LAMTOR1 regulates dendritic lysosomal positioning in hippocampal neurons through TRPML1 inhibition.

IF 4.2 3区 医学 Q2 NEUROSCIENCES Frontiers in Cellular Neuroscience Pub Date : 2024-11-22 eCollection Date: 2024-01-01 DOI:10.3389/fncel.2024.1495546
Jiandong Sun, Weiju Lin, Xiaoning Hao, Michel Baudry, Xiaoning Bi
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Abstract

Intracellular lysosomal trafficking and positioning are fundamental cellular processes critical for proper neuronal function. Among the diverse array of proteins involved in regulating lysosomal positioning, the Transient Receptor Potential Mucolipin 1 (TRPML1) and the Ragulator complex have emerged as central players. TRPML1, a lysosomal cation channel, has been implicated in lysosomal biogenesis, endosomal/lysosomal trafficking including in neuronal dendrites, and autophagy. LAMTOR1, a subunit of the Ragulator complex, also participates in the regulation of lysosomal trafficking. Here we report that LAMTOR1 regulates lysosomal positioning in dendrites of hippocampal neurons by interacting with TRPML1. LAMTOR1 knockdown (KD) increased lysosomal accumulation in proximal dendrites of cultured hippocampal neurons, an effect reversed by TRPML1 KD or inhibition. On the other hand, TRPML1 activation with ML-SA1 or prevention of TRPML1 interaction with LAMTOR1 using a TAT-decoy peptide induced dendritic lysosomal accumulation. LAMTOR1 KD-induced proximal dendritic lysosomal accumulation was blocked by the dynein inhibitor, ciliobrevin D, suggesting the involvement of a dynein-mediated transport. These results indicate that LAMTOR1-mediated inhibition of TRPML1 is critical for normal dendritic lysosomal distribution and that release of this inhibition or direct activation of TRPML1 results in abnormal dendritic lysosomal accumulation. The roles of LAMTOR1-TRPML1 interactions in lysosomal trafficking and positioning could have broad implications for understanding cognitive disorders associated with lysosomal pathology and calcium dysregulation.

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LAMTOR1通过抑制TRPML1调控海马神经元树突状溶酶体定位。
细胞内溶酶体运输和定位是神经元正常功能的基本细胞过程。在参与调节溶酶体定位的多种蛋白质中,瞬时受体电位粘磷脂1 (TRPML1)和调节复合体已成为核心角色。TRPML1是溶酶体阳离子通道,与溶酶体生物发生、内体/溶酶体运输(包括神经元树突)和自噬有关。调节复合体的一个亚基LAMTOR1也参与溶酶体运输的调节。在这里,我们报道LAMTOR1通过与TRPML1相互作用调节海马神经元树突中溶酶体的定位。LAMTOR1敲低(KD)增加了培养海马神经元近端树突溶酶体的积累,这一效应被TRPML1 KD或抑制逆转。另一方面,通过ML-SA1激活TRPML1或利用tat诱骗肽诱导树突状溶酶体积累来预防TRPML1与LAMTOR1的相互作用。LAMTOR1 kd诱导的近端树突状溶酶体积聚被动力蛋白抑制剂纤毛球蛋白D阻断,表明参与了动力蛋白介导的运输。这些结果表明,lamtor1介导的TRPML1抑制对正常的树突溶酶体分布至关重要,释放这种抑制或直接激活TRPML1会导致异常的树突溶酶体积聚。LAMTOR1-TRPML1相互作用在溶酶体运输和定位中的作用可能对理解与溶酶体病理和钙失调相关的认知障碍具有广泛的意义。
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来源期刊
CiteScore
7.90
自引率
3.80%
发文量
627
审稿时长
6-12 weeks
期刊介绍: Frontiers in Cellular Neuroscience is a leading journal in its field, publishing rigorously peer-reviewed research that advances our understanding of the cellular mechanisms underlying cell function in the nervous system across all species. Specialty Chief Editors Egidio D‘Angelo at the University of Pavia and Christian Hansel at the University of Chicago are supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide.
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