Control of Retrograde Signaling by Rapid Turnover of GENOMES UNCOUPLED1

Plant Physiol. 2018 Mar;176(3):2472-2495. doi: 10.1104/pp.18.00009. Epub 2018 Jan 24.

Abstract

The exchange of signals between cellular compartments coordinates development and differentiation, modulates metabolic pathways, and triggers responses to environmental conditions. The proposed central regulator of plastid-to-nucleus retrograde signaling, GENOMES UNCOUPLED1 (GUN1), is present at very low levels, which has hampered the discovery of its precise molecular function. Here, we show that the Arabidopsis (Arabidopsis thaliana) GUN1 protein accumulates to detectable levels only at very early stages of leaf development, where it functions in the regulation of chloroplast biogenesis. GUN1 mRNA is present at high levels in all tissues, but GUN1 protein undergoes rapid degradation (with an estimated half-life of ∼4 h) in all tissues where chloroplast biogenesis has been completed. The rapid turnover of GUN1 is controlled mainly by the chaperone ClpC1, suggesting degradation of GUN1 by the Clp protease. Degradation of GUN1 slows under stress conditions that alter retrograde signaling, thus ensuring that the plant has sufficient GUN1 protein. We also find that the pentatricopeptide repeat motifs of GUN1 are important determinants of GUN1 stability. Moreover, overexpression of GUN1 causes an early flowering phenotype, suggesting a function of GUN1 in developmental phase transitions beyond chloroplast biogenesis. Taken together, our results provide new insight into the regulation of GUN1 by proteolytic degradation, uncover its function in early chloroplast biogenesis, and suggest a role in developmental phase transitions.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Arabidopsis / genetics
  • Arabidopsis / growth & development
  • Arabidopsis / metabolism*
  • Arabidopsis Proteins / genetics
  • Arabidopsis Proteins / metabolism*
  • Chloroplast Proteins / genetics
  • Chloroplast Proteins / metabolism
  • Chloroplasts / metabolism
  • DNA-Binding Proteins / genetics
  • DNA-Binding Proteins / metabolism*
  • Flowers / genetics
  • Gene Expression Regulation, Plant
  • Half-Life
  • Heat-Shock Proteins / genetics
  • Heat-Shock Proteins / metabolism
  • Plant Leaves / genetics
  • Plant Leaves / growth & development
  • Plant Leaves / metabolism
  • Plants, Genetically Modified
  • Plastids / genetics
  • Plastids / metabolism
  • Protein Biosynthesis
  • Protein Stability
  • Signal Transduction

Substances

  • Arabidopsis Proteins
  • Chloroplast Proteins
  • DNA-Binding Proteins
  • GUN1 protein, Arabidopsis
  • Heat-Shock Proteins
  • chloroplast 93-kD heat shock protein, Arabidopsis