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CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism

The serine palmitoyltransferase (SPT) complex catalyzes the rate-limiting step in the de novo biosynthesis of ceramides, the precursors of sphingolipids. The mammalian ORMDL isoforms (ORMDL1-3) are negative regulators of SPT. However, the roles of individual ORMDL isoforms are unclear. Using siRNA a...

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Autores principales: Green, Christopher D., Weigel, Cynthia, Oyeniran, Clement, James, Briana N., Davis, Deanna, Mahawar, Usha, Newton, Jason, Wattenberg, Binks W., Maceyka, Michael, Spiegel, Sarah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8167824/
https://www.ncbi.nlm.nih.gov/pubmed/33939982
http://dx.doi.org/10.1016/j.jlr.2021.100082
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author Green, Christopher D.
Weigel, Cynthia
Oyeniran, Clement
James, Briana N.
Davis, Deanna
Mahawar, Usha
Newton, Jason
Wattenberg, Binks W.
Maceyka, Michael
Spiegel, Sarah
author_facet Green, Christopher D.
Weigel, Cynthia
Oyeniran, Clement
James, Briana N.
Davis, Deanna
Mahawar, Usha
Newton, Jason
Wattenberg, Binks W.
Maceyka, Michael
Spiegel, Sarah
author_sort Green, Christopher D.
collection PubMed
description The serine palmitoyltransferase (SPT) complex catalyzes the rate-limiting step in the de novo biosynthesis of ceramides, the precursors of sphingolipids. The mammalian ORMDL isoforms (ORMDL1-3) are negative regulators of SPT. However, the roles of individual ORMDL isoforms are unclear. Using siRNA against individual ORMDLs, only single siORMDL3 had modest effects on dihydroceramide and ceramide levels, whereas downregulation of all three ORMDLs induced more pronounced increases. With the CRISPR/Cas9-based genome-editing strategy, we established stable single ORMDL3 KO (ORMDL3-KO) and ORMDL1/2/3 triple-KO (ORMDL-TKO) cell lines to further understand the roles of ORMDL proteins in sphingolipid biosynthesis. While ORMDL3-KO modestly increased dihydroceramide and ceramide levels, ORMDL-TKO cells had dramatic increases in the accumulation of these sphingolipid precursors. SPT activity was increased only in ORMDL-TKO cells. In addition, ORMDL-TKO but not ORMDL3-KO dramatically increased levels of galactosylceramides, glucosylceramides, and lactosylceramides, the elevated N-acyl chain distributions of which broadly correlated with the increases in ceramide species. Surprisingly, although C16:0 is the major sphingomyelin species, it was only increased in ORMDL3-KO, whereas all other N-acyl chain sphingomyelin species were significantly increased in ORMDL-TKO cells. Analysis of sphingoid bases revealed that although sphingosine was only increased 2-fold in ORMDL-TKO cells, levels of dihydrosphingosine, dihydrosphingosine-1-phosphate, and sphingosine-1-phosphate were hugely increased in ORMDL-TKO cells and not in ORMDL3-KO cells. Thus, ORMDL proteins may have a complex, multifaceted role in the biosynthesis and regulation of cellular sphingolipids.
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spelling pubmed-81678242021-06-05 CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism Green, Christopher D. Weigel, Cynthia Oyeniran, Clement James, Briana N. Davis, Deanna Mahawar, Usha Newton, Jason Wattenberg, Binks W. Maceyka, Michael Spiegel, Sarah J Lipid Res Research Article The serine palmitoyltransferase (SPT) complex catalyzes the rate-limiting step in the de novo biosynthesis of ceramides, the precursors of sphingolipids. The mammalian ORMDL isoforms (ORMDL1-3) are negative regulators of SPT. However, the roles of individual ORMDL isoforms are unclear. Using siRNA against individual ORMDLs, only single siORMDL3 had modest effects on dihydroceramide and ceramide levels, whereas downregulation of all three ORMDLs induced more pronounced increases. With the CRISPR/Cas9-based genome-editing strategy, we established stable single ORMDL3 KO (ORMDL3-KO) and ORMDL1/2/3 triple-KO (ORMDL-TKO) cell lines to further understand the roles of ORMDL proteins in sphingolipid biosynthesis. While ORMDL3-KO modestly increased dihydroceramide and ceramide levels, ORMDL-TKO cells had dramatic increases in the accumulation of these sphingolipid precursors. SPT activity was increased only in ORMDL-TKO cells. In addition, ORMDL-TKO but not ORMDL3-KO dramatically increased levels of galactosylceramides, glucosylceramides, and lactosylceramides, the elevated N-acyl chain distributions of which broadly correlated with the increases in ceramide species. Surprisingly, although C16:0 is the major sphingomyelin species, it was only increased in ORMDL3-KO, whereas all other N-acyl chain sphingomyelin species were significantly increased in ORMDL-TKO cells. Analysis of sphingoid bases revealed that although sphingosine was only increased 2-fold in ORMDL-TKO cells, levels of dihydrosphingosine, dihydrosphingosine-1-phosphate, and sphingosine-1-phosphate were hugely increased in ORMDL-TKO cells and not in ORMDL3-KO cells. Thus, ORMDL proteins may have a complex, multifaceted role in the biosynthesis and regulation of cellular sphingolipids. American Society for Biochemistry and Molecular Biology 2021-04-30 /pmc/articles/PMC8167824/ /pubmed/33939982 http://dx.doi.org/10.1016/j.jlr.2021.100082 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Green, Christopher D.
Weigel, Cynthia
Oyeniran, Clement
James, Briana N.
Davis, Deanna
Mahawar, Usha
Newton, Jason
Wattenberg, Binks W.
Maceyka, Michael
Spiegel, Sarah
CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title_full CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title_fullStr CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title_full_unstemmed CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title_short CRISPR/Cas9 deletion of ORMDLs reveals complexity in sphingolipid metabolism
title_sort crispr/cas9 deletion of ormdls reveals complexity in sphingolipid metabolism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8167824/
https://www.ncbi.nlm.nih.gov/pubmed/33939982
http://dx.doi.org/10.1016/j.jlr.2021.100082
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