BicD和MAP7通过互补机制共同激活同型二聚体果蝇运动蛋白-1。

IF 2.5 3区 生物学 Q3 CELL BIOLOGY
Traffic Pub Date : 2025-04-01 DOI:10.1111/tra.70008
M Yusuf Ali, Hailong Lu, Patricia M Fagnant, Jill E Macfarlane, Kathleen M Trybus
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引用次数: 0

摘要

激酶1折叠后的自抑制状态通过多种弱相互作用稳定,与微管结合不良。在这里,我们研究了同源二聚体果蝇动力蛋白-1缺乏光链被动力蛋白激活适配器果蝇BicD激活的程度。我们发现一个或两个驱动蛋白可以结合到BicD的中心区域(CC2),这一区域不同于结合动力蛋白-动力蛋白(CC1)和货物适应蛋白(CC3)的区域。驱动蛋白轻链显著减少了驱动蛋白与BicD结合的数量,从而调节了这种相互作用。BicD与激酶蛋白的结合增强了进程运动,表明接头减轻了激酶蛋白的自抑制作用。相比之下,微管相关蛋白7 (MAP7)的激酶结合结构域对马达运动进程的影响最小,而全长MAP7由于其微管结合结构域而增强了激酶1向微管的募集和运行长度。因此,BicD减轻了运动蛋白的自身抑制,而MAP7增强了与微管的运动结合。当BicD和MAP7结合时,会发生最强烈的激酶1激活,突出接头和微管相关蛋白在调节运输中的串扰。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
BicD and MAP7 Collaborate to Activate Homodimeric Drosophila Kinesin-1 by Complementary Mechanisms.

The folded auto-inhibited state of kinesin-1 is stabilized by multiple weak interactions and binds poorly to microtubules. Here we investigate the extent to which homodimeric Drosophila kinesin-1 lacking light chains is activated by the dynein activating adaptor Drosophila BicD. We show that one or two kinesins can bind to the central region of BicD (CC2), a region distinct from that which binds dynein-dynactin (CC1) and cargo-adaptor proteins (CC3). Kinesin light chain significantly reduces the amount of kinesin bound to BicD and thus regulates this interaction. Binding of BicD to kinesin enhances processive motion, suggesting that the adaptor relieves kinesin auto-inhibition. In contrast, the kinesin-binding domain of microtubule-associated protein 7 (MAP7) has minimal impact on the fraction of motors moving processively while full-length MAP7 enhances kinesin-1 recruitment to the microtubule and run length because of its microtubule-binding domain. BicD thus relieves auto-inhibition of kinesin, while MAP7 enhances motor engagement with the microtubules. When BicD and MAP7 are combined, the most robust activation of kinesin-1 occurs, highlighting the crosstalk between adaptors and microtubule-associated proteins in regulating transport.

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来源期刊
Traffic
Traffic 生物-细胞生物学
CiteScore
8.10
自引率
2.20%
发文量
50
审稿时长
2 months
期刊介绍: Traffic encourages and facilitates the publication of papers in any field relating to intracellular transport in health and disease. Traffic papers span disciplines such as developmental biology, neuroscience, innate and adaptive immunity, epithelial cell biology, intracellular pathogens and host-pathogen interactions, among others using any eukaryotic model system. Areas of particular interest include protein, nucleic acid and lipid traffic, molecular motors, intracellular pathogens, intracellular proteolysis, nuclear import and export, cytokinesis and the cell cycle, the interface between signaling and trafficking or localization, protein translocation, the cell biology of adaptive an innate immunity, organelle biogenesis, metabolism, cell polarity and organization, and organelle movement. All aspects of the structural, molecular biology, biochemistry, genetics, morphology, intracellular signaling and relationship to hereditary or infectious diseases will be covered. Manuscripts must provide a clear conceptual or mechanistic advance. The editors will reject papers that require major changes, including addition of significant experimental data or other significant revision. Traffic will consider manuscripts of any length, but encourages authors to limit their papers to 16 typeset pages or less.
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