Yau Richard G, Wong Sara, Weisman Lois S
Cellular and Molecular Biology Program, University of Michigan, Ann Arbor, Michigan 48109.
Life Sciences Institute, University of Michigan, Ann Arbor, Michigan 48109.
J Cell Biol. 2017 Jun 5;216(6):1557-1566. doi: 10.1083/jcb.201607020. Epub 2017 May 11.
Correct positioning of organelles is essential to eukaryotic cells. Molecular motors transport organelles to their proper destinations, yet little is known about the pathways that define these destinations. In , the myosin V motor Myo2 binds the vacuole-specific adapter Vac17 to attach to the vacuole/lysosome and initiate transport. After arrival in the bud, Myo2 releases the vacuole, and Vac17 is degraded. However, the mechanisms that spatially regulate this release were not established. In this study, we report that the bud cortex is a landmark that signals a successful delivery of the vacuole to the bud. We demonstrate that upon arrival at the bud cortex, Vac17 is phosphorylated by Cla4. Cla4-dependent phosphorylation is required for the ubiquitylation and subsequent degradation of Vac17 and the release of the vacuole from Myo2. Our study reveals a critical step in the spatial regulation of myosin V-dependent organelle transport and may reveal common mechanisms for how molecular motors accurately deposit cargoes at the correct locations.
细胞器的正确定位对真核细胞至关重要。分子马达将细胞器运输到其合适的目的地,但对于定义这些目的地的途径却知之甚少。在酵母中,肌球蛋白V马达Myo2结合液泡特异性衔接蛋白Vac17以附着于液泡/溶酶体并启动运输。到达芽体后,Myo2释放液泡,Vac17被降解。然而,在空间上调节这种释放的机制尚未明确。在本研究中,我们报告芽皮层是一个标志物,它表明液泡已成功递送至芽体。我们证明,到达芽皮层后,Vac17会被Cla4磷酸化。Cla4依赖性磷酸化是Vac17泛素化及随后降解以及液泡从Myo2释放所必需的。我们的研究揭示了肌球蛋白V依赖性细胞器运输空间调节中的一个关键步骤,并且可能揭示分子马达如何在正确位置精确沉积货物的共同机制。