多丝氨酸介导的FAF2/UBXD8靶向改善tau聚集。

IF 15 1区 医学 Q1 NEUROSCIENCES
Meaghan Van Alstyne, Georgia Brown, Vanessa L Nguyen, Mani Ramaswami, Charles A Hoeffer, Roy Parker
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引用次数: 0

摘要

Tau聚集是几种神经退行性疾病的标志,错误折叠的Tau物种的毒性功能的获得与病理生物学有关。在本文中,我们确定了通过聚丝氨酸结构域靶向tau聚集时限制tau聚集的蛋白质。当多丝氨酸靶向与含血管磷脂蛋白(VCP)接头蛋白fas相关因子家族成员2/UBX结构域蛋白8 (FAF2/UBXD8)融合时,可最有效地减轻tau聚集。令人惊讶的是,FAF2/UBXD8抑制独立于VCP的tau聚集,但确实需要泛素化、膜定位和泛素调节因子X (UBX)结构域。动物模型验证表明,以丝氨酸为靶点的FAF2/UBXD8可拯救tau诱导的果蝇神经变性。此外,靶向FAF2/UBXD8的递送减少了PS19 tau转基因小鼠的胶质瘤、播种能力和不溶性tau水平,同时改善了情境恐惧条件。总的来说,我们的研究结果强调了聚丝氨酸作为tau靶向策略,并确定了靶向FAF2/UBXD8是tau病理的有效抑制因子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polyserine-mediated targeting of FAF2/UBXD8 ameliorates tau aggregation.

Tau aggregation is a hallmark of several neurodegenerative disorders, and the gain of toxic function of misfolded tau species is linked to pathobiology. Herein, we identified proteins that limit tau aggregation when targeted to tau aggregates by polyserine domains. Polyserine targeting was most effective at mitigating tau aggregation when fused to the vasolin-containing protein (VCP) adaptor protein fas-associated factor family member 2/UBX domain-containing protein 8 (FAF2/UBXD8). Surprisingly, FAF2/UBXD8 suppresses tau aggregation independent of VCP but does require ubiquitination, membrane localization, and a ubiquitin regulator X (UBX) domain. Validation in animal models demonstrated that polyserine-targeted FAF2/UBXD8 rescues tau-induced neurodegeneration in Drosophila. Further, delivery of targeted FAF2/UBXD8 reduced gliosis, seeding capacity, and insoluble tau levels in PS19 tau transgenic mice while improving contextual fear conditioning. Collectively, our findings highlight polyserine as a tau-targeting strategy and identify targeted FAF2/UBXD8 as a potent suppressor of tau pathology.

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来源期刊
Neuron
Neuron 医学-神经科学
CiteScore
24.50
自引率
3.10%
发文量
382
审稿时长
1 months
期刊介绍: Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.
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