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Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis

Though biallelic variants in SLC13A5 are known to cause severe encephalopathy, the mechanism of this disease is poorly understood. SLC13A5 protein deficiency reduces citrate transport into the cell. Downstream abnormalities in fatty acid synthesis and energy generation have been described, though bi...

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Autores principales: Milosavljevic, Sofia, Glinton, Kevin E., Li, Xiqi, Medeiros, Cláudia, Gillespie, Patrick, Seavitt, John R., Graham, Brett H., Elsea, Sarah H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032242/
https://www.ncbi.nlm.nih.gov/pubmed/35448538
http://dx.doi.org/10.3390/metabo12040351
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author Milosavljevic, Sofia
Glinton, Kevin E.
Li, Xiqi
Medeiros, Cláudia
Gillespie, Patrick
Seavitt, John R.
Graham, Brett H.
Elsea, Sarah H.
author_facet Milosavljevic, Sofia
Glinton, Kevin E.
Li, Xiqi
Medeiros, Cláudia
Gillespie, Patrick
Seavitt, John R.
Graham, Brett H.
Elsea, Sarah H.
author_sort Milosavljevic, Sofia
collection PubMed
description Though biallelic variants in SLC13A5 are known to cause severe encephalopathy, the mechanism of this disease is poorly understood. SLC13A5 protein deficiency reduces citrate transport into the cell. Downstream abnormalities in fatty acid synthesis and energy generation have been described, though biochemical signs of these perturbations are inconsistent across SLC13A5 deficiency patients. To investigate SLC13A5-related disorders, we performed untargeted metabolic analyses on the liver, brain, and serum from a Slc13a5-deficient mouse model. Metabolomic data were analyzed using the connect-the-dots (CTD) methodology and were compared to plasma and CSF metabolomics from SLC13A5-deficient patients. Mice homozygous for the Slc13a5(tm1b/tm1b) null allele had perturbations in fatty acids, bile acids, and energy metabolites in all tissues examined. Further analyses demonstrated that for several of these molecules, the ratio of their relative tissue concentrations differed widely in the knockout mouse, suggesting that deficiency of Slc13a5 impacts the biosynthesis and flux of metabolites between tissues. Similar findings were observed in patient biofluids, indicating altered transport and/or flux of molecules involved in energy, fatty acid, nucleotide, and bile acid metabolism. Deficiency of SLC13A5 likely causes a broader state of metabolic dysregulation than previously recognized, particularly regarding lipid synthesis, storage, and metabolism, supporting SLC13A5 deficiency as a lipid disorder.
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spelling pubmed-90322422022-04-23 Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis Milosavljevic, Sofia Glinton, Kevin E. Li, Xiqi Medeiros, Cláudia Gillespie, Patrick Seavitt, John R. Graham, Brett H. Elsea, Sarah H. Metabolites Article Though biallelic variants in SLC13A5 are known to cause severe encephalopathy, the mechanism of this disease is poorly understood. SLC13A5 protein deficiency reduces citrate transport into the cell. Downstream abnormalities in fatty acid synthesis and energy generation have been described, though biochemical signs of these perturbations are inconsistent across SLC13A5 deficiency patients. To investigate SLC13A5-related disorders, we performed untargeted metabolic analyses on the liver, brain, and serum from a Slc13a5-deficient mouse model. Metabolomic data were analyzed using the connect-the-dots (CTD) methodology and were compared to plasma and CSF metabolomics from SLC13A5-deficient patients. Mice homozygous for the Slc13a5(tm1b/tm1b) null allele had perturbations in fatty acids, bile acids, and energy metabolites in all tissues examined. Further analyses demonstrated that for several of these molecules, the ratio of their relative tissue concentrations differed widely in the knockout mouse, suggesting that deficiency of Slc13a5 impacts the biosynthesis and flux of metabolites between tissues. Similar findings were observed in patient biofluids, indicating altered transport and/or flux of molecules involved in energy, fatty acid, nucleotide, and bile acid metabolism. Deficiency of SLC13A5 likely causes a broader state of metabolic dysregulation than previously recognized, particularly regarding lipid synthesis, storage, and metabolism, supporting SLC13A5 deficiency as a lipid disorder. MDPI 2022-04-14 /pmc/articles/PMC9032242/ /pubmed/35448538 http://dx.doi.org/10.3390/metabo12040351 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Milosavljevic, Sofia
Glinton, Kevin E.
Li, Xiqi
Medeiros, Cláudia
Gillespie, Patrick
Seavitt, John R.
Graham, Brett H.
Elsea, Sarah H.
Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title_full Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title_fullStr Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title_full_unstemmed Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title_short Untargeted Metabolomics of Slc13a5 Deficiency Reveal Critical Liver–Brain Axis for Lipid Homeostasis
title_sort untargeted metabolomics of slc13a5 deficiency reveal critical liver–brain axis for lipid homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032242/
https://www.ncbi.nlm.nih.gov/pubmed/35448538
http://dx.doi.org/10.3390/metabo12040351
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