Institute of Food Science, CNR, Via Roma, 64, 83100 Avellino, Italy.
Protein Eng Des Sel. 2010 Feb;23(2):103-13. doi: 10.1093/protein/gzp076. Epub 2009 Dec 11.
We describe the prediction of the structural and functional effects of mutations on the enzyme galactose-1-phosphate uridyltransferase related to the genetic disease galactosemia, using a fully computational approach. One hundred and seven single-point mutants were simulated starting from the structural model of the enzyme obtained by homology modeling methods. Several bioinformatics programs were then applied to each resulting mutant protein to analyze the effect of the mutations. The mutations have a direct effect on the active site, or on the dimer assembly and stability, or on the monomer stability. We describe how mutations may exert their effect at a molecular level by altering H-bonds, salt bridges, secondary structure or surface features. The alteration of protein stability, at level of monomer and/or dimer, is the main effect observed. We found an agreement between our results and the functional experimental data available in literature for some mutants. The data and analyses for all the mutants are fully available in the web-accessible database hosted at http://bioinformatica.isa.cnr.it/GALT.
我们描述了使用全计算方法预测与遗传疾病半乳糖血症相关的酶半乳糖-1-磷酸尿苷酰转移酶的突变对结构和功能的影响。从通过同源建模方法获得的酶结构模型开始,模拟了 107 个单点突变体。然后将几个生物信息学程序应用于每个产生的突变体蛋白,以分析突变的影响。突变直接影响活性位点,或二聚体组装和稳定性,或单体稳定性。我们描述了突变如何通过改变氢键、盐桥、二级结构或表面特征在分子水平上发挥作用。单体和/或二聚体水平的蛋白质稳定性的改变是观察到的主要影响。我们发现我们的结果与文献中可用的一些突变体的功能实验数据之间存在一致性。所有突变体的数据和分析都可在 http://bioinformatica.isa.cnr.it/GALT 提供的网络访问数据库中获得。