首页> 外文期刊>Molecular cancer therapeutics >Antiangiogenic vinflunine affects EB1 localization and microtubule targeting to adhesion sites.
【24h】

Antiangiogenic vinflunine affects EB1 localization and microtubule targeting to adhesion sites.

机译:抗血管生成的长春氟宁会影响EB1的定位和微管靶向黏附位点。

获取原文
获取原文并翻译 | 示例
           

摘要

The motile behavior of endothelial cells is a crucial event for neoangiogenesis. We previously showed that noncytotoxic concentrations of vinflunine inhibit capillary-like tube formation on Matrigel and endothelial cell migration with a concomitant increase in interphase microtubule dynamic instability. In this article, we further investigated the effects of vinflunine on migration and cytoskeleton interaction dynamics in HMEC-1 endothelial cells. We confirmed that vinflunine, at low and noncytotoxic concentrations (0.01-1 nmol/L), inhibited endothelial cell random motility by 54%. This effect was associated with a decrease in the percentage of stable microtubules and in the mean duration of pauses for dynamic ones. Moreover, we found that vinflunine altered adhesion site targeting by microtubules and suppressed the microtubule (+) end pause that occurs at adhesion sites during cell migration (from 151 +/- 20 seconds in control cells to 38 +/- 7 seconds in vinflunine-treated cells, P 0.001). This effect was associated with the inhibition of adhesion site dynamics and the formation of long-lived stress fibers. Importantly, we found that vinflunine altered EB1 localization at microtubule (+) ends. These results highlight a new mechanism of action of vinflunine, which act by disrupting the mutual control between microtubule and adhesion site dynamics and strengthen the role of +TIPs proteins such as EB1 as key regulators of endothelial cell motility.
机译:内皮细胞的运动行为是新血管生成的关键事件。我们以前表明,非细胞毒浓度的长春氟宁抑制基质胶上的毛细管样管形成和内皮细胞迁移,并伴随相间微管动态不稳定性的增加。在本文中,我们进一步研究了长春氟宁对HMEC-1内皮细胞迁移和细胞骨架相互作用动力学的影响。我们证实低和无细胞毒性浓度(0.01-1 nmol / L)的长春氟宁抑制内皮细胞随机运动的能力为54%。这种作用与稳定的微管百分比的减少和动态微管的平均停顿持续时间有关。此外,我们发现长春氟宁改变了微管对粘连部位的靶向作用,并抑制了细胞迁移过程中粘连部位发生的微管(+)末端停顿(从对照细胞中的151 +/- 20秒变为长春新碱中的38 +/- 7秒处理的细胞,P <0.001)。这种作用与抑制粘着部位动力学和长寿命应力纤维的形成有关。重要的是,我们发现长春氟宁改变了微管(+)末端的EB1定位。这些结果突出了长春氟宁的新作用机制,该作用通过破坏微管和粘附位点动力学之间的相互控制并增强+ TIPs蛋白(例如EB1)作为内皮细胞运动的关键调节剂的作用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号