Dong L Y, Masuda T, Kawamura T, Hata S, Izui K
Laboratory of Plant Physiology, Graduate School of Agriculture, Kyoto University, Japan.
Plant Cell Physiol. 1998 Aug;39(8):865-73. doi: 10.1093/oxfordjournals.pcp.a029446.
A full-length cDNA for maize root-form phosphoenolpyruvate carboxylase (PEPC) was isolated. In the coding region, the root-form PEPC showed 76 and 77% identity with the C4- and C3-form PEPCs of maize, respectively, at the nucleotide level. At the amino acid level, the root-form was 81 and 85% identical to the C4- and C3-form PEPCs, respectively. The entire coding region was inserted into a pET32a expression vector so that it was expressed under the control of T7 promoter. The purified recombinant root-form PEPC had a Vmax value of about 28 mumol min-1 (mg protein)-1 at pH 8.0. The K(m) values of root-form PEPC for PEP and Mg2+ were one-tenth or less of those of C4-form PEPC when assayed at either pH 7.3 or 8.0, while the value for HCO3- was about one-half of that of C4-form PEPC at pH 8.0. Glucose 6-phosphate and glycine had little effect on the root-form PEPC at pH 7.3; they caused two-fold activation of the C4-form PEPC. The Ki (L-malate) values at pH 7.3 were 0.12 and 0.43 mM for the root- and C4-form PEPCs, respectively. Comparison of hydropathy profiles among the maize PEPC isoforms suggested that several stretches of amino acid sequences may contribute in some way to their characteristic kinetic properties. The root-form PEPC was phosphorylated by both mammalian cAMP-dependent protein kinase and maize leaf protein kinase, and the phosphorylated enzyme was less sensitive to L-malate.
分离得到了玉米根型磷酸烯醇式丙酮酸羧化酶(PEPC)的全长cDNA。在编码区,根型PEPC在核苷酸水平上与玉米C4型和C3型PEPC的同一性分别为76%和77%。在氨基酸水平上,根型与C4型和C3型PEPC的同一性分别为81%和85%。将整个编码区插入到pET32a表达载体中,使其在T7启动子的控制下表达。纯化后的重组根型PEPC在pH 8.0时的Vmax值约为28 μmol min-1(mg蛋白)-1。在pH 7.3或8.0测定时,根型PEPC对PEP和Mg2+的K(m)值是C4型PEPC的十分之一或更小,而在pH 8.0时,HCO3-的K(m)值约为C4型PEPC的一半。在pH 7.3时,6-磷酸葡萄糖和甘氨酸对根型PEPC影响很小;它们使C4型PEPC激活两倍。在pH 7.3时,根型和C4型PEPC的Ki(L-苹果酸)值分别为0.12和0.43 mM。玉米PEPC同工型之间的亲水性图谱比较表明,几段氨基酸序列可能以某种方式对其特征性动力学性质有贡献。根型PEPC可被哺乳动物cAMP依赖性蛋白激酶和玉米叶片蛋白激酶磷酸化,磷酸化后的酶对L-苹果酸的敏感性降低。