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Structural Basis and Mechanism for Vindoline Dimers Interacting with α,β-Tubulin

机译:Vindoline二聚体与α,β-管蛋白相互作用的结构基础和机理

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Vinblastine and its derivatives used in clinics as antitumor drugs often cause drug resistance and some serious side effects; thus, it is necessary to study new vinblastine analogues with strong anticancer cytotoxicity and low toxicity. We designed a dimer molecule using two vindoline-bonded dimer vindoline (DVB) and studied its interaction with α,β-tubulin through the double-sided adhesive mechanism to explore its anticancer cytotoxicity. In our work, DVB was docked into the interface between α-tubulin and β-tubulin to construct a complex protein structure, and then it was simulated for 100 ns using the molecular dynamics technology to become a stable and refined complex protein structure. Based on such a refined structure, the quantum chemistry at the level of the MP2/6-31G(d,p) method was used to calculate the binding energies for DVB interacting with respective residues. By the obtained binding energies, the active site residues for interaction with DVB were found. Up to 20 active sites of residues within α,β-tubulin interacting with DVB are labeled in β-Asp179, β-Glu207, β-Tyr210, β-Asp211, β-Phe214, β-Pro222, β-Tyr224, and β-Leu227 and α-Asn249, α-Arg308, α-Lys326, α-Asn329, α-Ala333, α-Thr334, α-Lys336, α-Lys338, α-Arg339, α-Ser340, α-Thr349, and α-Phe351. The total binding energy between DVB and α,β-tubulin is about ?251.0 kJ·mol–1. The sampling average force potential (PMF) method was further used to study the dissociation free energy (ΔG) along the separation trajectory of α,β-tubulin under the presence of DVB based on the refined structure of DVB with α,β-tubulin. Because of the presence of DVB within the interface between α- and β-tubulin, ΔG is 252.3 kJ·mol–1. In contrast to the absence of DVB, the separation of pure β-tubulin needs a free energy of 196.9 kJ·mol–1. The data show that the presence of DVB adds more 55.4 kJ·mol–1 of ΔG to hinder the normal separation of α,β-tubulin. Compared to vinblastine existing, the free energy required for the separation of α,β-tubulin is 220.5 kJ·mol–1. Vinblastine and DVB can both be considered through the same double-sided adhesive mechanism to give anticancer cytotoxicity. Because of the presence of DVB, a larger free energy is needed for the separation of α,β-tubulin, which suggests that DVB should have stronger anticancer cytotoxicity than vinblastine and shows that DVB has a broad application prospect.
机译:长春碱及其衍生物在临床上用作抗肿瘤药经常引起耐药性和一些严重的副作用。因此,有必要研究具有强抗癌细胞毒性和低毒性的新型长春碱类似物。我们使用两个长春花碱键合的二聚物长春花碱(DVB)设计了一个二聚物分子,并通过双面粘合机理研究了其与α,β-微管蛋白的相互作用,以探索其抗癌细胞毒性。在我们的工作中,DVB停靠在α-微管蛋白和β-微管蛋白之间的界面中,以构建复杂的蛋白质结构,然后使用分子动力学技术对其进行了100 ns的模拟,以使其成为稳定且精炼的复杂蛋白质结构。基于这种改进的结构,使用MP2 / 6-31G(d,p)方法级别的量子化学来计算DVB与各个残基相互作用的结合能。通过获得的结合能,发现了与DVB相互作用的活性位点残基。 β-Asp179,β-Glu207,β-Tyr210,β-Asp211,β-Phe214,β-Pro222,β-Tyr224和β- Leu227和α-Asn249,α-Arg308,α-Lys326,α-Asn329,α-Ala333,α-Thr334,α-Lys336,α-Lys338,α-Arg339,α-Ser340,α-Thr349和α-Phe351 。 DVB与α,β-微管蛋白之间的总结合能约为251.0 kJ·mol-1。基于DVB与α,β-微管蛋白的精制结构,进一步采用采样平均力势(PMF)方法研究了在存在DVB的情况下沿α,β-微管蛋白的分离轨迹的解离自由能(ΔG)。由于在α-微管蛋白和β-微管蛋白之间的界面中存在DVB,因此ΔG为252.3 kJ·mol-1。与没有DVB相比,纯β-微管蛋白的分离需要196.9 kJ·mol–1的自由能。数据显示,DVB的存在会增加55.4 kJ·mol-1的ΔG,从而阻碍α,β-微管蛋白的正常分离。与长春碱相比,分离α,β-微管蛋白所需的自由能为220.5 kJ·mol–1。长春碱和DVB都可以通过相同的双面粘合机制来考虑,以赋予抗癌细胞毒性。由于DVB的存在,分离α,β-微管蛋白需要较大的自由能,这表明DVB应比长春花碱具有更强的抗癌细胞毒性,并表明DVB具有广阔的应用前景。

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