Implantation of CPT1AM-expressing adipocytes reduces obesity and glucose intolerance in mice
Author
Publication date
2023-05ISSN
1096-7176
Abstract
Obesity and its associated metabolic comorbidities are a rising global health and social issue, with novel therapeutic approaches urgently needed. Adipose tissue plays a key role in the regulation of energy balance and adipose tissue-derived mesenchymal stem cells (AT-MSCs) have gained great interest in cell therapy. Carnitine palmitoyltransferase 1A (CPT1A) is the gatekeeper enzyme for mitochondrial fatty acid oxidation. Here, we aimed to generate adipocytes expressing a constitutively active CPT1A form (CPT1AM) that can improve the obese phenotype in mice after their implantation. AT-MSCs were differentiated into mature adipocytes, subjected to lentivirus-mediated expression of CPT1AM or the GFP control, and subcutaneously implanted into mice fed a high-fat diet (HFD). CPT1AM-implanted mice showed lower body weight, hepatic steatosis and serum insulin and cholesterol levels alongside improved glucose tolerance. HFD-induced increases in adipose tissue hypertrophy, fibrosis, inflammation, endoplasmic reticulum stress and apoptosis were reduced in CPT1AM-implanted mice. In addition, the expression of mitochondrial respiratory chain complexes was enhanced in the adipose tissue of CPT1AM-implanted mice. Our results demonstrate that implantation of CPT1AM-expressing AT-MSC-derived adipocytes into HFD-fed mice improves the obese metabolic phenotype, supporting the future clinical use of this ex vivo gene therapy approach.
Document Type
Article
Document version
Published version
Language
English
Subject (CDU)
61 - Medical sciences
Keywords
Pages
17
Publisher
Elsevier
Collection
77
Is part of
Metabolic Engineering
Citation
Soler Vázquez, M. Carmen; Romero, María del Mar; Todorcevic, Marijana [et al.]. Implantation of CPT1AM-expressing adipocytes reduces obesity and glucose intolerance in mice. Metabolic Engineering, 2023, 77, 256-272. Disponible en: <https://www.sciencedirect.com/science/article/pii/S1096717623000630?via%3Dihub>. Fecha de acceso: 2 may. 2023. DOI: 10.1016/j.ymben.2023.04.010
Grant agreement number
info:eu-repo/grantAgreement/ES/MINECO/SAF2017-83813-C3-1-R
info:eu-repo/grantAgreement/ES/MINECO/PID2020-114953RB-C21
info:eu-repo/grantAgreement/ES/MINECO/PID2019-108792GB-I00
Note
This study was supported by the Spanish Ministry of Science and Innovation (MCIN/AEI) (SAF2017-83813-C3-1-R and PID2020-114953RB-C21 to LH and DS and PID2019-108792GB-I00 supported by MCIN/AEI/10.13039/501100011033 and PDC2021-121051-I00 to AC, co-funded by the European Regional Development Fund [ERDF]), the Biomedical Research Centre in Pathophysiology of Obesity and Nutrition (CIBEROBN) (Grant CB06/03/0001 to LH), the Merck Health Foundation (to LH), the Government of Catalonia (2017SGR278 to DS and 2021SGR00367 to LH), the ERC-2020-PoC to AC, the Marato ´ de TV3 Foundation (201627–30 to DS and 202012–32 to AC) and FIS PI21/01523 (to VLl-C), from Fundacion ´ BBVA Ayudas a equipos de inves tigacion ´ 2019 (“Translational Molecular Imaging for Detection of Cholesterol Entrapment in the Vasculature with 68Ga-labeled LRP1-derived Peptides” to VLl-C). VLl-C and JCE-G are part of CIBER Enfer medades Cardiovasculares (CIBERCV; CB16/11/00276) and CIBERDEM (CB07/08/0016), respectively, run by the Instituto de Salud Carlos III. MS-V is a recipient of the Ajut de Personal Investigador Predoctoral en Formació (APIF) doctoral fellowship from the University of Barcelona. AC is a recipient of an ICREA “Academia” Award (Generalitat de Catalunya). AB-A is a fellow granted by the Program (FI19/00205) Contratos predoctorales de formación de investigación en salud_from the Instituto de Salud Carlos III (ISCIII) and co-financed with ERDFs. The authors thank Senda Jim´enez-Delgado for helping with the molecular work.
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- Ciències de la Salut [952]
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Under a Creative Commons license.
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