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首页> 外文期刊>Biochemistry >Protein engineering of the HMG-CoA reductase of Pseudomonas mevalonii. Construction of mutant enzymes whose activity is regulated by phosphorylation and dephosphorylation.
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Protein engineering of the HMG-CoA reductase of Pseudomonas mevalonii. Construction of mutant enzymes whose activity is regulated by phosphorylation and dephosphorylation.

机译:mevalonii假单胞菌HMG-CoA还原酶的蛋白质工程。突变酶的构建,其活性受磷酸化和去磷酸化作用调节。

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摘要

The activity of Pseudomonas mevalonii HMG-CoA reductase (EC 1.1.1.88) is not regulated by phosphorylation, presumably due to the absence of a suitable target serine and protein kinase recognition motif. We have engineered P. mevalonii HMG-CoA reductase to a form whose activity, like that of mammalian HMG-CoA reductases, is regulated by phosphorylation/dephosphorylation. We substituted serine for arginine 387, the residue that corresponds to the regulatory serine of the HMG-CoA reductases of higher eukaryotes. A recognition motif for cAMP-dependent protein kinase was added by replacing leucine 384 by histidine (enzyme L384H/R387S) and also valine 391 by leucine (enzyme L384H/R387S/V391L). The activity of P. mevalonii HMG-CoA reductase mutant enzymes L384H/R387S and L384H/R387S/V391L was attenuated by phosphorylation. Restoration of activity accompanied subsequent dephosphorylation catalyzed by lambda protein phosphatase. Incorporation and subsequent release of phosphate paralleled the attenuation and restoration of catalytic activity. Incorporation of 0.5 mol of phosphate per subunit was accompanied by an approximately 50% decrease in initial activity. As in the analogous Syrian hamster mutant enzyme S871D, P. mevalonii mutant enzyme R387D exhibited 10% wild-type activity, suggesting that the attenuation of activity that accompanies phosphorylation results at least in part from the introduction of negative charge. Engineering of P. mevalonii HMG-CoA reductase to forms whose activity is reversibly regulated by phosphorylation/dephosphorylation provides an attractive model for future structure-based mechanistic studies. Solution of the X-ray structure of phosphorylated and dephosphorylated forms of engineered P. mevalonii HMG-CoA reductase should then reveal interactions of the active site phosphoseryl residue that result in attenuation of catalytic activity.
机译:甲型假单胞菌HMG-CoA还原酶(EC 1.1.1.88)的活性不受磷酸化的调节,大概是由于缺少合适的靶丝氨酸和蛋白激酶识别基序。我们已经设计了一种将戊酸丙酸杆菌HMG-CoA还原酶工程化为某种形式的活性,就像哺乳动物HMG-CoA还原酶一样,其活性受磷酸化/去磷酸化作用的调节。我们用精氨酸387取代了丝氨酸,精氨酸387对应于高级真核生物HMG-CoA还原酶的调节丝氨酸。通过用组氨酸(酶L384H / R387S)代替亮氨酸384,并通过亮氨酸(酶L384H / R387S / V391L)代替缬氨酸391,添加了cAMP依赖性蛋白激酶的识别基序。通过磷酸化作用减弱了美瓦氏假单胞菌HMG-CoA还原酶突变酶L384H / R387S和L384H / R387S / V391L的活性。活性的恢复伴随着随后的λ蛋白磷酸酶催化的去磷酸化。磷酸盐的引入和随后的释放与催化活性的减弱和恢复平行。每个亚基掺入0.5摩尔磷酸盐会导致初始活性降低约50%。如同在类似的叙利亚仓鼠突变酶S871D中一样,mevalonii疟原虫突变酶R387D表现出10%的野生型活性,这表明伴随磷酸化的活性减弱至少部分是由于引入负电荷引起的。将甲羟戊酸单胞菌HMG-CoA还原酶改造成其活性受磷酸化/去磷酸化可逆调节的形式,为将来基于结构的机理研究提供了有吸引力的模型。改造后的工程化戊二酸单胞菌HMG-CoA还原酶的磷酸化和去磷酸化形式的X射线结构溶液应随后揭示活性位点磷酸丝氨酰残基的相互作用,从而导致催化活性减弱。

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