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Protein Phosphorylation in Amyloplasts Regulates Starch Branching Enzyme Activity and Protein–Protein Interactions

机译:淀粉体中的蛋白质磷酸化调节淀粉分支酶活性和蛋白质与蛋白质的相互作用

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摘要

Protein phosphorylation in amyloplasts and chloroplasts of Triticum aestivum (wheat) was investigated after the incubation of intact plastids with γ-32P-ATP. Among the soluble phosphoproteins detected in plastids, three forms of starch branching enzyme (SBE) were phosphorylated in amyloplasts (SBEI, SBEIIa, and SBEIIb), and both forms of SBE in chloroplasts (SBEI and SBEIIa) were shown to be phosphorylated after sequencing of the immunoprecipitated 32P-labeled phosphoproteins using quadrupole-orthogonal acceleration time of flight mass spectrometry. Phosphoamino acid analysis of the phosphorylated SBE forms indicated that the proteins are all phosphorylated on Ser residues. Analysis of starch granule–associated phosphoproteins after incubation of intact amyloplasts with γ-32P-ATP indicated that the granule-associated forms of SBEII and two granule-associated forms of starch synthase (SS) are phosphorylated, including SSIIa. Measurement of SBE activity in amyloplasts and chloroplasts showed that phosphorylation activated SBEIIa (and SBEIIb in amyloplasts), whereas dephosphorylation using alkaline phosphatase reduced the catalytic activity of both enzymes. Phosphorylation and dephosphorylation had no effect on the measurable activity of SBEI in amyloplasts and chloroplasts, and the activities of both granule-bound forms of SBEII in amyloplasts were unaffected by dephosphorylation. Immunoprecipitation experiments using peptide-specific anti-SBE antibodies showed that SBEIIb and starch phosphorylase each coimmunoprecipitated with SBEI in a phosphorylation-dependent manner, suggesting that these enzymes may form protein complexes within the amyloplast in vivo. Conversely, dephosphorylation of immunoprecipitated protein complex led to its disassembly. This article reports direct evidence that enzymes of starch metabolism (amylopectin synthesis) are regulated by protein phosphorylation and indicate a wider role for protein phosphorylation and protein–protein interactions in the control of starch anabolism and catabolism.
机译:将完整的质体与γ- 32 P-ATP孵育后,研究了普通小麦(小麦)的淀粉体和叶绿体中的蛋白质磷酸化。在质体中检测到的可溶性磷蛋白中,淀粉质支化酶(SBEI,SBEIIa和SBEIIb)中的三种形式的淀粉分支酶(SBE)被磷酸化,叶绿体中的两种形式的SBE(SBEI和SBEIIa)均被磷酸化。四极杆正交加速飞行时间质谱分析免疫沉淀的 32 P标记的磷蛋白。磷酸化SBE形式的磷酸氨基酸分析表明,蛋白质都在Ser残基上被磷酸化。完整的淀粉质细胞与γ- 32 P-ATP孵育后,淀粉颗粒相关的磷酸化蛋白的分析表明,颗粒相关形式的SBEII和两种颗粒相关形式的淀粉合酶(SS)被磷酸化了,包括SSIIa。测量淀粉状体和叶绿体中的SBE活性表明,磷酸化激活了SBEIIa(和淀粉状体中的SBEIIb),而使用碱性磷酸酶的去磷酸化作用降低了这两种酶的催化活性。磷酸化和去磷酸化对淀粉状体和叶绿体中SBEI的可测量活性没有影响,并且在淀粉状体中颗粒结合形式的SBEII的活性不受去磷酸化的影响。使用肽特异性抗SBE抗体进行的免疫沉淀实验表明,SBEIIb和淀粉磷酸化酶分别与SBEI一起以磷酸化依赖性方式进行免疫沉淀,这表明这些酶可能在体内的淀粉体中形成蛋白质复合物。相反,免疫沉淀蛋白复合物的去磷酸化导致其分解。本文报道的直接证据表明,淀粉代谢酶(支链淀粉的合成)受蛋白质磷酸化的调节,并表明蛋白质磷酸化和蛋白质-蛋白质相互作用在控制淀粉合成代谢和分解代谢中的作用更为广泛。

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