Consiglio Nazionale delle ricerche (CNR)-IOM c/o International School for Advanced Studies (SISSA/ISAS), Trieste, Italy.
Protein Sci. 2024 Apr;33(4):e4939. doi: 10.1002/pro.4939.
Rho-GTPases proteins function as molecular switches alternating from an active to an inactive state upon Guanosine triphosphate (GTP) binding and hydrolysis to Guanosine diphosphate (GDP). Among them, Rac subfamily regulates cell dynamics, being overexpressed in distinct cancer types. Notably, these proteins are object of frequent cancer-associated mutations at Pro29 (P29S, P29L, and P29Q). To assess the impact of these mutations on Rac1 structure and function, we performed extensive all-atom molecular dynamics simulations on wild-type (wt) and oncogenic isoforms of this protein in GDP- and GTP-bound states. Our results unprecedentedly elucidate that P29Q/S-induced structural and dynamical perturbations of Rac1 core domain weaken the binding of the catalytic site Mg ion, and reduce the GDP residence time within protein, enhancing the GDP/GTP exchange rate and Rac1 activity. This broadens our knowledge of the role of cancer-associated mutations on small GTPases mechanism supplying valuable information for future drug discovery efforts targeting specific Rac1 isoforms.
Rho-GTPases 蛋白作为分子开关,在结合和水解鸟苷三磷酸 (GTP) 时,从活性状态转变为非活性状态。其中,Rac 亚家族调节细胞动态,在不同类型的癌症中过度表达。值得注意的是,这些蛋白是频繁发生在脯氨酸 29 位(P29S、P29L 和 P29Q)的癌症相关突变的对象。为了评估这些突变对 Rac1 结构和功能的影响,我们对 GDP 和 GTP 结合状态下该蛋白的野生型 (wt) 和致癌异构体进行了广泛的全原子分子动力学模拟。我们的结果前所未有地阐明了 P29Q/S 诱导的 Rac1 核心结构域的结构和动力学扰动,削弱了催化位点 Mg 离子的结合,并减少了蛋白内 GDP 的停留时间,从而提高了 GDP/GTP 交换率和 Rac1 活性。这拓宽了我们对癌症相关突变对小 GTPases 机制的作用的认识,为针对特定 Rac1 异构体的未来药物发现提供了有价值的信息。