A nutrient-sensitive CPT1C-ABHD6 axis regulates BMP homeostasis and endolysosomal function in hypothalamic neurons

The endolysosomal system is central to neuronal homeostasis, yet how nutrient sensing regulates endolysosomal lipids remains poorly understood. Bis(monoacylglycero)phosphate (BMP), a signature phospholipid of late endosomes, is required for intraluminal vesicle formation, cholesterol handling, and lysosomal function, but the mechanisms preserving neuronal BMP homeostasis are largely unknown. Here, we identify a nutrient-sensitive pathway linking metabolic state to BMP homeostasis in hypothalamic neurons. We show that the neuronal lipid sensor carnitine palmitoyltransferase 1C (CPT1C) restrains the BMP hydrolase ABHD6. Loss of CPT1C increases ABHD6 activity, lowers intracellular BMP levels, and impairs endosomal maturation, extracellular vesicle release, and lysosomal acidification and proteolytic activity. Acute ABHD6 inhibition restores BMP levels in CPT1C-deficient neurons, indicating that BMP depletion results primarily from enhanced hydrolysis. Lipid overload similarly increases ABHD6 activity and lowers BMP levels in wild-type neurons and hypothalamus, whereas CPT1C-deficient cells and mice display constitutively elevated ABHD6 activity and fail to further adapt to lipid excess. Together, these findings identify CPT1C as a nutrient-sensitive regulator of neuronal BMP homeostasis and endolysosomal function.

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Publication Details

Journal
Cellular and Molecular Life Sciences
Published
2026-10-07
DOI
https://doi.org/10.1007/s00018-026-06451-3
Primary Topic
Lipid metabolism and biosynthesis
Type
article
Field-Weighted Citation Impact
0.00

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article

A nutrient-sensitive CPT1C-ABHD6 axis regulates BMP homeostasis and endolysosomal function in hypothalamic neurons

Nermeen Fawzy, Montserrat Bolaños-Hurtado, Núria Casals, Ramon Barnadas‐Rodríguez et al.
Cellular and Molecular Life Sciences
Lipid metabolism and biosynthesis
article

A nutrient-sensitive CPT1C-ABHD6 axis regulates BMP homeostasis and endolysosomal function in hypothalamic neurons

Nermeen Fawzy, Montserrat Bolaños-Hurtado, Núria Casals, Ramon Barnadas‐Rodríguez, Ana Cristina Reguera, Jesús García-Chica, Anna Fosch, M Bernard, Sebastián Zagmutt, Robert Zimmermann, Cristina Miralpeix, Rosalía Rodríguez‐Rodríguez, Carlos Palacín, Emily Eden, Andrea Fuentes, María Rodríguez-García
article en

Abstract

The endolysosomal system is central to neuronal homeostasis, yet how nutrient sensing regulates endolysosomal lipids remains poorly understood. Bis(monoacylglycero)phosphate (BMP), a signature phospholipid of late endosomes, is required for intraluminal vesicle formation, cholesterol handling, and lysosomal function, but the mechanisms preserving neuronal BMP homeostasis are largely unknown. Here, we identify a nutrient-sensitive pathway linking metabolic state to BMP homeostasis in hypothalamic neurons. We show that the neuronal lipid sensor carnitine palmitoyltransferase 1C (CPT1C) restrains the BMP hydrolase ABHD6. Loss of CPT1C increases ABHD6 activity, lowers intracellular BMP levels, and impairs endosomal maturation, extracellular vesicle release, and lysosomal acidification and proteolytic activity. Acute ABHD6 inhibition restores BMP levels in CPT1C-deficient neurons, indicating that BMP depletion results primarily from enhanced hydrolysis. Lipid overload similarly increases ABHD6 activity and lowers BMP levels in wild-type neurons and hypothalamus, whereas CPT1C-deficient cells and mice display constitutively elevated ABHD6 activity and fail to further adapt to lipid excess. Together, these findings identify CPT1C as a nutrient-sensitive regulator of neuronal BMP homeostasis and endolysosomal function.

Cellular and Molecular Life Sciences
Universitat Autònoma de Barcelona (ES), University of Graz (AT), Instituto de Salud Carlos III (ES), Universitat Internacional de Catalunya (ES), University College London (GB)
Ministerio de Ciencia e Innovación
Good health and well-being
Openalex Percentile: Top 22%
Lipid metabolism and biosynthesis
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