Protein Repair l-Isoaspartyl Methyltransferase1 Is Involved in Both Seed Longevity and Germination Vigor in Arabidopsis

Author:

Ogé Laurent12,Bourdais Gildas12,Bove Jérôme1,Collet Boris12,Godin Béatrice12,Granier Fabienne3,Boutin Jean-Pierre1,Job Dominique24,Jullien Marc12,Grappin Philippe12

Affiliation:

1. Laboratoire de Biologie des Semences, Unité Mixte de Recherche 204 Institut National de la Recherche Agronomique-AgroParisTech, Institut Jean-Pierre Bourgin, F-78026 Versailles cedex, France

2. UER de Physiologie Végétale, AgroParisTech, F-75231 Paris cedex 05, France

3. Station de Génétique et Amélioration des Plantes, Institut National de la Recherche Agronomique, Institut Jean-Pierre Bourgin, F-78026 Versailles cedex, France

4. Centre National de la Recherche Scientifique, Université Claude Bernard Lyon I, Institut National des Sciences Appliquées, Bayer CropScience Joint Laboratory, Unité Mixte de Recherche 5240, Bayer CropScience, F-69263 Lyon, France

Abstract

Abstract The formation of abnormal amino acid residues is a major source of spontaneous age-related protein damage in cells. The protein l-isoaspartyl methyltransferase (PIMT) combats protein misfolding resulting from l-isoaspartyl formation by catalyzing the conversion of abnormal l-isoaspartyl residues to their normal l-aspartyl forms. In this way, the PIMT repair enzyme system contributes to longevity and survival in bacterial and animal kingdoms. Despite the discovery of PIMT activity in plants two decades ago, the role of this enzyme during plant stress adaptation and in seed longevity remains undefined. In this work, we have isolated Arabidopsis thaliana lines exhibiting altered expression of PIMT1, one of the two genes encoding the PIMT enzyme in Arabidopsis. PIMT1 overaccumulation reduced the accumulation of l-isoaspartyl residues in seed proteins and increased both seed longevity and germination vigor. Conversely, reduced PIMT1 accumulation was associated with an increase in the accumulation of l-isoaspartyl residues in the proteome of freshly harvested dry mature seeds, thus leading to heightened sensitivity to aging treatments and loss of seed vigor under stressful germination conditions. These data implicate PIMT1 as a major endogenous factor that limits abnormal l-isoaspartyl accumulation in seed proteins, thereby improving seed traits such as longevity and vigor. The PIMT repair pathway likely works in concert with other anti-aging pathways to actively eliminate deleterious protein products, thus enabling successful seedling establishment and strengthening plant proliferation in natural environments.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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