首页> 美国卫生研究院文献>American Journal of Physiology - Heart and Circulatory Physiology >Poldip2 controls vascular smooth muscle cell migration by regulating focal adhesion turnover and force polarization
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Poldip2 controls vascular smooth muscle cell migration by regulating focal adhesion turnover and force polarization

机译:Poldip2通过调节粘着斑转换和力极化来控制血管平滑肌细胞迁移

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摘要

Polymerase-δ-interacting protein 2 (Poldip2) interacts with NADPH oxidase 4 (Nox4) and regulates migration; however, the precise underlying mechanisms are unclear. Here, we investigated the role of Poldip2 in focal adhesion turnover, as well as traction force generation and polarization. Poldip2 overexpression (AdPoldip2) in vascular smooth muscle cells (VSMCs) impairs PDGF-induced migration and induces a characteristic phenotype of long cytoplasmic extensions. AdPoldip2 also prevents the decrease in spreading and increased aspect ratio observed in response to PDGF and slightly impairs cell contraction. Moreover, AdPoldip2 blocks focal adhesion dissolution and sustains H2O2 levels in focal adhesions, whereas Poldip2 knockdown (siPoldip2) significantly decreases the number of focal adhesions. RhoA activity is unchanged when focal adhesion dissolution is stimulated in control cells but increases in AdPoldip2-treated cells. Inhibition of RhoA blocks Poldip2-mediated attenuation of focal adhesion dissolution, and overexpression of RhoA or focal adhesion kinase (FAK) reverses the loss of focal adhesions induced by siPoldip2, indicating that RhoA and FAK mediate the effect of Poldip2 on focal adhesions. Nox4 silencing prevents focal adhesion stabilization by AdPoldip2 and induces a phenotype similar to siPoldip2, suggesting a role for Nox4 in Poldip2-induced focal adhesion stability. As a consequence of impaired focal adhesion turnover, PDGF-treated AdPoldip2 cells are unable to reduce and polarize traction forces, a necessary first step in migration. These results implicate Poldip2 in VSMC migration via regulation of focal adhesion turnover and traction force generation in a Nox4/RhoA/FAK-dependent manner.
机译:聚合酶-δ相互作用蛋白2(Poldip2)与NADPH氧化酶4(Nox4)相互作用并调节迁移。但是,确切的潜在机制尚不清楚。在这里,我们调查了Poldip2在粘着斑转换,牵引力产生和极化中的作用。血管平滑肌细胞(VSMC)中的Poldip2过表达(AdPoldip2)损害PDGF诱导的迁移并诱导长细胞质延伸的特征表型。 AdPoldip2还可以防止响应PDGF观察到的扩散减少和长宽比增加,并略微损害细胞收缩。此外,AdPoldip2阻止粘着斑溶解并维持粘着斑中的H2O2水平,而Poldip2组合(siPoldip2)则大大减少了粘着斑的数量。当在对照细胞中刺激粘着斑溶解溶解时,RhoA活性不变,但在AdPoldip2处理的细胞中,RhoA活性增加。抑制RhoA会阻止Poldip2介导的粘着斑溶解减弱,而RhoA或粘着斑激酶(FAK)的过表达逆转了siPoldip2诱导的粘着斑损失,表明RhoA和FAK介导了Poldip2对粘着斑的作用。 Nox4沉默可阻止AdPoldip2稳定粘着斑并诱导类似于siPoldip2的表型,表明Nox4在Poldip2诱导的粘着斑稳定性中具有作用。由于局灶性粘连转换受损,PDGF处理的AdPoldip2细胞无法降低和极化牵引力,这是迁移的必要第一步。这些结果通过以Nox4 / RhoA / FAK依赖的方式调节粘着斑转换和产生牵引力来暗示Poldip2在VSMC中的迁移。

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