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Targeting senescent cells alleviates obesity‐induced metabolic dysfunction

Adipose tissue inflammation and dysfunction are associated with obesity‐related insulin resistance and diabetes, but mechanisms underlying this relationship are unclear. Although senescent cells accumulate in adipose tissue of obese humans and rodents, a direct pathogenic role for these cells in the...

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Autores principales: Palmer, Allyson K., Xu, Ming, Zhu, Yi, Pirtskhalava, Tamar, Weivoda, Megan M., Hachfeld, Christine M., Prata, Larissa G., van Dijk, Theo H., Verkade, Esther, Casaclang‐Verzosa, Grace, Johnson, Kurt O., Cubro, Hajrunisa, Doornebal, Ewald J., Ogrodnik, Mikolaj, Jurk, Diana, Jensen, Michael D., Chini, Eduardo N., Miller, Jordan D., Matveyenko, Aleksey, Stout, Michael B., Schafer, Marissa J., White, Thomas A., Hickson, LaTonya J., Demaria, Marco, Garovic, Vesna, Grande, Joseph, Arriaga, Edgar A., Kuipers, Folkert, von Zglinicki, Thomas, LeBrasseur, Nathan K., Campisi, Judith, Tchkonia, Tamar, Kirkland, James L.
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/PMC6516193/
https://www.ncbi.nlm.nih.gov/pubmed/30907060
http://dx.doi.org/10.1111/acel.12950
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author Palmer, Allyson K.
Xu, Ming
Zhu, Yi
Pirtskhalava, Tamar
Weivoda, Megan M.
Hachfeld, Christine M.
Prata, Larissa G.
van Dijk, Theo H.
Verkade, Esther
Casaclang‐Verzosa, Grace
Johnson, Kurt O.
Cubro, Hajrunisa
Doornebal, Ewald J.
Ogrodnik, Mikolaj
Jurk, Diana
Jensen, Michael D.
Chini, Eduardo N.
Miller, Jordan D.
Matveyenko, Aleksey
Stout, Michael B.
Schafer, Marissa J.
White, Thomas A.
Hickson, LaTonya J.
Demaria, Marco
Garovic, Vesna
Grande, Joseph
Arriaga, Edgar A.
Kuipers, Folkert
von Zglinicki, Thomas
LeBrasseur, Nathan K.
Campisi, Judith
Tchkonia, Tamar
Kirkland, James L.
author_facet Palmer, Allyson K.
Xu, Ming
Zhu, Yi
Pirtskhalava, Tamar
Weivoda, Megan M.
Hachfeld, Christine M.
Prata, Larissa G.
van Dijk, Theo H.
Verkade, Esther
Casaclang‐Verzosa, Grace
Johnson, Kurt O.
Cubro, Hajrunisa
Doornebal, Ewald J.
Ogrodnik, Mikolaj
Jurk, Diana
Jensen, Michael D.
Chini, Eduardo N.
Miller, Jordan D.
Matveyenko, Aleksey
Stout, Michael B.
Schafer, Marissa J.
White, Thomas A.
Hickson, LaTonya J.
Demaria, Marco
Garovic, Vesna
Grande, Joseph
Arriaga, Edgar A.
Kuipers, Folkert
von Zglinicki, Thomas
LeBrasseur, Nathan K.
Campisi, Judith
Tchkonia, Tamar
Kirkland, James L.
author_sort Palmer, Allyson K.
collection PubMed
description Adipose tissue inflammation and dysfunction are associated with obesity‐related insulin resistance and diabetes, but mechanisms underlying this relationship are unclear. Although senescent cells accumulate in adipose tissue of obese humans and rodents, a direct pathogenic role for these cells in the development of diabetes remains to be demonstrated. Here, we show that reducing senescent cell burden in obese mice, either by activating drug‐inducible “suicide” genes driven by the p16(Ink4a) promoter or by treatment with senolytic agents, alleviates metabolic and adipose tissue dysfunction. These senolytic interventions improved glucose tolerance, enhanced insulin sensitivity, lowered circulating inflammatory mediators, and promoted adipogenesis in obese mice. Elimination of senescent cells also prevented the migration of transplanted monocytes into intra‐abdominal adipose tissue and reduced the number of macrophages in this tissue. In addition, microalbuminuria, renal podocyte function, and cardiac diastolic function improved with senolytic therapy. Our results implicate cellular senescence as a causal factor in obesity‐related inflammation and metabolic derangements and show that emerging senolytic agents hold promise for treating obesity‐related metabolic dysfunction and its complications.
