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Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways

The SERPINA1 gene encodes alpha1-antitrypsin (AAT), an acute phase glycoprotein and serine protease inhibitor that is mainly (80–90%) produced in the liver. Point mutations in the SERPINA1 gene can lead to the misfolding, intracellular accumulation, and deficiency of circulating AAT protein, increas...

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Autores principales: Meghadri, Sri Harsha, Martinez-Delgado, Beatriz, Ostermann, Lena, Gomez-Mariano, Gema, Perez-Luz, Sara, Tumpara, Srinu, Wrenger, Sabine, DeLuca, David S., Maus, Ulrich A., Welte, Tobias, Janciauskiene, Sabina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499171/
https://www.ncbi.nlm.nih.gov/pubmed/36142337
http://dx.doi.org/10.3390/ijms231810425
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author Meghadri, Sri Harsha
Martinez-Delgado, Beatriz
Ostermann, Lena
Gomez-Mariano, Gema
Perez-Luz, Sara
Tumpara, Srinu
Wrenger, Sabine
DeLuca, David S.
Maus, Ulrich A.
Welte, Tobias
Janciauskiene, Sabina
author_facet Meghadri, Sri Harsha
Martinez-Delgado, Beatriz
Ostermann, Lena
Gomez-Mariano, Gema
Perez-Luz, Sara
Tumpara, Srinu
Wrenger, Sabine
DeLuca, David S.
Maus, Ulrich A.
Welte, Tobias
Janciauskiene, Sabina
author_sort Meghadri, Sri Harsha
collection PubMed
description The SERPINA1 gene encodes alpha1-antitrypsin (AAT), an acute phase glycoprotein and serine protease inhibitor that is mainly (80–90%) produced in the liver. Point mutations in the SERPINA1 gene can lead to the misfolding, intracellular accumulation, and deficiency of circulating AAT protein, increasing the risk of developing chronic liver diseases or chronic obstructive pulmonary disease. Currently, siRNA technology can knock down the SERPINA1 gene and limit defective AAT production. How this latter affects other liver genes is unknown. Livers were taken from age- and sex-matched C57BL/6 wild-type (WT) and Serpina1 knockout mice (KO) aged from 8 to 14 weeks, all lacking the five serpin A1a-e paralogues. Total RNA was isolated and RNA sequencing, and transcriptome analysis was performed. The knockout of the Serpina1 gene in mice changed inflammatory, lipid metabolism, and cholesterol metabolism-related gene expression in the liver. Independent single-cell sequencing data of WT mice verified the involvement of Serpina1 in cholesterol metabolism. Our results from mice livers suggested that designing therapeutic strategies for the knockout of the SERPINA1 gene in humans must account for potential perturbations of key metabolic pathways and consequent mitigation of side effects.
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spelling pubmed-94991712022-09-23 Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways Meghadri, Sri Harsha Martinez-Delgado, Beatriz Ostermann, Lena Gomez-Mariano, Gema Perez-Luz, Sara Tumpara, Srinu Wrenger, Sabine DeLuca, David S. Maus, Ulrich A. Welte, Tobias Janciauskiene, Sabina Int J Mol Sci Article The SERPINA1 gene encodes alpha1-antitrypsin (AAT), an acute phase glycoprotein and serine protease inhibitor that is mainly (80–90%) produced in the liver. Point mutations in the SERPINA1 gene can lead to the misfolding, intracellular accumulation, and deficiency of circulating AAT protein, increasing the risk of developing chronic liver diseases or chronic obstructive pulmonary disease. Currently, siRNA technology can knock down the SERPINA1 gene and limit defective AAT production. How this latter affects other liver genes is unknown. Livers were taken from age- and sex-matched C57BL/6 wild-type (WT) and Serpina1 knockout mice (KO) aged from 8 to 14 weeks, all lacking the five serpin A1a-e paralogues. Total RNA was isolated and RNA sequencing, and transcriptome analysis was performed. The knockout of the Serpina1 gene in mice changed inflammatory, lipid metabolism, and cholesterol metabolism-related gene expression in the liver. Independent single-cell sequencing data of WT mice verified the involvement of Serpina1 in cholesterol metabolism. Our results from mice livers suggested that designing therapeutic strategies for the knockout of the SERPINA1 gene in humans must account for potential perturbations of key metabolic pathways and consequent mitigation of side effects. MDPI 2022-09-09 /pmc/articles/PMC9499171/ /pubmed/36142337 http://dx.doi.org/10.3390/ijms231810425 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
Meghadri, Sri Harsha
Martinez-Delgado, Beatriz
Ostermann, Lena
Gomez-Mariano, Gema
Perez-Luz, Sara
Tumpara, Srinu
Wrenger, Sabine
DeLuca, David S.
Maus, Ulrich A.
Welte, Tobias
Janciauskiene, Sabina
Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title_full Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title_fullStr Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title_full_unstemmed Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title_short Loss of Serpina1 in Mice Leads to Altered Gene Expression in Inflammatory and Metabolic Pathways
title_sort loss of serpina1 in mice leads to altered gene expression in inflammatory and metabolic pathways
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499171/
https://www.ncbi.nlm.nih.gov/pubmed/36142337
http://dx.doi.org/10.3390/ijms231810425
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