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首页> 外文期刊>Biophysical Journal >Characterization of a catalytic ligand bridging metal ions in phosphodiesterases 4 and 5 by molecular dynamics simulations and hybrid quantum mechanical/molecular mechanical calculations.
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Characterization of a catalytic ligand bridging metal ions in phosphodiesterases 4 and 5 by molecular dynamics simulations and hybrid quantum mechanical/molecular mechanical calculations.

机译:通过分子动力学模拟和混合量子力学/分子力学计算表征桥接磷酸二酯酶4和5中的金属离子的催化配体。

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摘要

Cyclic nucleotide phosphodiesterases (PDEs) constitute a large superfamily of enzymes regulating concentrations of intracellular second messengers cAMP and cGMP through PDE-catalyzed hydrolysis. Although three-dimensional x-ray crystal structures of PDE4 and PDE5 have been reported, it is uncertain whether a critical, second bridging ligand (BL2) in the active site is H2O or HO- because hydrogen atoms cannot be determined by x-ray diffraction. The identity of BL2 is theoretically determined by performing molecular dynamics simulations and hybrid quantum mechanical/molecular mechanical (QM/MM) calculations, for the first time, on the protein structures resolved by x-ray diffraction. The computational results confirm our previous suggestion, which was based on QM calculations on a simplified active site model, that BL2 in PDE4 should be HO-, rather than H2O, serving as the nucleophile to initialize the catalytic hydrolysis of cAMP. The molecular dynamics simulations and QM/MM calculations on PDE5 demonstrate for the first time that the BL2 in PDE5 should also be HO- rather than H2O as proposed in recently published reports on the x-ray crystal structures, which serves as the nucleophile to initialize the PDE5-catalyzed hydrolysis of cGMP. These fundamental structural insights provide a rational basis for future structure-based drug design targeting PDEs.
机译:环核苷酸磷酸二酯酶(PDE)构成了一个大的酶超家族,通过PDE催化的水解作用调节细胞内第二信使cAMP和cGMP的浓度。尽管已报道了PDE4和PDE5的三维X射线晶体结构,但尚不确定活性位点中的关键第二桥键配体(BL2)是H2O还是HO-,因为氢原子无法通过X射线衍射确定。 BL2的身份理论上是通过对通过X射线衍射解析的蛋白质结构进行分子动力学模拟和混合量子力学/分子力学(QM / MM)计算而首次确定的。计算结果证实了我们先前的建议,该建议基于简化活动位点模型上的QM计算,即PDE4中的BL2应该是HO-而不是H2O,用作亲核试剂以初始化cAMP的催化水解。 PDE5上的分子动力学模拟和QM / MM计算首次证明,PDE5中的BL2也应为HO-而不是H2O,如最近发表的有关X射线晶体结构的报告中所建议的那样,它可以作为亲核试剂进行初始化PDE5催化的cGMP水解。这些基本的结构见解为将来针对PDE的基于结构的药物设计提供了合理的基础。

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