Abstract
Membrane contact sites (MCS), close membrane apposition between organelles, are platforms for interorganellar transfer of lipids including cholesterol, regulation of lipid homeostasis, and co-ordination of endocytic trafficking. Sphingosine kinases (SphKs), two isoenzymes that phosphorylate sphingosine to the bioactive sphingosine-1-phosphate (S1P), have been implicated in endocytic trafficking. However, the physiological functions of SphKs in regulation of membrane dynamics, lipid trafficking and MCS are not known. Here, we report that deletion of SphKs decreased S1P with concomitant increases in its precursors sphingosine and ceramide, and markedly reduced endoplasmic reticulum (ER) contacts with late endocytic organelles. Expression of enzymatically active SphK1, but not catalytically inactive, rescued the deficit of these MCS. Although free cholesterol accumulated in late endocytic organelles in SphK null cells, surprisingly however, cholesterol transport to the ER was not reduced. Importantly, deletion of SphKs promoted recruitment of the ER-resident cholesterol transfer protein Aster-B (also called GRAMD1B) to the plasma membrane (PM), consistent with higher accessible cholesterol and ceramide at the PM, to facilitate cholesterol transfer from the PM to the ER. In addition, ceramide enhanced in vitro binding of the Aster-B GRAM domain to phosphatidylserine and cholesterol liposomes. Our study revealed a previously unknown role for SphKs and sphingolipid metabolites in governing diverse MCS between the ER network and late endocytic organelles versus the PM to control the movement of cholesterol between distinct cell membranes.
| Original language | English |
|---|---|
| Article number | e2204396119 |
| Journal | Proceedings of the National Academy of Sciences of the United States of America |
| Volume | 119 |
| Issue number | 39 |
| DOIs | |
| State | Published - Sep 27 2022 |
Bibliographical note
Publisher Copyright:© 2022 the Author(s).
Funding
Lipidomics/Metabolomics and the Microscopy Shared resources, which are supported in part by funding from the NIH-NCI Cancer Center Support Grant P30 CA016059. A.M. was supported by the Medical Research Council grant MR/ V013882/1. Cholesterol ester measurements were supported by NIH grant S10OD025246 (D.A.F.). E.B. was supported by VA grant I01BX003643. We are grateful for the generous gifts from Dr. Maria Antonietta De Matteis (University of Naples) for plasmids; Dr. Arun Radhakrishnan (UT Southwestern) for ALOD4. ACKNOWLEDGMENTS. This work was supported by NIH grant R01GM043880 (S.S.). The authors acknowledge the Virginia Commonwealth University
| Funders | Funder number |
|---|---|
| NCI/NIH | P30 CA016059 |
| U.S. Department of Veterans Affairs | I01BX003643 |
| National Institutes of Health (NIH) | S10OD025246, R01GM043880 |
| National Heart, Lung, and Blood Institute (NHLBI) | P01HL146358 |
| UK Medical Research Council, Engineering and Physical Sciences Research Council | MR/ V013882/1 |
| National Childhood Cancer Registry – National Cancer Institute | P30CA016059 |
Keywords
- Aster-B/GRAMD1b
- cholesterol
- membrane contact sites
- sphingolipids
- sphingosine kinase
ASJC Scopus subject areas
- General
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