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spelling pubmed-65161932019-06-01 Targeting senescent cells alleviates obesity‐induced metabolic dysfunction Palmer, Allyson K. Xu, Ming Zhu, Yi Pirtskhalava, Tamar Weivoda, Megan M. Hachfeld, Christine M. Prata, Larissa G. van Dijk, Theo H. Verkade, Esther Casaclang‐Verzosa, Grace Johnson, Kurt O. Cubro, Hajrunisa Doornebal, Ewald J. Ogrodnik, Mikolaj Jurk, Diana Jensen, Michael D. Chini, Eduardo N. Miller, Jordan D. Matveyenko, Aleksey Stout, Michael B. Schafer, Marissa J. White, Thomas A. Hickson, LaTonya J. Demaria, Marco Garovic, Vesna Grande, Joseph Arriaga, Edgar A. Kuipers, Folkert von Zglinicki, Thomas LeBrasseur, Nathan K. Campisi, Judith Tchkonia, Tamar Kirkland, James L. Aging Cell Original Articles Adipose tissue inflammation and dysfunction are associated with obesity‐related insulin resistance and diabetes, but mechanisms underlying this relationship are unclear. Although senescent cells accumulate in adipose tissue of obese humans and rodents, a direct pathogenic role for these cells in the development of diabetes remains to be demonstrated. Here, we show that reducing senescent cell burden in obese mice, either by activating drug‐inducible “suicide” genes driven by the p16(Ink4a) promoter or by treatment with senolytic agents, alleviates metabolic and adipose tissue dysfunction. These senolytic interventions improved glucose tolerance, enhanced insulin sensitivity, lowered circulating inflammatory mediators, and promoted adipogenesis in obese mice. Elimination of senescent cells also prevented the migration of transplanted monocytes into intra‐abdominal adipose tissue and reduced the number of macrophages in this tissue. In addition, microalbuminuria, renal podocyte function, and cardiac diastolic function improved with senolytic therapy. Our results implicate cellular senescence as a causal factor in obesity‐related inflammation and metabolic derangements and show that emerging senolytic agents hold promise for treating obesity‐related metabolic dysfunction and its complications. John Wiley and Sons Inc. 2019-03-25 2019-06 /pmc/articles/PMC6516193/ /pubmed/30907060 http://dx.doi.org/10.1111/acel.12950 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 Articles
Palmer, Allyson K.
Xu, Ming
Zhu, Yi
Pirtskhalava, Tamar
Weivoda, Megan M.
Hachfeld, Christine M.
Prata, Larissa G.
van Dijk, Theo H.
Verkade, Esther
Casaclang‐Verzosa, Grace
Johnson, Kurt O.
Cubro, Hajrunisa
Doornebal, Ewald J.
Ogrodnik, Mikolaj
Jurk, Diana
Jensen, Michael D.
Chini, Eduardo N.
Miller, Jordan D.
Matveyenko, Aleksey
Stout, Michael B.
Schafer, Marissa J.
White, Thomas A.
Hickson, LaTonya J.
Demaria, Marco
Garovic, Vesna
Grande, Joseph
Arriaga, Edgar A.
Kuipers, Folkert
von Zglinicki, Thomas
LeBrasseur, Nathan K.
Campisi, Judith
Tchkonia, Tamar
Kirkland, James L.
Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title_full Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title_fullStr Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title_full_unstemmed Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title_short Targeting senescent cells alleviates obesity‐induced metabolic dysfunction
title_sort targeting senescent cells alleviates obesity‐induced metabolic dysfunction
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6516193/
https://www.ncbi.nlm.nih.gov/pubmed/30907060
http://dx.doi.org/10.1111/acel.12950
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