Molecular dynamics simulations suggest Thiosemicarbazones can bind p53 cancer mutant R175H

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-05-01 DOI:10.1016/j.bbapap.2023.140903
Tanushree Das, Chaitali Mukhopadhyay
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Abstract

Cancer pathologies are associated with the unfolding and aggregation of most recurring mutations in the DNA Binding Domain (DBD) of p53 that coordinate the destabilization of protein. Substitution at the 175th codon with arginine to histidine (R175H, a mutation of large to small side-chain amino acid) destabilizes the DBD by 3 kcal/mol and triggers breasts, lung cancer, etc. Stabilizing the p53 mutant by small molecules offers an attractive drug-targeted anti-cancer therapy. The thiosemicarbazone (TSC) molecules NPC and DPT are known to act as zinc-metallochaperones to reactivate p53R175H. Here, a combination of LESMD simulations for 10 TSC conformations with a p53R175H receptor, single ligand-protein conformation MD, and ensemble docking with multiple p53R175H conformations observed during simulations is suggested to identify the potential binding site of the target protein in light of their importance for the direct TSC – p53R175H binding. NPC binds mutant R175H in the loop region L2-L3, forming pivotal hydrogen bonds with HIS175, pi‑sulfur bonds with TYR163, and pi-alkyl linkages with ARG174 and PRO190, all of which are contiguous to the zinc-binding native site on p53DBD. DPT, on the other hand, was primarily targeting alternative binding sites such as the loop-helix L1/H2 region and the S8 strand. The similar structural characteristics of TSC-bound p53R175H complexes with wild-type p53DBD are thought to be attributable to involved interactions that favour binding free energy contributions of TSC ligands. Our findings may be useful in the identification of novel pockets with druggable properties.

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分子动力学模拟表明,硫代氨基脲可以结合p53癌症突变体R175H
癌症病理与p53的DNA结合结构域(DBD)中大多数重复突变的展开和聚集有关,这些突变协调了蛋白质的不稳定。在第175个密码子处用精氨酸取代组氨酸(R175H,一种大到小的侧链氨基酸突变)使DBD不稳定3 kcal/mol,并引发乳腺癌、肺癌等。通过小分子稳定p53突变提供了一种有吸引力的药物靶向抗癌疗法。已知氨基硫脲(TSC)分子NPC和DPT作为锌金属伴侣激活p53R175H。在此,建议将LESMD模拟与p53R175H受体的10个TSC构象、单配体蛋白构象MD以及在模拟过程中观察到的与多个p53R175H构象的整体对接相结合,以确定靶蛋白的潜在结合位点,因为它们对直接TSC–p53R175H结合的重要性。NPC与环区L2-L3中的突变体R175H结合,与HIS175形成关键氢键,与TYR163形成π硫键,与ARG174和PRO190形成π烷基键,所有这些都与p53DBD上的锌结合天然位点相邻。另一方面,DPT主要靶向替代结合位点,如环螺旋L1/H2区和S8链。TSC结合的p53R175H复合物与野生型p53DBD的相似结构特征被认为可归因于有利于TSC配体结合自由能贡献的相关相互作用。我们的发现可能有助于鉴定具有药物性质的新型口袋。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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