlying the signal-relay process are still not fully understood. Here, using mass spectrometry, we identify multiple, in vivo, light-induced Ser/Thr phosphorylation sites in PIF3. Using transgenic expression of site-directed mutants of PIF3, we provide evidence that a set of these phosphorylation events acts collectively to trigger rapid degradation of the PIF3 protein in response to initial exposure of dark-grown seedlings to light. In addition, we show that phyB-induced PIF3 phosphorylation is also required for the known negative feedback modulation of phyB levels in prolonged light, potentially through codegradation of phyB and PIF3. This mutually regulatory intermolecular transaction thus provides a mechanism with the dual capacity to promote early, graded, or threshold regulation of the primary, PIF3-controlled transcriptional network in response to initial light exposure, and later, to attenuate global sensitivity to the light signal through reductions in photoreceptor levels upon prolonged exposure.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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