首页> 美国卫生研究院文献>Plant Physiology >A Conserved 19-Amino Acid Synthetic Peptide from the Carboxy Terminus of Phosphoenolpyruvate Carboxylase Inhibits the in Vitro Phosphorylation of the Enzyme by the Calcium-Independent Phosphoenolpyruvate Carboxylase Kinase
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A Conserved 19-Amino Acid Synthetic Peptide from the Carboxy Terminus of Phosphoenolpyruvate Carboxylase Inhibits the in Vitro Phosphorylation of the Enzyme by the Calcium-Independent Phosphoenolpyruvate Carboxylase Kinase

机译:来自磷酸烯醇丙酮酸羧化酶羧基末端的保守的19个氨基酸合成肽抑制钙独立性磷酸烯醇丙酮酸羧化酶激酶的酶的体外磷酸化。

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摘要

Higher plant phosphoenolpyruvate carboxylase (PEPC) is subject to in vivo phosphorylation of a regulatory serine located in the N-terminal domain of the protein. Studies using synthetic peptide substrates and mutated phosphorylation domain photosynthetic PEPC (C4 PEPC) suggested that the interaction of phosphoenolpyruvate carboxylase kinase (PEPCk) with its target was not restricted to this domain. However, no further information was available as to where PEPCk-C4 PEPC interactions take place. In this work, we have studied the possible interaction of the conserved 19-amino acid C-terminal sequence of sorghum (Sorghum vulgare Pers cv Tamaran) C4 PEPC with PEPCk. In reconstituted assays, a C-terminal synthetic peptide containing this sequence (peptide C19) was found to inhibit the phosphorylation reaction by the partially purified Ca2+-independent PEPCk (50% inhibition of initial activity = 230 μm). This effect was highly specific because peptide C19 did not alter C4 PEPC phosphorylation by either a partially purified sorghum leaf Ca2+-dependent protein kinase or the catalytic subunit of mammalian protein kinase A. In addition, the Ca2+-independent PEPCk was partially but significantly retained in affinity chromatography using a peptide C19 agarose column. Because peptide C15 (peptide C19 lacking the last four amino acids, QNTG) also inhibited C4 PEPC phosphorylation, it was concluded that the amino acid sequence downstream from the QNTG motif was responsible for the inhibitory effect. Specific antibodies raised against peptide C19 revealed that native C4 PEPC could be in two different conformational states. The results are discussed in relation with the reported crystal structure of the bacterial (Escherichia coli) and plant (maize [Zea mays]) enzymes.
机译:高等植物磷酸烯醇丙酮酸羧化酶(PEPC)在体内被磷酸化位于蛋白质N末端结构域的调节丝氨酸。使用合成肽底物和突变的磷酸化域光合作用PEPC(C4 PEPC)进行的研究表明,磷酸烯醇丙酮酸羧化酶激酶(PEPCk)与其靶标的相互作用不限于该域。但是,没有关于PEPCk-C4 PEPC相互作用发生位置的进一步信息。在这项工作中,我们研究了高粱(Sorghum vulgare Pers cv Tamaran)C4 PEPC与PEPCk保守的19个氨基酸的C末端序列的可能相互作用。在重组测定中,发现含有该序列的C端合成肽(肽C19)通过部分纯化的Ca 2 + 独立的PEPCk抑制磷酸化反应(50%的初始活性抑制= 230)微米)。此效果具有高度特异性,因为肽C19不会通过部分纯化的高粱叶Ca 2 + 依赖性蛋白激酶或哺乳动物蛋白激酶A的催化亚基来改变C4 PEPC磷酸化。 2 + 无关的PEPCk在使用肽C19琼脂糖柱进行的亲和层析中被部分保留,但明显保留。因为肽C15(缺少最后四个氨基酸的肽C19,QNTG)也抑制了C4 PEPC磷酸化,所以可以得出结论,QNTG基序下游的氨基酸序列是造成抑制作用的原因。针对肽C19的特异性抗体揭示了天然C4 PEPC可能处于两种不同的构象状态。讨论结果与细菌(大肠杆菌)和植物(玉米[Zea mays])酶的晶体结构有关。

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