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Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice

Deficiency of glucose-6-phosphate dehydrogenase (G6PD) is the single most common enzymopathy, present in approximately 400 million humans (approximately 5%). Its prevalence is hypothesized to be due to conferring resistance to malaria. However, G6PD deficiency also results in hemolytic sequelae from...

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Autores principales: D’Alessandro, Angelo, Howie, Heather L., Hay, Ariel M., Dziewulska, Karolina H., Brown, Benjamin C., Wither, Matthew J., Karafin, Matthew, Stone, Elizabeth F., Spitalnik, Steven L., Hod, Eldad A., Francis, Richard O., Fu, Xiaoyun, Thomas, Tiffany, Zimring, James C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410095/
https://www.ncbi.nlm.nih.gov/pubmed/34138756
http://dx.doi.org/10.1172/jci.insight.147056
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author D’Alessandro, Angelo
Howie, Heather L.
Hay, Ariel M.
Dziewulska, Karolina H.
Brown, Benjamin C.
Wither, Matthew J.
Karafin, Matthew
Stone, Elizabeth F.
Spitalnik, Steven L.
Hod, Eldad A.
Francis, Richard O.
Fu, Xiaoyun
Thomas, Tiffany
Zimring, James C.
author_facet D’Alessandro, Angelo
Howie, Heather L.
Hay, Ariel M.
Dziewulska, Karolina H.
Brown, Benjamin C.
Wither, Matthew J.
Karafin, Matthew
Stone, Elizabeth F.
Spitalnik, Steven L.
Hod, Eldad A.
Francis, Richard O.
Fu, Xiaoyun
Thomas, Tiffany
Zimring, James C.
author_sort D’Alessandro, Angelo
collection PubMed
description Deficiency of glucose-6-phosphate dehydrogenase (G6PD) is the single most common enzymopathy, present in approximately 400 million humans (approximately 5%). Its prevalence is hypothesized to be due to conferring resistance to malaria. However, G6PD deficiency also results in hemolytic sequelae from oxidant stress. Moreover, G6PD deficiency is associated with kidney disease, diabetes, pulmonary hypertension, immunological defects, and neurodegenerative diseases. To date, the only available mouse models have decreased levels of WT stable G6PD caused by promoter mutations. However, human G6PD mutations are missense mutations that result in decreased enzymatic stability. As such, this results in very low activity in red blood cells (RBCs) that cannot synthesize new protein. To generate a more accurate model, the human sequence for a severe form of G6PD deficiency, Med(-), was knocked into the murine G6PD locus. As predicted, G6PD levels were extremely low in RBCs, and deficient mice had increased hemolytic sequelae to oxidant stress. Nonerythroid organs had metabolic changes consistent with mild G6PD deficiency, consistent with what has been observed in humans. Juxtaposition of G6PD-deficient and WT mice revealed altered lipid metabolism in multiple organ systems. Together, these findings both establish a mouse model of G6PD deficiency that more accurately reflects human G6PD deficiency and advance our basic understanding of altered metabolism in this setting.
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spelling pubmed-84100952021-09-07 Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice D’Alessandro, Angelo Howie, Heather L. Hay, Ariel M. Dziewulska, Karolina H. Brown, Benjamin C. Wither, Matthew J. Karafin, Matthew Stone, Elizabeth F. Spitalnik, Steven L. Hod, Eldad A. Francis, Richard O. Fu, Xiaoyun Thomas, Tiffany Zimring, James C. JCI Insight Research Article Deficiency of glucose-6-phosphate dehydrogenase (G6PD) is the single most common enzymopathy, present in approximately 400 million humans (approximately 5%). Its prevalence is hypothesized to be due to conferring resistance to malaria. However, G6PD deficiency also results in hemolytic sequelae from oxidant stress. Moreover, G6PD deficiency is associated with kidney disease, diabetes, pulmonary hypertension, immunological defects, and neurodegenerative diseases. To date, the only available mouse models have decreased levels of WT stable G6PD caused by promoter mutations. However, human G6PD mutations are missense mutations that result in decreased enzymatic stability. As such, this results in very low activity in red blood cells (RBCs) that cannot synthesize new protein. To generate a more accurate model, the human sequence for a severe form of G6PD deficiency, Med(-), was knocked into the murine G6PD locus. As predicted, G6PD levels were extremely low in RBCs, and deficient mice had increased hemolytic sequelae to oxidant stress. Nonerythroid organs had metabolic changes consistent with mild G6PD deficiency, consistent with what has been observed in humans. Juxtaposition of G6PD-deficient and WT mice revealed altered lipid metabolism in multiple organ systems. Together, these findings both establish a mouse model of G6PD deficiency that more accurately reflects human G6PD deficiency and advance our basic understanding of altered metabolism in this setting. American Society for Clinical Investigation 2021-07-22 /pmc/articles/PMC8410095/ /pubmed/34138756 http://dx.doi.org/10.1172/jci.insight.147056 Text en © 2021 D’Alessandro et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
D’Alessandro, Angelo
Howie, Heather L.
Hay, Ariel M.
Dziewulska, Karolina H.
Brown, Benjamin C.
Wither, Matthew J.
Karafin, Matthew
Stone, Elizabeth F.
Spitalnik, Steven L.
Hod, Eldad A.
Francis, Richard O.
Fu, Xiaoyun
Thomas, Tiffany
Zimring, James C.
Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title_full Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title_fullStr Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title_full_unstemmed Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title_short Hematologic and systemic metabolic alterations due to Mediterranean class II G6PD deficiency in mice
title_sort hematologic and systemic metabolic alterations due to mediterranean class ii g6pd deficiency in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410095/
https://www.ncbi.nlm.nih.gov/pubmed/34138756
http://dx.doi.org/10.1172/jci.insight.147056
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