Inter-Organelle Membrane Contact Sites as Physiological Regulatory Hubs in the Brain: From Neurons to Glial Cells

Inter-organelle membrane contact sites (MCSs) enable direct communication between organelles, and this communication is fundamental to cellular homeostasis, coordinated calcium (Ca2+) signaling, lipid metabolism, energy production, and stress responses. While MCSs are evolutionarily conserved, emerging evidence indicates that their organization and function are highly context dependent. In the brain, neurons and glial cells differ markedly in their physiological roles, morphologies, and metabolic demands, suggesting that inter-organelle contact networks might be specialized in a cell-type-dependent manner. Although much of the existing literature focuses on neurons, growing evidence indicates that these contact sites also play important roles in glial cells. Here, we review recent advances in our understanding of MCSs in the nervous system, focusing on cell-type-specific differences between neurons and glial cells. We highlight the spatial specialization of MCSs within neurons, emphasizing how subcellular localization shapes their functional output. Our analysis of the current literature suggests that neuronal MCSs are primarily optimized for rapid Ca2+ signaling and metabolic adaptation, whereas glial MCSs preferentially coordinate lipid metabolism, inflammatory signaling, and tissue homeostasis. We also review the context-dependent and disease-driven remodeling of MCSs in the brain, reflecting alterations in contact-site composition and function rather than simply increased or decreased organelle proximity. Furthermore, we discuss emerging therapeutic perspectives aimed at modulating inter-organelle communication in multiple neurological diseases and outline key unresolved questions and future directions necessary to elucidate how inter-organelle contact sites shape brain physiology and disease. Collectively, the evidence reviewed here indicates that MCSs serve as dynamic signaling platforms, with their specific physiological and pathological functions varying according to cell type, subcellular localization, and molecular composition.

Authors

Institutions

Publication Details

Journal
Biomolecules
Published
2026-08-31
DOI
https://doi.org/10.3390/biom16091257
Primary Topic
Cellular transport and secretion
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Inter-Organelle Membrane Contact Sites as Physiological Regulatory Hubs in the Brain: From Neurons to Glial Cells

Ginam Cho, Youngshin Lim, Yuchen Wu
Biomolecules
Cellular transport and secretion
article

Inter-Organelle Membrane Contact Sites as Physiological Regulatory Hubs in the Brain: From Neurons to Glial Cells

Ginam Cho, Youngshin Lim, Yuchen Wu
article en

Abstract

Inter-organelle membrane contact sites (MCSs) enable direct communication between organelles, and this communication is fundamental to cellular homeostasis, coordinated calcium (Ca2+) signaling, lipid metabolism, energy production, and stress responses. While MCSs are evolutionarily conserved, emerging evidence indicates that their organization and function are highly context dependent. In the brain, neurons and glial cells differ markedly in their physiological roles, morphologies, and metabolic demands, suggesting that inter-organelle contact networks might be specialized in a cell-type-dependent manner. Although much of the existing literature focuses on neurons, growing evidence indicates that these contact sites also play important roles in glial cells. Here, we review recent advances in our understanding of MCSs in the nervous system, focusing on cell-type-specific differences between neurons and glial cells. We highlight the spatial specialization of MCSs within neurons, emphasizing how subcellular localization shapes their functional output. Our analysis of the current literature suggests that neuronal MCSs are primarily optimized for rapid Ca2+ signaling and metabolic adaptation, whereas glial MCSs preferentially coordinate lipid metabolism, inflammatory signaling, and tissue homeostasis. We also review the context-dependent and disease-driven remodeling of MCSs in the brain, reflecting alterations in contact-site composition and function rather than simply increased or decreased organelle proximity. Furthermore, we discuss emerging therapeutic perspectives aimed at modulating inter-organelle communication in multiple neurological diseases and outline key unresolved questions and future directions necessary to elucidate how inter-organelle contact sites shape brain physiology and disease. Collectively, the evidence reviewed here indicates that MCSs serve as dynamic signaling platforms, with their specific physiological and pathological functions varying according to cell type, subcellular localization, and molecular composition.

BiomoleculesVol. 16(9)
Cedars-Sinai Medical Center (US), Sinai Health System (US), Charles R. Drew University of Medicine and Science (US), Tsinghua University (CN)
Affordable and clean energy
Openalex Percentile: Top 14%
Cellular transport and secretion
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.