Cargando…

In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis

Phosphoglucomutase 1 (PGM1) is a key enzyme for the regulation of energy metabolism from glycogen and glycolysis, as it catalyzes the interconversion of glucose 1-phosphate and glucose 6-phosphate. PGM1 deficiency is an autosomal recessive disorder characterized by a highly heterogenous clinical spe...

Descripción completa

Detalles Bibliográficos
Autores principales: Conte, Federica, Ashikov, Angel, Mijdam, Rachel, van de Ven, Eline G. P., van Scherpenzeel, Monique, Veizaj, Raisa, Mahalleh-Yousefi, Seyed P., Post, Merel A., Huijben, Karin, Panneman, Daan M., Rodenburg, Richard J. T., Voermans, Nicol C., Garanto, Alejandro, Koopman, Werner J. H., Wessels, Hans J. C. T., Noga, Marek J., Lefeber, Dirk J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179458/
https://www.ncbi.nlm.nih.gov/pubmed/37175952
http://dx.doi.org/10.3390/ijms24098247
_version_ 1785041102661746688
author Conte, Federica
Ashikov, Angel
Mijdam, Rachel
van de Ven, Eline G. P.
van Scherpenzeel, Monique
Veizaj, Raisa
Mahalleh-Yousefi, Seyed P.
Post, Merel A.
Huijben, Karin
Panneman, Daan M.
Rodenburg, Richard J. T.
Voermans, Nicol C.
Garanto, Alejandro
Koopman, Werner J. H.
Wessels, Hans J. C. T.
Noga, Marek J.
Lefeber, Dirk J.
author_facet Conte, Federica
Ashikov, Angel
Mijdam, Rachel
van de Ven, Eline G. P.
van Scherpenzeel, Monique
Veizaj, Raisa
Mahalleh-Yousefi, Seyed P.
Post, Merel A.
Huijben, Karin
Panneman, Daan M.
Rodenburg, Richard J. T.
Voermans, Nicol C.
Garanto, Alejandro
Koopman, Werner J. H.
Wessels, Hans J. C. T.
Noga, Marek J.
Lefeber, Dirk J.
author_sort Conte, Federica
collection PubMed
description Phosphoglucomutase 1 (PGM1) is a key enzyme for the regulation of energy metabolism from glycogen and glycolysis, as it catalyzes the interconversion of glucose 1-phosphate and glucose 6-phosphate. PGM1 deficiency is an autosomal recessive disorder characterized by a highly heterogenous clinical spectrum, including hypoglycemia, cleft palate, liver dysfunction, growth delay, exercise intolerance, and dilated cardiomyopathy. Abnormal protein glycosylation has been observed in this disease. Oral supplementation with D-galactose efficiently restores protein glycosylation by replenishing the lacking pool of UDP-galactose, and rescues some symptoms, such as hypoglycemia, hepatopathy, and growth delay. However, D-galactose effects on skeletal muscle and heart symptoms remain unclear. In this study, we established an in vitro muscle model for PGM1 deficiency to investigate the role of PGM1 and the effect of D-galactose on nucleotide sugars and energy metabolism. Genome-editing of C2C12 myoblasts via CRISPR/Cas9 resulted in Pgm1 (mouse homologue of human PGM1, according to updated nomenclature) knockout clones, which showed impaired maturation to myotubes. No difference was found for steady-state levels of nucleotide sugars, while dynamic flux analysis based on (13)C6-galactose suggested a block in the use of galactose for energy production in knockout myoblasts. Subsequent analyses revealed a lower basal respiration and mitochondrial ATP production capacity in the knockout myoblasts and myotubes, which were not restored by D-galactose. In conclusion, an in vitro mouse muscle cell model has been established to study the muscle-specific metabolic mechanisms in PGM1 deficiency, which suggested that galactose was unable to restore the reduced energy production capacity.
format Online
Article
Text
id pubmed-10179458
