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针对微管进行癌症化疗。

Targeting microtubules for cancer chemotherapy.

作者信息

Zhou Jun, Giannakakou Paraskevi

机构信息

Department of Cell Biology, Emory University School of Medicine, 615 Michael Street, Room 455, Atlanta, GA 30322, USA.

出版信息

Curr Med Chem Anticancer Agents. 2005 Jan;5(1):65-71. doi: 10.2174/1568011053352569.

Abstract

Chemical compounds that interfere with microtubules such as the vinca alkaloids and taxanes are important chemotherapeutic agents for the treatment of cancer. As our knowledge of microtubule-targeting drugs increases, we realize that the mechanism underlying the anti-cancer activity of these agents may mainly lie in their inhibitory effects on spindle microtubule dynamics, rather than in their effects on microtubule polymer mass. There is increasing evidence showing that even minor alteration of microtubule dynamics can engage the spindle checkpoint, arresting cell cycle progression at mitosis and eventually leading to apoptotic cell death. The effectiveness of microtubule-targeting drugs for cancer therapy has been impaired by various side effects, notably neurological and hematological toxicities. Drug resistance is another notorious factor that thwarts the effectiveness of these agents, as with many other cancer chemotherapeutics. Several new microtubule-targeting agents have shown potent activity against the proliferation of various cancer cells, including cells that display resistance to the existing microtubule-targeting drugs. Continued investigation of the mechanisms of action of microtubule-targeting drugs, development and discovery of new drugs, and exploring new treatment strategies that reduce side effects and circumvent drug resistance may provide more effective therapeutic options for cancer patients.

摘要

干扰微管的化合物,如长春花生物碱和紫杉烷类,是治疗癌症的重要化疗药物。随着我们对微管靶向药物认识的增加,我们意识到这些药物抗癌活性的潜在机制可能主要在于它们对纺锤体微管动力学的抑制作用,而非对微管聚合物质量的影响。越来越多的证据表明,即使微管动力学的微小改变也能激活纺锤体检查点,使细胞周期在有丝分裂时停滞,最终导致细胞凋亡死亡。微管靶向药物用于癌症治疗的有效性受到各种副作用的影响,尤其是神经毒性和血液学毒性。与许多其他癌症化疗药物一样,耐药性是另一个阻碍这些药物有效性的臭名昭著的因素。几种新型微管靶向药物已显示出对各种癌细胞增殖的强效活性,包括对现有微管靶向药物耐药的细胞。持续研究微管靶向药物的作用机制、开发和发现新药,以及探索减少副作用和规避耐药性的新治疗策略,可能为癌症患者提供更有效的治疗选择。

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