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驱动蛋白-1在秀丽隐杆线虫神经元致密核心囊泡运输、运动和寿命调节中的作用。

The role of kinesin-1 in neuronal dense core vesicle transport, locomotion and lifespan regulation in C. elegans.

机构信息

School of Biological Sciences, Faculty of Biology, Medicine and Health, University of Manchester, The Michael Smith Building, Rumford St, Manchester M13 9PT, UK.

Department of Mathematics, Faculty of Science and Engineering, The University of Manchester, Manchester M13 9PL, UK.

出版信息

J Cell Sci. 2024 Sep 1;137(17). doi: 10.1242/jcs.262148. Epub 2024 Sep 6.

Abstract

Fast axonal transport is crucial for neuronal function and is driven by kinesins and cytoplasmic dynein. Here, we investigated the role of kinesin-1 in dense core vesicle (DCV) transport in C. elegans, using mutants in the kinesin light chains (klc-1 and klc-2) and the motor subunit (unc-116) expressing an ida-1::gfp transgene that labels DCVs. DCV transport in both directions was greatly impaired in an unc-116 mutant and had reduced velocity in a klc-2 mutant. In contrast, the speed of retrograde DCV transport was increased in a klc-1 mutant whereas anterograde transport was unaffected. We identified striking differences between the klc mutants in their effects on worm locomotion and responses to drugs affecting neuromuscular junction activity. We also determined lifespan, finding that unc-116 mutant was short-lived whereas the klc single mutant lifespan was wild type. The ida-1::gfp transgenic strain was also short-lived, but surprisingly, klc-1 and klc-2 extended the ida-1::gfp lifespan beyond that of wild type. Our findings suggest that kinesin-1 not only influences anterograde and retrograde DCV transport but is also involved in regulating lifespan and locomotion, with the two kinesin light chains playing distinct roles.

摘要

快速轴突运输对于神经元功能至关重要,它由驱动蛋白和细胞质动力蛋白驱动。在这里,我们研究了驱动蛋白-1 在秀丽隐杆线虫致密核心囊泡 (DCV) 运输中的作用,使用了在轻链 (klc-1 和 klc-2) 和运动亚基 (unc-116) 中突变的方法,并用表达 ida-1::gfp 转基因的方法标记 DCV。unc-116 突变体中 DCV 的双向运输受到严重损害,klc-2 突变体中 DCV 的速度降低。相比之下,klc-1 突变体中逆行 DCV 运输的速度增加,而顺行运输不受影响。我们在 klc 突变体对蠕虫运动和对影响神经肌肉接头活动的药物的反应方面发现了显著差异。我们还确定了寿命,发现 unc-116 突变体寿命较短,而 klc 单突变体的寿命为野生型。ida-1::gfp 转基因株系也寿命较短,但令人惊讶的是,klc-1 和 klc-2 使 ida-1::gfp 的寿命超过了野生型。我们的研究结果表明,驱动蛋白-1 不仅影响顺行和逆行 DCV 运输,还参与调节寿命和运动,两个驱动蛋白轻链发挥着不同的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5970/11423817/8c04d2570690/joces-137-262148-g1.jpg

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