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Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress

In mammals, recombination activating gene 1 (RAG1) plays a crucial role in adaptive immunity, generating a vast range of immunoglobulins. Rag1 (−/−) zebrafish (Danio rerio) are viable and reach adulthood without obvious signs of infectious disease in standard nonsterile conditions, suggesting that i...

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Autores principales: Novoa, Beatriz, Pereiro, Patricia, López‐Muñoz, Azucena, Varela, Mónica, Forn‐Cuní, Gabriel, Anchelin, Monique, Dios, Sonia, Romero, Alejandro, Martinez‐López, Alicia, Medina‐Gali, Regla María, Collado, Manuel, Coll, Julio, Estepa, Amparo, Cayuela, María Luisa, Mulero, Victoriano, Figueras, Antonio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6718522/
https://www.ncbi.nlm.nih.gov/pubmed/31348603
http://dx.doi.org/10.1111/acel.13020
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author Novoa, Beatriz
Pereiro, Patricia
López‐Muñoz, Azucena
Varela, Mónica
Forn‐Cuní, Gabriel
Anchelin, Monique
Dios, Sonia
Romero, Alejandro
Martinez‐López, Alicia
Medina‐Gali, Regla María
Collado, Manuel
Coll, Julio
Estepa, Amparo
Cayuela, María Luisa
Mulero, Victoriano
Figueras, Antonio
author_facet Novoa, Beatriz
Pereiro, Patricia
López‐Muñoz, Azucena
Varela, Mónica
Forn‐Cuní, Gabriel
Anchelin, Monique
Dios, Sonia
Romero, Alejandro
Martinez‐López, Alicia
Medina‐Gali, Regla María
Collado, Manuel
Coll, Julio
Estepa, Amparo
Cayuela, María Luisa
Mulero, Victoriano
Figueras, Antonio
author_sort Novoa, Beatriz
collection PubMed
description In mammals, recombination activating gene 1 (RAG1) plays a crucial role in adaptive immunity, generating a vast range of immunoglobulins. Rag1 (−/−) zebrafish (Danio rerio) are viable and reach adulthood without obvious signs of infectious disease in standard nonsterile conditions, suggesting that innate immunity could be enhanced to compensate for the lack of adaptive immunity. By using microarray analysis, we confirmed that the expression of immunity‐ and apoptosis‐related genes was increased in the rag1 (−/−) fish. This tool also allows us to notice alterations of the DNA repair and cell cycle mechanisms in rag1 (−/−) zebrafish. Several senescence and aging markers were analyzed. In addition to the lower lifespan of rag1 (−/−) zebrafish compared to their wild‐type (wt) siblings, rag1 (−/−) showed a higher incidence of cell cycle arrest and apoptosis, a greater amount of phosphorylated histone H2AX, oxidative stress and decline of the antioxidant mechanisms, an upregulated expression and activity of senescence‐related genes and senescence‐associated β‐galactosidase, respectively, diminished telomere length, and abnormal self‐renewal and repair capacities in the retina and liver. Metabolomic analysis also demonstrated clear differences between wt and rag1 (−/−) fish, as was the deficiency of the antioxidant metabolite l‐acetylcarnitine (ALCAR) in rag1 (−/−) fish. Therefore, Rag1 activity does not seem to be limited to V(D)J recombination but is also involved in senescence and aging. Furthermore, we confirmed the senolytic effect of ABT‐263, a known senolytic compound and, for the first time, the potential in vivo senolytic activity of the antioxidant agent ALCAR, suggesting that this metabolite is essential to avoid premature aging.
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spelling pubmed-67185222019-10-01 Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress Novoa, Beatriz Pereiro, Patricia López‐Muñoz, Azucena Varela, Mónica Forn‐Cuní, Gabriel Anchelin, Monique Dios, Sonia Romero, Alejandro Martinez‐López, Alicia Medina‐Gali, Regla María Collado, Manuel Coll, Julio Estepa, Amparo Cayuela, María Luisa Mulero, Victoriano Figueras, Antonio Aging Cell Original Article In mammals, recombination activating gene 1 (RAG1) plays a crucial role in adaptive immunity, generating a vast range of immunoglobulins. Rag1 (−/−) zebrafish (Danio rerio) are viable and reach adulthood without obvious signs of infectious disease in standard nonsterile conditions, suggesting that innate immunity could be enhanced to compensate for the lack of adaptive immunity. By using microarray analysis, we confirmed that the expression of immunity‐ and apoptosis‐related genes was increased in the rag1 (−/−) fish. This tool also allows us to notice alterations of the DNA repair and cell cycle mechanisms in rag1 (−/−) zebrafish. Several senescence and aging markers were analyzed. In addition to the lower lifespan of rag1 (−/−) zebrafish compared to their wild‐type (wt) siblings, rag1 (−/−) showed a higher incidence of cell cycle arrest and apoptosis, a greater amount of phosphorylated histone H2AX, oxidative stress and decline of the antioxidant mechanisms, an upregulated expression and activity of senescence‐related genes and senescence‐associated β‐galactosidase, respectively, diminished telomere length, and abnormal self‐renewal and repair capacities in the retina and liver. Metabolomic analysis also demonstrated clear differences between wt and rag1 (−/−) fish, as was the deficiency of the antioxidant metabolite l‐acetylcarnitine (ALCAR) in rag1 (−/−) fish. Therefore, Rag1 activity does not seem to be limited to V(D)J recombination but is also involved in senescence and aging. Furthermore, we confirmed the senolytic effect of ABT‐263, a known senolytic compound and, for the first time, the potential in vivo senolytic activity of the antioxidant agent ALCAR, suggesting that this metabolite is essential to avoid premature aging. John Wiley and Sons Inc. 2019-07-26 2019-10 /pmc/articles/PMC6718522/ /pubmed/31348603 http://dx.doi.org/10.1111/acel.13020 Text en © 2019 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Novoa, Beatriz
Pereiro, Patricia
López‐Muñoz, Azucena
Varela, Mónica
Forn‐Cuní, Gabriel
Anchelin, Monique
Dios, Sonia
Romero, Alejandro
Martinez‐López, Alicia
Medina‐Gali, Regla María
Collado, Manuel
Coll, Julio
Estepa, Amparo
Cayuela, María Luisa
Mulero, Victoriano
Figueras, Antonio
Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title_full Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title_fullStr Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title_full_unstemmed Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title_short Rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
title_sort rag1 immunodeficiency‐induced early aging and senescence in zebrafish are dependent on chronic inflammation and oxidative stress
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6718522/
https://www.ncbi.nlm.nih.gov/pubmed/31348603
http://dx.doi.org/10.1111/acel.13020
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