Involvement of the Phospholipid Sterol Acyltransferase1 in Plant Sterol Homeostasis and Leaf Senescence

Author:

Bouvier-Naveݩ Pierrette1,Berna Anne1,Noiriel Alexandre1,Compagnon Vincent1,Carlsson Anders S.1,Banas Antoni1,Stymne Sten1,Schaller Hubert1

Affiliation:

1. Institut de Biologie Moleݩculaire des Plantes du CNRS, Universiteݩ de Strasbourg, Deݩpartement Reݩseaux Meݩtaboliques Veݩgeݩtaux, F–67083 Strasbourg cedex, France (P.B.-N., A. Berna, A.N., V.C., H.S.); and Department of Plant Breeding and Biotechnology, Swedish University of Agricultural Sciences, S–230 53 Alnarp, Sweden (A.S.C., A. Banas, S.S.)

Abstract

Abstract Genes encoding sterol ester-forming enzymes were recently identified in the Arabidopsis (Arabidopsis thaliana) genome. One belongs to a family of six members presenting homologies with the mammalian Lecithin Cholesterol Acyltransferases. The other one belongs to the superfamily of Membrane-Bound O-Acyltransferases. The physiological functions of these genes, Phospholipid Sterol Acyltransferase1 (PSAT1) and Acyl-CoA Sterol Acyltransferase1 (ASAT1), respectively, were investigated using Arabidopsis mutants. Sterol ester content decreased in leaves of all mutants and was strongly reduced in seeds from plants carrying a PSAT1-deficient mutation. The amount of sterol esters in flowers was very close to that of the wild type for all lines studied. This indicated further functional redundancy of sterol acylation in Arabidopsis. We performed feeding experiments in which we supplied sterol precursors to psat1-1, psat1-2, and asat1-1 mutants. This triggered the accumulation of sterol esters (stored in cytosolic lipid droplets) in the wild type and the asat1-1 lines but not in the psat1-1 and psat1-2 lines, indicating a major contribution of the PSAT1 in maintaining free sterol homeostasis in plant cell membranes. A clear biological effect associated with the lack of sterol ester formation in the psat1-1 and psat1-2 mutants was an early leaf senescence phenotype. Double mutants lacking PSAT1 and ASAT1 had identical phenotypes to psat1 mutants. The results presented here suggest that PSAT1 plays a role in lipid catabolism as part of the intracellular processes at play in the maintenance of leaf viability during developmental aging.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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