TY - JOUR
T1 - Identification of a novel GPCAT activity and a new pathway for phosphatidylcholine biosynthesis in S. cerevisiae
AU - Ronne, Hans
AU - Neal, Andrea C.
AU - Stålberg, Kjell
AU - Ståhl, Ulf
PY - 2008
Y1 - 2008
N2 - Turnover of phospholipids in the yeast Saccharomyces cerevisiae generates intracellular glycerophosphocholine (GPC). Here we show that GPC can be reacylated in an acyl-CoA-dependent reaction by yeast microsomal membranes. The lysophosphatidylcholine that is formed in this reaction is efficiently further acylated to phosphatidylcholine (PC) by yeast microsomes, thus providing a new pathway for PC biosynthesis that can either recycle endogenously generated GPC or utilize externally provided GPC. Genetic and biochemical evidence suggests that this new enzymatic activity, which we call GPC acyltransferase (GPCAT), is not mediated by any of the previously known acyltransferases in yeast. The GPCAT activity has an apparent V-max of 8.7 nmol/min/mg protein and an apparent K-m of 2.5 mM. It has a neutral pH optimum, similar to yeast glycerol-3-phosphate acyltransferase, but differs from the latter in being more heat stable. The GPCAT activity is sensitive to N-ethylmaleimide, phenanthroline, and Zn2+ ions. In vivo experiments showed that PC is efficiently labeled when yeast cells are fed with [H-3]choline-GPC, and that this reaction occurs also in pct1 knockout strains, where de novo synthesis of PC by the CDP-choline pathway is blocked. This suggests that GPCAT can provide an alternative pathway for PC biosynthesis in vivo.
AB - Turnover of phospholipids in the yeast Saccharomyces cerevisiae generates intracellular glycerophosphocholine (GPC). Here we show that GPC can be reacylated in an acyl-CoA-dependent reaction by yeast microsomal membranes. The lysophosphatidylcholine that is formed in this reaction is efficiently further acylated to phosphatidylcholine (PC) by yeast microsomes, thus providing a new pathway for PC biosynthesis that can either recycle endogenously generated GPC or utilize externally provided GPC. Genetic and biochemical evidence suggests that this new enzymatic activity, which we call GPC acyltransferase (GPCAT), is not mediated by any of the previously known acyltransferases in yeast. The GPCAT activity has an apparent V-max of 8.7 nmol/min/mg protein and an apparent K-m of 2.5 mM. It has a neutral pH optimum, similar to yeast glycerol-3-phosphate acyltransferase, but differs from the latter in being more heat stable. The GPCAT activity is sensitive to N-ethylmaleimide, phenanthroline, and Zn2+ ions. In vivo experiments showed that PC is efficiently labeled when yeast cells are fed with [H-3]choline-GPC, and that this reaction occurs also in pct1 knockout strains, where de novo synthesis of PC by the CDP-choline pathway is blocked. This suggests that GPCAT can provide an alternative pathway for PC biosynthesis in vivo.
KW - glycerophosphocholine acyltransferase
KW - membrane
KW - recycling
KW - remodeling
KW - fatty acid
KW - phospholipid
KW - phosphatidylethanolamine
KW - lysophosphatidylcholine
KW - glycerophosphoethanolamine
KW - Saccharomyces cerevisiae
KW - glycerophosphocholine acyltransferase
KW - membrane
KW - recycling
KW - remodeling
KW - fatty acid
KW - phospholipid
KW - phosphatidylethanolamine
KW - lysophosphatidylcholine
KW - glycerophosphoethanolamine
KW - Saccharomyces cerevisiae
UR - https://res.slu.se/id/publ/18562
UR - http://www.jlr.org/cgi/reprint/49/8/1794.pdf
U2 - 10.1194/jlr.M800129-JLR200
DO - 10.1194/jlr.M800129-JLR200
M3 - Journal article
C2 - 18430972
SN - 0022-2275
VL - 49
SP - 1794
EP - 1806
JO - Journal of Lipid Research
JF - Journal of Lipid Research
IS - 8
ER -