Vottero Paola, Wang Qian, Michalak Marek, Aminpour Maral, Tuszynski Jack Adam
Department of Biomedical Engineering, University of Alberta, Edmonton, AB T6G 2V2, Canada.
Department of Biochemistry, University of Alberta, Edmonton, AB T6G 2H7, Canada.
Cancers (Basel). 2023 Mar 10;15(6):1714. doi: 10.3390/cancers15061714.
Given its critical role in cell mitosis, the tubulin γ chain represents a viable chemotherapeutic target to solve the specificity issues associated with targeting α and β tubulin. Since γ tubulin is overexpressed in glioblastoma multiforme (GBM) and some breast lesions, the glaziovianin A derivative gatastatin, presented as a γ-tubulin-specific inhibitor, could yield a successful therapeutic strategy. The present work aims to identify the binding sites and modes of gatastatin and its derivatives through molecular-docking simulations. Computational binding free energy predictions were compared to experimental microscale thermophoresis assay results. The computational simulations did not reveal a strong preference toward γ tubulin, suggesting that further derivatization may be needed to increase its specificity.
鉴于微管蛋白γ链在细胞有丝分裂中的关键作用,它是解决与靶向α和β微管蛋白相关的特异性问题的一个可行的化疗靶点。由于γ微管蛋白在多形性胶质母细胞瘤(GBM)和一些乳腺病变中过度表达,作为一种γ微管蛋白特异性抑制剂的格氏乳杆菌素A衍生物加他汀,可能会产生一种成功的治疗策略。目前的工作旨在通过分子对接模拟确定加他汀及其衍生物的结合位点和模式。将计算得到的结合自由能预测结果与实验性微尺度热泳分析结果进行了比较。计算模拟未显示出对γ微管蛋白有强烈偏好,这表明可能需要进一步衍生化以提高其特异性。