首页> 外文期刊>Journal of Protein Chemistry >Molecular modeling of the complexes between Saccharomyces cerevisiae phosphoenolpyruvate carboxykinase and the ATP analogs pyridoxal 5'-diphosphoadenosine and pyridoxal 5'-triphosphoadenosine. Specific labeling of lysine 290.
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Molecular modeling of the complexes between Saccharomyces cerevisiae phosphoenolpyruvate carboxykinase and the ATP analogs pyridoxal 5'-diphosphoadenosine and pyridoxal 5'-triphosphoadenosine. Specific labeling of lysine 290.

机译:酿酒酵母磷酸烯醇丙酮酸羧化激酶与ATP类似物吡ido醛5'-二磷酸腺苷和吡ido醛5'-三磷酸腺苷之间的复合物的分子模型。赖氨酸290的特殊标签。

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摘要

Molecular mechanics calculations have been employed to obtain models of the complexes between Saccharomyces cerevisiae phosphoenolpyruvate (PEP) kinase and the ATP analogs pyridoxal 5'-diphosphoadenosine (PLP-AMP) and pyridoxal 5'-triphosphoadenosine (PLP-ADP), using the crystalline coordinates of the ATP-pyruvate-Mn(2+)-Mg(2+) complex of Escherichia coli PEP carboxykinase [Tari et al. (1997), Nature Struct. Biol. 4, 990-994]. In these models, the preferred conformation of the pyridoxyl moiety of PLP-ADP and PLP-AMP was established through rotational barrier and simulated annealing procedures. Distances from the carbonyl-C of each analog to epsilon-N of active-site lysyl residues were calculated for the most stable enzyme-analog complex conformation, and it was found that the closest epsilon-N is that from Lys(290), thus predicting Schiff base formation between the corresponding carbonyl and amino groups. This prediction was experimentally verified through chemical modification of S. cerevisiae PEP carboxykinase with PLP-ADP and PLP-AMP. The results here described demonstrate the use of molecular modeling procedures when planning chemical modification of enzyme-active sites.
机译:使用分子力学计算,使用结晶坐标获得啤酒酵母磷酸烯醇式丙酮酸(PEP)激酶与ATP类似物吡ido醛5'-二磷酸腺苷(PLP-AMP)和吡x醛5'-三磷酸腺苷(PLP-ADP)之间的复合物模型。 PEP羧激酶的ATP-丙酮酸-Mn(2 +)-Mg(2+)复合物的合成[Tari et al。 (1997),Nature Struct。生物学4,990-994]。在这些模型中,通过旋转势垒和模拟退火程序确定了PLP-ADP和PLP-AMP的吡啶氧基部分的优选构象。计算了每个类似物的羰基-C到活性位点赖氨酰残基的ε-N的距离,以获得最稳定的酶-类似物复合物构象,发现最接近的ε-N与Lys相似(290)。预测相应的羰基和氨基之间的席夫碱形成。通过使用PLP-ADP和PLP-AMP对啤酒酵母PEP羧激酶进行化学修饰,通过实验验证了这一预测。此处描述的结果证明了在规划酶活性位点的化学修饰时分子建模程序的使用。

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