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微管靶向药物是如何发挥作用的?概述。

How do microtubule-targeted drugs work? An overview.

作者信息

Jordan Mary Ann, Kamath Kathy

机构信息

Department of Molecular, Cellular, and Developmental Biology and Neuroscience Research Institute, University of California Santa Barbara, Santa Barbara, CA 93106, USA.

出版信息

Curr Cancer Drug Targets. 2007 Dec;7(8):730-42. doi: 10.2174/156800907783220417.

Abstract

The importance of microtubules in mitosis makes them a superb target for a group of highly successful, chemically diverse anticancer drugs. Knowledge of the mechanistic differences among the many drugs of this class is vital to understanding their tissue and cell specificity, the development of resistance, the design of novel improved drugs, optimal scheduling of treatment, and potential synergistic combinations. This overview covers microtubule assembly dynamics, the exquisite regulation of microtubule dynamics in cells by endogenous regulators, the important role of microtubule dynamics in mitosis, the diversity and number of microtubule-targeted drugs undergoing clinical development, the antimitotic mechanisms of microtubule-targeted drugs with emphasis on suppression of microtubule dynamics by vinblastine and taxol, the role of drug uptake and retention in the efficacy of microtubule-targeted drugs, and the anti-angiogenic and vascular-disrupting mechanisms of microtubule targeted drugs. In view of the success of this class of drugs, it has been argued that microtubules represent the single best cancer target identified to date, and it seems likely that drugs in this class will continue to remain an important chemotherapeutic class of drugs even as more selective chemotherapeutic approaches are developed.

摘要

微管在有丝分裂中的重要性使其成为一类极为成功且化学结构多样的抗癌药物的绝佳靶点。了解这类众多药物之间的机制差异对于理解它们的组织和细胞特异性、耐药性的产生、新型改良药物的设计、最佳治疗方案的安排以及潜在的协同组合至关重要。本综述涵盖微管组装动力学、内源性调节因子对细胞中微管动力学的精细调控、微管动力学在有丝分裂中的重要作用、正在进行临床开发的微管靶向药物的多样性和数量、微管靶向药物的抗有丝分裂机制(重点是长春碱和紫杉醇对微管动力学的抑制作用)、药物摄取和滞留对微管靶向药物疗效的作用,以及微管靶向药物的抗血管生成和血管破坏机制。鉴于这类药物的成功,有人认为微管是迄今为止已确定的最佳单一癌症靶点,而且即便开发出更具选择性的化疗方法,这类药物似乎仍将继续作为一类重要的化疗药物。

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