The Cullin3-Ring E3 ubiquitin ligase complex and USP14 regulate spastin-mediated microtubule severing and promotion of neurite outgrowth.

IF 6.7 2区 医学 Q2 CELL BIOLOGY
Neural Regeneration Research Pub Date : 2026-04-01 Epub Date: 2025-06-20 DOI:10.4103/NRR.NRR-D-25-00037
Zhenbin Cai, Hui Wu, Tao Jiang, Ao Ma, Zhichao Meng, Jiehao Zhu, Hongsheng Lin, Yaozhong Liang, Guowei Zhang, Minghui Tan
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引用次数: 0

Abstract

JOURNAL/nrgr/04.03/01300535-202604000-00044/figure1/v/2025-06-30T060627Z/r/image-tiff Post-translational modification of spastin enables precise spatiotemporal control of its microtubule severing activity. However, the detailed mechanism by which spastin turnover is regulated in the context of neurite outgrowth remains unknown. Here, we found that spastin interacted with ubiquitin and was significantly degraded by K48-mediated poly-ubiquitination. Cullin3 facilitated spastin degradation and ubiquitination. RING-box protein 1, but not RING-box protein 2, acted synergistically with Cullin3 protein to regulate spastin degradation. Overexpression of Culin3 or BRX1 markedly suppressed spastin expression, and inhibited spastin-mediated microtubule severing and promotion of neurite outgrowth. Moreover, USP14 interacted directly with spastin to mediate its de-ubiquitination. USP14 overexpression significantly increased spastin expression and suppressed its ubiquitination and degradation. Although co-expression of spastin and USP14 did not enhance microtubule severing, it did increase neurite length in hippocampal neurons. Taken together, these findings elucidate the intricate regulatory mechanisms of spastin turnover, highlighting the roles of the Cullin-3-Ring E3 ubiquitin ligase complex and USP14 in orchestrating its ubiquitination and degradation. The dynamic interplay between these factors governs spastin stability and function, ultimately influencing microtubule dynamics and neuronal morphology. These insights shed light on potential therapeutic targets for neurodegenerative disorders associated with spastin defects.

Cullin3-Ring E3泛素连接酶复合物和USP14调节痉挛素介导的微管切断和促进神经突生长。
翻译后对spastin的修饰可以实现对其微管切断活性的精确时空控制。然而,在神经突生长的背景下,痉挛蛋白转换被调节的详细机制仍然未知。在这里,我们发现spastin与泛素相互作用,并被k48介导的多泛素化显著降解。Cullin3促进了痉挛蛋白的降解和泛素化。RING-box蛋白1与Cullin3蛋白协同调节痉挛蛋白降解,而RING-box蛋白2不与Cullin3蛋白协同调节。过表达Culin3或BRX1可显著抑制痉挛素的表达,抑制痉挛素介导的微管切断和促进神经突生长。此外,USP14直接与spastin相互作用,介导其去泛素化。USP14过表达可显著增加spastin的表达,抑制其泛素化和降解。虽然spastin和USP14的共表达没有增强微管切断,但它确实增加了海马神经元的神经突长度。综上所述,这些发现阐明了痉挛素转换的复杂调控机制,突出了Cullin-3-Ring E3泛素连接酶复合物和USP14在协调其泛素化和降解中的作用。这些因素之间的动态相互作用决定了痉挛蛋白的稳定性和功能,最终影响微管动力学和神经元形态。这些见解揭示了与痉挛蛋白缺陷相关的神经退行性疾病的潜在治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neural Regeneration Research
Neural Regeneration Research CELL BIOLOGY-NEUROSCIENCES
CiteScore
8.00
自引率
9.80%
发文量
515
审稿时长
1.0 months
期刊介绍: Neural Regeneration Research (NRR) is the Open Access journal specializing in neural regeneration and indexed by SCI-E and PubMed. The journal is committed to publishing articles on basic pathobiology of injury, repair and protection to the nervous system, while considering preclinical and clinical trials targeted at improving traumatically injuried patients and patients with neurodegenerative diseases.
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