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Differentiating between models of epothilone binding to microtubules using tubulin mutagenesis, cytotoxicity, and molecular modeling.使用微管蛋白突变、细胞毒性和分子建模来区分埃坡霉素与微管的结合模式。
ChemMedChem. 2012 Sep;7(9):1580-6. doi: 10.1002/cmdc.201200286. Epub 2012 Jul 16.
2
Epothilone and paclitaxel: unexpected differences in promoting the assembly and stabilization of yeast microtubules.埃坡霉素与紫杉醇:在促进酵母微管组装与稳定方面的意外差异
Biochemistry. 2002 Mar 26;41(12):3870-4. doi: 10.1021/bi0121611.
3
Understanding tubulin-Taxol interactions: mutations that impart Taxol binding to yeast tubulin.了解微管蛋白与紫杉醇的相互作用:赋予酵母微管蛋白紫杉醇结合能力的突变。
Proc Natl Acad Sci U S A. 2003 May 27;100(11):6394-7. doi: 10.1073/pnas.1131967100. Epub 2003 May 9.
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High-resolution X-ray structure of three microtubule-stabilizing agents in complex with tubulin provide a rationale for drug design.三种微管稳定药物与微管蛋白复合物的高分辨率 X 射线结构为药物设计提供了依据。
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A common pharmacophore for epothilone and taxanes: molecular basis for drug resistance conferred by tubulin mutations in human cancer cells.埃坡霉素和紫杉烷的共同药效基团:人类癌细胞中微管蛋白突变导致耐药性的分子基础。
Proc Natl Acad Sci U S A. 2000 Mar 14;97(6):2904-9. doi: 10.1073/pnas.040546297.
6
Amino acid substitutions at proline 220 of beta-tubulin confer resistance to paclitaxel and colcemid.β-微管蛋白第220位脯氨酸处的氨基酸替换赋予对紫杉醇和秋水仙酰胺的抗性。
Mol Cancer Ther. 2007 Oct;6(10):2798-806. doi: 10.1158/1535-7163.MCT-06-0791.
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Key residues on microtubule responsible for activation of kinesin ATPase.微管上负责激活驱动蛋白 ATP 酶的关键残基。
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Structural basis for drug resistance conferred by β-tubulin mutations: a molecular modeling study on native and mutated tubulin complexes with epothilone B.β-微管蛋白突变导致耐药性的结构基础:对天然及突变微管蛋白与埃坡霉素B复合物的分子模拟研究
J Biomol Struct Dyn. 2015;33(12):2530-40. doi: 10.1080/07391102.2015.1063455. Epub 2015 Jul 17.
9
Interaction of epothilone B (patupilone) with microtubules as detected by two-dimensional solid-state NMR spectroscopy.二维固态核磁共振波谱法检测埃坡霉素B(帕土匹隆)与微管的相互作用。
Angew Chem Int Ed Engl. 2010 Oct 4;49(41):7504-7. doi: 10.1002/anie.201001946.
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Molecular recognition of epothilones by microtubules and tubulin dimers revealed by biochemical and NMR approaches.通过生化和核磁共振方法揭示的埃坡霉素与微管和微管蛋白二聚体的分子识别
ACS Chem Biol. 2014 Apr 18;9(4):1033-43. doi: 10.1021/cb400673h. Epub 2014 Feb 25.

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Checkpoint Proteins Bub1 and Bub3 Delay Anaphase Onset in Response to Low Tension Independent of Microtubule-Kinetochore Detachment.检查点蛋白 Bub1 和 Bub3 响应低张力延迟后期起始,而不依赖于微管-动粒脱离。
Cell Rep. 2019 Apr 9;27(2):416-428.e4. doi: 10.1016/j.celrep.2019.03.027.
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Discrete regions of the kinesin-8 Kip3 tail differentially mediate astral microtubule stability and spindle disassembly.驱动蛋白-8 的尾部的离散区域差异调节星体微管稳定性和纺锤体解体。
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Epothilones: From discovery to clinical trials.埃坡霉素:从发现到临床试验。
Curr Top Med Chem. 2014;14(20):2312-21. doi: 10.2174/1568026614666141130095855.
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Structure-function analysis of yeast tubulin.酵母微管蛋白的结构-功能分析
Methods Cell Biol. 2013;115:355-74. doi: 10.1016/B978-0-12-407757-7.00022-0.