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-101794582023-05-13 In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis Conte, Federica Ashikov, Angel Mijdam, Rachel van de Ven, Eline G. P. van Scherpenzeel, Monique Veizaj, Raisa Mahalleh-Yousefi, Seyed P. Post, Merel A. Huijben, Karin Panneman, Daan M. Rodenburg, Richard J. T. Voermans, Nicol C. Garanto, Alejandro Koopman, Werner J. H. Wessels, Hans J. C. T. Noga, Marek J. Lefeber, Dirk J. Int J Mol Sci Article Phosphoglucomutase 1 (PGM1) is a key enzyme for the regulation of energy metabolism from glycogen and glycolysis, as it catalyzes the interconversion of glucose 1-phosphate and glucose 6-phosphate. PGM1 deficiency is an autosomal recessive disorder characterized by a highly heterogenous clinical spectrum, including hypoglycemia, cleft palate, liver dysfunction, growth delay, exercise intolerance, and dilated cardiomyopathy. Abnormal protein glycosylation has been observed in this disease. Oral supplementation with D-galactose efficiently restores protein glycosylation by replenishing the lacking pool of UDP-galactose, and rescues some symptoms, such as hypoglycemia, hepatopathy, and growth delay. However, D-galactose effects on skeletal muscle and heart symptoms remain unclear. In this study, we established an in vitro muscle model for PGM1 deficiency to investigate the role of PGM1 and the effect of D-galactose on nucleotide sugars and energy metabolism. Genome-editing of C2C12 myoblasts via CRISPR/Cas9 resulted in Pgm1 (mouse homologue of human PGM1, according to updated nomenclature) knockout clones, which showed impaired maturation to myotubes. No difference was found for steady-state levels of nucleotide sugars, while dynamic flux analysis based on (13)C6-galactose suggested a block in the use of galactose for energy production in knockout myoblasts. Subsequent analyses revealed a lower basal respiration and mitochondrial ATP production capacity in the knockout myoblasts and myotubes, which were not restored by D-galactose. In conclusion, an in vitro mouse muscle cell model has been established to study the muscle-specific metabolic mechanisms in PGM1 deficiency, which suggested that galactose was unable to restore the reduced energy production capacity. MDPI 2023-05-04 /pmc/articles/PMC10179458/ /pubmed/37175952 http://dx.doi.org/10.3390/ijms24098247 Text en © 2023 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
Conte, Federica
Ashikov, Angel
Mijdam, Rachel
van de Ven, Eline G. P.
van Scherpenzeel, Monique
Veizaj, Raisa
Mahalleh-Yousefi, Seyed P.
Post, Merel A.
Huijben, Karin
Panneman, Daan M.
Rodenburg, Richard J. T.
Voermans, Nicol C.
Garanto, Alejandro
Koopman, Werner J. H.
Wessels, Hans J. C. T.
Noga, Marek J.
Lefeber, Dirk J.
In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title_full In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title_fullStr In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title_full_unstemmed In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title_short In Vitro Skeletal Muscle Model of PGM1 Deficiency Reveals Altered Energy Homeostasis
title_sort in vitro skeletal muscle model of pgm1 deficiency reveals altered energy homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179458/
https://www.ncbi.nlm.nih.gov/pubmed/37175952
http://dx.doi.org/10.3390/ijms24098247
work_keys_str_mv AT contefederica invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT ashikovangel invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT mijdamrachel invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT vandevenelinegp invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT vanscherpenzeelmonique invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT veizajraisa invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT mahallehyousefiseyedp invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT postmerela invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT huijbenkarin invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT pannemandaanm invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT rodenburgrichardjt invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT voermansnicolc invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT garantoalejandro invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT koopmanwernerjh invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT wesselshansjct invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT nogamarekj invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis
AT lefeberdirkj invitroskeletalmusclemodelofpgm1deficiencyrevealsalteredenergyhomeostasis