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An Order of Magnitude Faster AIP1-Associated Actin Disruption than Nucleation by the Arp2/3 Complex in Lamellipodia

机译:数量级的AIP1相关肌动蛋白破裂比Amel / 3复合物在Lamellipodia中更快的数量级。

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摘要

The mechanism of lamellipod actin turnover is still under debate. To clarify the intracellular behavior of the recently-identified actin disruption mechanism, we examined kinetics of AIP1 using fluorescent single-molecule speckle microscopy. AIP1 is thought to cap cofilin-generated actin barbed ends. Here we demonstrate a reduction in actin-associated AIP1 in lamellipodia of cells overexpressing LIM-kinase. Moreover, actin-associated AIP1 was rapidly abolished by jasplakinolide, which concurrently blocked the F-actin-cofilin interaction. Jasplakinolide also slowed dissociation of AIP1, which is analogous to the effect of this drug on capping protein. These findings provide in vivo evidence of the association of AIP1 with barbed ends generated by cofilin-catalyzed filament disruption. Single-molecule observation found distribution of F-actin-associated AIP1 throughout lamellipodia, and revealed even faster dissociation of AIP1 than capping protein. The estimated overall AIP1-associated actin disruption rate, 1.8 µM/s, was one order of magnitude faster than Arp2/3 complex-catalyzed actin nucleation in lamellipodia. This rate does not suffice the filament severing rate predicted in our previous high frequency filament severing-annealing hypothesis. Our data together with recent biochemical studies imply barbed end-preferred frequent filament disruption. Frequent generation of AIP1-associated barbed ends and subsequent release of AIP1 may be the mechanism that facilitates previously observed ubiquitous actin polymerization throughout lamellipodia.
机译:lamellipod肌动蛋白周转的机制仍在争论中。为了阐明最近确定的肌动蛋白破坏机制的细胞内行为,我们使用荧光单分子散斑显微镜检查了AIP1的动力学。 AIP1被认为可以为cofilin生成的肌动蛋白带刺的末端加帽。在这里,我们证明了过表达LIM激酶的细胞的板状脂蛋白减少肌动蛋白相关的AIP1。此外,jasplakinolide迅速消除了肌动蛋白相关的AIP1,并同时阻止了F-肌动蛋白-cofilin的相互作用。 Jasplakinolide还减慢了AIP1的解离速度,这类似于该药物对封端蛋白的作用。这些发现提供了体内的证据,表明AIP1与cofilin催化的细丝破坏产生的倒刺末端相关。单分子观察发现F-肌动蛋白相关的AIP1分布在整个片状脂质体中,并且揭示了AIP1的解离比封端蛋白更快。估计的总的与AIP1相关的肌动蛋白破坏速率为1.8 µM / s,比ALP2 / 3络合物催化的肌纤溶蛋白中的肌动蛋白成核速度快一个数量级。该速率不足以满足我们先前的高频灯丝切割退火假设中预测的灯丝切割速率。我们的数据以及最近的生化研究表明,有刺的末端优选频繁的细丝破坏。 AIP1相关的倒钩末端的频繁产生和AIP1的后续释放可能是促进先前观察到的整个片状脂蛋白泛在肌动蛋白聚合的机制。

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