本文引用的文献

1
Novel drugs targeting microtubules: the role of epothilones.新型微管靶向药物:埃坡霉素的作用。
Curr Pharm Des. 2012;18(19):2793-803. doi: 10.2174/138161212800626238.
2
Clinical activity of patupilone in patients with pretreated advanced/metastatic colon cancer: results of a phase I dose escalation trial.培他滨酮治疗预处理的晚期/转移性结直肠癌患者的临床活性:I 期剂量递增试验结果。
Br J Cancer. 2011 Nov 22;105(11):1646-53. doi: 10.1038/bjc.2011.438. Epub 2011 Oct 25.
3
Patupilone in cancer treatment.紫杉醇在癌症治疗中的应用。
Expert Opin Investig Drugs. 2011 Jan;20(1):107-17. doi: 10.1517/13543784.2011.542148. Epub 2010 Dec 11.
4
Interaction of epothilone B (patupilone) with microtubules as detected by two-dimensional solid-state NMR spectroscopy.二维固态核磁共振波谱法检测埃坡霉素B(帕土匹隆)与微管的相互作用。
Angew Chem Int Ed Engl. 2010 Oct 4;49(41):7504-7. doi: 10.1002/anie.201001946.
5
The paclitaxel site in tubulin probed by site-directed mutagenesis of Saccharomyces cerevisiae beta-tubulin.通过酿酒酵母β-微管蛋白的定点诱变探测微管蛋白中的紫杉醇位点。
FEBS Lett. 2008 Jul 9;582(16):2467-70. doi: 10.1016/j.febslet.2008.06.013. Epub 2008 Jun 18.
6
The epothilones: translating from the laboratory to the clinic.埃坡霉素:从实验室到临床的转化
Clin Cancer Res. 2008 Mar 15;14(6):1618-24. doi: 10.1158/1078-0432.CCR-07-2201.
7
Pharmacokinetic profile of the microtubule stabilizer patupilone in tumor-bearing rodents and comparison of anti-cancer activity with other MTS in vitro and in vivo.微管稳定剂帕妥珠利在荷瘤啮齿动物中的药代动力学特征以及与其他微管稳定剂在体外和体内抗癌活性的比较
Cancer Chemother Pharmacol. 2008 Nov;62(6):1045-54. doi: 10.1007/s00280-008-0695-9. Epub 2008 Feb 27.
8
Structural basis of the activity of the microtubule-stabilizing agent epothilone a studied by NMR spectroscopy in solution.通过溶液中的核磁共振光谱研究微管稳定剂埃坡霉素A活性的结构基础。
Angew Chem Int Ed Engl. 2007;46(11):1864-8. doi: 10.1002/anie.200604505.
9
The SWISS-MODEL workspace: a web-based environment for protein structure homology modelling.SWISS-MODEL工作区:一个用于蛋白质结构同源建模的基于网络的环境。
Bioinformatics. 2006 Jan 15;22(2):195-201. doi: 10.1093/bioinformatics/bti770. Epub 2005 Nov 13.
10
DrugScore(CSD)-knowledge-based scoring function derived from small molecule crystal data with superior recognition rate of near-native ligand poses and better affinity prediction.DrugScore(CSD)——一种基于小分子晶体数据的知识评分函数,对近天然配体构象具有卓越的识别率和更好的亲和力预测能力。
J Med Chem. 2005 Oct 6;48(20):6296-303. doi: 10.1021/jm050436v.

使用微管蛋白突变、细胞毒性和分子建模来区分埃坡霉素与微管的结合模式。

Differentiating between models of epothilone binding to microtubules using tubulin mutagenesis, cytotoxicity, and molecular modeling.

机构信息

Department of Molecular Biosciences, University of Kansas, Lawrence, KS 66045-7534, USA.

出版信息

ChemMedChem. 2012 Sep;7(9):1580-6. doi: 10.1002/cmdc.201200286. Epub 2012 Jul 16.

DOI:10.1002/cmdc.201200286
PMID:22807375
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3516914/
Abstract

Microtubule stabilizers are powerful antimitotic compounds and represent a proven cancer treatment strategy. Several classes of compounds in clinical use or trials, such as the taxanes and epothilones, bind to the same region of β-tubulin. Determining how these molecules interact with tubulin and stabilize microtubules is important both for understanding the mechanism of action and enhancing chemotherapeutic potential, for example, minimizing side effects, increasing solubility, and overcoming resistance. Structural studies using non-polymerized tubulin or stabilized polymers have produced different models of epothilone binding. In this study we used directed mutagenesis of the binding site on Saccharomyces cerevisiae β-tubulin to analyze interactions between epothilone B and its biologically relevant substrate, dynamic microtubules. Five engineered amino acid changes contributed to a 125-fold increase in epothilone B cytotoxicity independent of inherent microtubule stability. The mutagenesis of endogenous β-tubulin was done in otherwise isogenic strains. This facilitated the correlation of amino acid substitutions with altered cytotoxicity using molecular mechanics simulations. The results, which are based on the interaction between epothilone B and dynamic microtubules, most strongly support the binding mode determined by NMR spectroscopy-based studies. This work establishes a system for discriminating between potential binding modes and among various compounds and/or analogues using a sensitive biological activity-based readout.

摘要

微管稳定剂是一种强大的抗有丝分裂化合物,是一种经过验证的癌症治疗策略。目前有几类化合物正在临床使用或试验中,如紫杉醇类和埃坡霉素类,它们都与β-微管蛋白的同一区域结合。确定这些分子如何与微管蛋白相互作用并稳定微管,对于理解作用机制和增强化疗潜力非常重要,例如,最小化副作用、提高溶解度和克服耐药性。使用非聚合微管蛋白或稳定聚合物的结构研究产生了埃坡霉素结合的不同模型。在这项研究中,我们使用酿酒酵母β-微管蛋白结合位点的定向诱变来分析埃坡霉素 B 与其生物相关底物(动态微管)之间的相互作用。五个工程化的氨基酸变化导致埃坡霉素 B 细胞毒性增加了 125 倍,而与固有微管稳定性无关。内源性β-微管蛋白的诱变是在其他同基因菌株中进行的。这使得使用分子力学模拟将氨基酸取代与改变的细胞毒性相关联成为可能。这些结果基于埃坡霉素 B 与动态微管之间的相互作用,最有力地支持了基于 NMR 光谱研究确定的结合模式。这项工作建立了一种使用灵敏的基于生物活性的读出方法来区分潜在结合模式以及各种化合物和/或类似物的系统。