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A Highlights from MBoC Selection: Initial Polarized Bud Growth by Endocytic Recycling in the Absence of Actin Cable–dependent Vesicle Transport in Yeast

机译:MBoC选择的亮点:酵母中缺乏肌动蛋白电缆依赖性囊泡运输时,通过内源性循环产生的初始极化芽生长

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The assembly of filamentous actin is essential for polarized bud growth in budding yeast. Actin cables, which are assembled by the formins Bni1p and Bnr1p, are thought to be the only actin structures that are essential for budding. However, we found that formin or tropomyosin mutants, which lack actin cables, are still able to form a small bud. Additional mutations in components for cortical actin patches, which are assembled by the Arp2/3 complex to play a pivotal role in endocytic vesicle formation, inhibited this budding. Genes involved in endocytic recycling were also required for small-bud formation in actin cable-less mutants. These results suggest that budding yeast possesses a mechanism that promotes polarized growth by local recycling of endocytic vesicles. Interestingly, the type V myosin Myo2p, which was thought to use only actin cables to track, also contributed to budding in the absence of actin cables. These results suggest that some actin network may serve as the track for Myo2p-driven vesicle transport in the absence of actin cables or that Myo2p can function independent of actin filaments. Our results also show that polarity regulators including Cdc42p were still polarized in mutants defective in both actin cables and cortical actin patches, suggesting that the actin cytoskeleton does not play a major role in cortical assembly of polarity regulators in budding yeast.
机译:丝状肌动蛋白的装配对于萌芽酵母中的极化芽生长至关重要。肌动蛋白电缆由formin Bni1p和Bnr1p组装而成,被认为是唯一对于萌芽必不可少的肌动蛋白结构。但是,我们发现缺少肌动蛋白电缆的福尔明或原肌球蛋白突变体仍然能够形成小芽。皮质肌动蛋白补丁的组件中的其他突变,由Arp2 / 3复合物组装,在胞吞小泡的形成中起关键作用,抑制了这种出芽。肌动蛋白无电缆突变体中的小芽形成也需要胞吞再循环相关基因。这些结果表明,发芽酵母具有通过局部回收内吞囊泡促进极化生长的机制。有趣的是,被认为仅使用肌动蛋白电缆进行追踪的V型肌球蛋白Myo2p类型也导致了缺乏肌动蛋白电缆的萌芽。这些结果表明,在没有肌动蛋白电缆的情况下,某些肌动蛋白网络可以充当Myo2p驱动的囊泡运输的轨道,或者Myo2p可以独立于肌动蛋白丝起作用。我们的结果还表明,包括Cdc42p在内的极性调节剂仍在肌动蛋白电缆和皮质肌动蛋白斑块均存在缺陷的突变体中被极化,这表明肌动蛋白的细胞骨架在芽苗酵母的极性调节剂的皮质组装中不发挥主要作用。

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