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CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs

Anti-inflammatory therapies have the potential to become an effective treatment for obesity-related diseases. However, the huge gap of immune system between human and rodent leads to limitations of drug discovery. This work aims at constructing a transgenic pig model with higher risk of metabolic di...

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Autores principales: Zhang, Kaiyi, Tao, Cong, Xu, Jianping, Ruan, Jinxue, Xia, Jihan, Zhu, Wenjuan, Xin, Leilei, Ye, Huaqiong, Xie, Ning, Xia, Boce, Li, Chenxiao, Wu, Tianwen, Wang, Yanfang, Schroyen, Martine, Xiao, Xinhua, Fan, Jiangao, Yang, Shulin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8311854/
https://www.ncbi.nlm.nih.gov/pubmed/34322121
http://dx.doi.org/10.3389/fimmu.2021.690069
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author Zhang, Kaiyi
Tao, Cong
Xu, Jianping
Ruan, Jinxue
Xia, Jihan
Zhu, Wenjuan
Xin, Leilei
Ye, Huaqiong
Xie, Ning
Xia, Boce
Li, Chenxiao
Wu, Tianwen
Wang, Yanfang
Schroyen, Martine
Xiao, Xinhua
Fan, Jiangao
Yang, Shulin
author_facet Zhang, Kaiyi
Tao, Cong
Xu, Jianping
Ruan, Jinxue
Xia, Jihan
Zhu, Wenjuan
Xin, Leilei
Ye, Huaqiong
Xie, Ning
Xia, Boce
Li, Chenxiao
Wu, Tianwen
Wang, Yanfang
Schroyen, Martine
Xiao, Xinhua
Fan, Jiangao
Yang, Shulin
author_sort Zhang, Kaiyi
collection PubMed
description Anti-inflammatory therapies have the potential to become an effective treatment for obesity-related diseases. However, the huge gap of immune system between human and rodent leads to limitations of drug discovery. This work aims at constructing a transgenic pig model with higher risk of metabolic diseases and outlining the immune responses at the early stage of metaflammation by transcriptomic strategy. We used CRISPR/Cas9 techniques to targeted knock-in three humanized disease risk genes, GIPR(dn), hIAPP and PNPLA3(I148M). Transgenic effect increased the risk of metabolic disorders. Triple-transgenic pigs with short-term diet intervention showed early symptoms of type 2 diabetes, including glucose intolerance, pancreatic lipid infiltration, islet hypertrophy, hepatic lobular inflammation and adipose tissue inflammation. Molecular pathways related to CD8(+) T cell function were significantly activated in the liver and visceral adipose samples from triple-transgenic pigs, including antigen processing and presentation, T-cell receptor signaling, co-stimulation, cytotoxicity, and cytokine and chemokine secretion. The similar pro-inflammatory signaling in liver and visceral adipose tissue indicated that there might be a potential immune crosstalk between the two tissues. Moreover, genes that functionally related to liver antioxidant activity, mitochondrial function and extracellular matrix showed distinct expression between the two groups, indicating metabolic stress in transgenic pigs’ liver samples. We confirmed that triple-transgenic pigs had high coincidence with human metabolic diseases, especially in the scope of inflammatory signaling at early stage metaflammation. Taken together, this study provides a valuable large animal model for the clinical study of metaflammation and metabolic diseases.
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spelling pubmed-83118542021-07-27 CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs Zhang, Kaiyi Tao, Cong Xu, Jianping Ruan, Jinxue Xia, Jihan Zhu, Wenjuan Xin, Leilei Ye, Huaqiong Xie, Ning Xia, Boce Li, Chenxiao Wu, Tianwen Wang, Yanfang Schroyen, Martine Xiao, Xinhua Fan, Jiangao Yang, Shulin Front Immunol Immunology Anti-inflammatory therapies have the potential to become an effective treatment for obesity-related diseases. However, the huge gap of immune system between human and rodent leads to limitations of drug discovery. This work aims at constructing a transgenic pig model with higher risk of metabolic diseases and outlining the immune responses at the early stage of metaflammation by transcriptomic strategy. We used CRISPR/Cas9 techniques to targeted knock-in three humanized disease risk genes, GIPR(dn), hIAPP and PNPLA3(I148M). Transgenic effect increased the risk of metabolic disorders. Triple-transgenic pigs with short-term diet intervention showed early symptoms of type 2 diabetes, including glucose intolerance, pancreatic lipid infiltration, islet hypertrophy, hepatic lobular inflammation and adipose tissue inflammation. Molecular pathways related to CD8(+) T cell function were significantly activated in the liver and visceral adipose samples from triple-transgenic pigs, including antigen processing and presentation, T-cell receptor signaling, co-stimulation, cytotoxicity, and cytokine and chemokine secretion. The similar pro-inflammatory signaling in liver and visceral adipose tissue indicated that there might be a potential immune crosstalk between the two tissues. Moreover, genes that functionally related to liver antioxidant activity, mitochondrial function and extracellular matrix showed distinct expression between the two groups, indicating metabolic stress in transgenic pigs’ liver samples. We confirmed that triple-transgenic pigs had high coincidence with human metabolic diseases, especially in the scope of inflammatory signaling at early stage metaflammation. Taken together, this study provides a valuable large animal model for the clinical study of metaflammation and metabolic diseases. Frontiers Media S.A. 2021-07-12 /pmc/articles/PMC8311854/ /pubmed/34322121 http://dx.doi.org/10.3389/fimmu.2021.690069 Text en Copyright © 2021 Zhang, Tao, Xu, Ruan, Xia, Zhu, Xin, Ye, Xie, Xia, Li, Wu, Wang, Schroyen, Xiao, Fan and Yang https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Zhang, Kaiyi
Tao, Cong
Xu, Jianping
Ruan, Jinxue
Xia, Jihan
Zhu, Wenjuan
Xin, Leilei
Ye, Huaqiong
Xie, Ning
Xia, Boce
Li, Chenxiao
Wu, Tianwen
Wang, Yanfang
Schroyen, Martine
Xiao, Xinhua
Fan, Jiangao
Yang, Shulin
CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title_full CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title_fullStr CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title_full_unstemmed CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title_short CD8(+) T Cells Involved in Metabolic Inflammation in Visceral Adipose Tissue and Liver of Transgenic Pigs
title_sort cd8(+) t cells involved in metabolic inflammation in visceral adipose tissue and liver of transgenic pigs
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8311854/
https://www.ncbi.nlm.nih.gov/pubmed/34322121
http://dx.doi.org/10.3389/fimmu.2021.690069
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