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SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B

Sphingolipids are important structural components of cell membranes and prominent signaling molecules controlling cell growth, differentiation, and apoptosis. Sphingolipids are particularly abundant in the brain, and defects in sphingolipid degradation are associated with several human neurodegenera...

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Autores principales: Fan, Wei, Tang, Shuang, Fan, Xiaojuan, Fang, Yi, Xu, Xiaojiang, Li, Leping, Xu, Jian, Li, Jian-Liang, Wang, Zefeng, Li, Xiaoling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8216717/
https://www.ncbi.nlm.nih.gov/pubmed/34042046
http://dx.doi.org/10.7554/eLife.67452
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author Fan, Wei
Tang, Shuang
Fan, Xiaojuan
Fang, Yi
Xu, Xiaojiang
Li, Leping
Xu, Jian
Li, Jian-Liang
Wang, Zefeng
Li, Xiaoling
author_facet Fan, Wei
Tang, Shuang
Fan, Xiaojuan
Fang, Yi
Xu, Xiaojiang
Li, Leping
Xu, Jian
Li, Jian-Liang
Wang, Zefeng
Li, Xiaoling
author_sort Fan, Wei
collection PubMed
description Sphingolipids are important structural components of cell membranes and prominent signaling molecules controlling cell growth, differentiation, and apoptosis. Sphingolipids are particularly abundant in the brain, and defects in sphingolipid degradation are associated with several human neurodegenerative diseases. However, molecular mechanisms governing sphingolipid metabolism remain unclear. Here, we report that sphingolipid degradation is under transcriptional control of SIRT1, a highly conserved mammalian NAD(+)-dependent protein deacetylase, in mouse embryonic stem cells (mESCs). Deletion of SIRT1 results in accumulation of sphingomyelin in mESCs, primarily due to reduction of SMPDL3B, a GPI-anchored plasma membrane bound sphingomyelin phosphodiesterase. Mechanistically, SIRT1 regulates transcription of Smpdl3b through c-Myc. Functionally, SIRT1 deficiency-induced accumulation of sphingomyelin increases membrane fluidity and impairs neural differentiation in vitro and in vivo. Our findings discover a key regulatory mechanism for sphingolipid homeostasis and neural differentiation, further imply that pharmacological manipulation of SIRT1-mediated sphingomyelin degradation might be beneficial for treatment of human neurological diseases.
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spelling pubmed-82167172021-06-23 SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B Fan, Wei Tang, Shuang Fan, Xiaojuan Fang, Yi Xu, Xiaojiang Li, Leping Xu, Jian Li, Jian-Liang Wang, Zefeng Li, Xiaoling eLife Cell Biology Sphingolipids are important structural components of cell membranes and prominent signaling molecules controlling cell growth, differentiation, and apoptosis. Sphingolipids are particularly abundant in the brain, and defects in sphingolipid degradation are associated with several human neurodegenerative diseases. However, molecular mechanisms governing sphingolipid metabolism remain unclear. Here, we report that sphingolipid degradation is under transcriptional control of SIRT1, a highly conserved mammalian NAD(+)-dependent protein deacetylase, in mouse embryonic stem cells (mESCs). Deletion of SIRT1 results in accumulation of sphingomyelin in mESCs, primarily due to reduction of SMPDL3B, a GPI-anchored plasma membrane bound sphingomyelin phosphodiesterase. Mechanistically, SIRT1 regulates transcription of Smpdl3b through c-Myc. Functionally, SIRT1 deficiency-induced accumulation of sphingomyelin increases membrane fluidity and impairs neural differentiation in vitro and in vivo. Our findings discover a key regulatory mechanism for sphingolipid homeostasis and neural differentiation, further imply that pharmacological manipulation of SIRT1-mediated sphingomyelin degradation might be beneficial for treatment of human neurological diseases. eLife Sciences Publications, Ltd 2021-05-27 /pmc/articles/PMC8216717/ /pubmed/34042046 http://dx.doi.org/10.7554/eLife.67452 Text en https://creativecommons.org/publicdomain/zero/1.0/This is an open-access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 public domain dedication (https://creativecommons.org/publicdomain/zero/1.0/) .
spellingShingle Cell Biology
Fan, Wei
Tang, Shuang
Fan, Xiaojuan
Fang, Yi
Xu, Xiaojiang
Li, Leping
Xu, Jian
Li, Jian-Liang
Wang, Zefeng
Li, Xiaoling
SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title_full SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title_fullStr SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title_full_unstemmed SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title_short SIRT1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-Myc-SMPDL3B
title_sort sirt1 regulates sphingolipid metabolism and neural differentiation of mouse embryonic stem cells through c-myc-smpdl3b
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8216717/
https://www.ncbi.nlm.nih.gov/pubmed/34042046
http://dx.doi.org/10.7554/eLife.67452
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