INVIVO REGULATORY PHOSPHORYLATION SITE IN C4-LEAF PHOSPHOENOLPYRUVATE CARBOXYLASE FROM MAIZE AND SORGHUM

被引:63
作者
JIAO, JA
VIDAL, J
ECHEVARRIA, C
CHOLLET, R
机构
[1] UNIV NEBRASKA,DEPT BIOCHEM,E CAMPUS,LINCOLN,NE 68583
[2] UNIV PARIS 11,CTR ORSAY,PHYSIOL VEGETALE MOLEC LAB,CNRS,URA 1128,F-91405 ORSAY,FRANCE
[3] UNIV SEVILLA,FAC BIOL,FISIOL VEGETAL LAB,E-41012 SEVILLE,SPAIN
关键词
D O I
10.1104/pp.96.1.297
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Reversible seryl-phosphorylation contributes to the light/dark regulation of C4-leaf phosphoenolpyruvate carboxylase (PEPC) activity in vivo. The specific regulatory residue that, upon in vitro phosphorylation by a maize-leaf protein-serine kinase(s), leads to an increase in catalytic activity and a decrease in malate-sensitivity of the target enzyme has been recently identified as Ser-15 in P-32-phosphorylated/activated dark-form maize PEPC (J-A Jiao, R Chollet [1990] Arch Biochem Biophys 283: 300-305). In order to ascertain whether this N-terminal seryl residue is, indeed, the in vivo regulatory phosphorylation site, [P-32]phosphopeptides were isolated and purified from in vivo P-32-labeled maize and sorghum leaf PEPC and subjected to automated Edman degradation analysis. The results show that purified light-form maize PEPC contains 14-fold more P-32-radioactivity than the corresponding dark-form enzyme on an equal protein basis and, more notably, only a single N-terminal serine residue (Ser-15 in maize PEPC and its structural homolog, Ser-8, in the sorghum enzyme) was found to be P-32-phosphorylated in the light or dark. These in vivo observations, combined with the results from our previous in vitro phosphorylation studies (J-A Jiao, R Chollet [1989] Arch Biochem Biophys 269: 526-535; [1990] Arch Biochem Biophys 283: 300-305), demonstrate that an N-terminal seryl residue in C4 PEPC is, indeed, the regulatory site that undergoes light/dark changes in phosphorylation-status and, thus, plays a major, if not cardinal role in the light-induced changes in catalytic and regulatory properties of this cytoplasmic C4-photosynthesis enzyme in vivo.
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页码:297 / 301
页数:5
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