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Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease

BACKGROUND & AIMS: Metabolic dysfunction-associated fatty liver disease (MAFLD) is a common complication of obesity with a hallmark feature of hepatic steatosis. Recent data from animal models of MAFLD have demonstrated substantial changes in macrophage composition in the fatty liver. In humans,...

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Autores principales: Chan, Mandy M., Daemen, Sabine, Beals, Joseph W., Terekhova, Marina, Yang, Bin Q., Fu, Christina F., He, Li, Park, Arick C., Smith, Gordon I., Razani, Babak, Byrnes, Kathleen, Beatty, Wandy L., Eckhouse, Shaina R., Eagon, J. Christopher, Ferguson, Daniel, Finck, Brian N., Klein, Samuel, Artyomov, Maxim N., Schilling, Joel D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10585307/
https://www.ncbi.nlm.nih.gov/pubmed/37869071
http://dx.doi.org/10.1016/j.jhepr.2023.100877
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author Chan, Mandy M.
Daemen, Sabine
Beals, Joseph W.
Terekhova, Marina
Yang, Bin Q.
Fu, Christina F.
He, Li
Park, Arick C.
Smith, Gordon I.
Razani, Babak
Byrnes, Kathleen
Beatty, Wandy L.
Eckhouse, Shaina R.
Eagon, J. Christopher
Ferguson, Daniel
Finck, Brian N.
Klein, Samuel
Artyomov, Maxim N.
Schilling, Joel D.
author_facet Chan, Mandy M.
Daemen, Sabine
Beals, Joseph W.
Terekhova, Marina
Yang, Bin Q.
Fu, Christina F.
He, Li
Park, Arick C.
Smith, Gordon I.
Razani, Babak
Byrnes, Kathleen
Beatty, Wandy L.
Eckhouse, Shaina R.
Eagon, J. Christopher
Ferguson, Daniel
Finck, Brian N.
Klein, Samuel
Artyomov, Maxim N.
Schilling, Joel D.
author_sort Chan, Mandy M.
collection PubMed
description BACKGROUND & AIMS: Metabolic dysfunction-associated fatty liver disease (MAFLD) is a common complication of obesity with a hallmark feature of hepatic steatosis. Recent data from animal models of MAFLD have demonstrated substantial changes in macrophage composition in the fatty liver. In humans, the relationship between liver macrophage heterogeneity and liver steatosis is less clear. METHODS: Liver tissue from 21 participants was collected at time of bariatric surgery and analysed using flow cytometry, immunofluorescence, and H&E microscopy. Single-cell RNA sequencing was also conducted on a subset of samples (n = 3). Intrahepatic triglyceride content was assessed via MRI and tissue histology. Mouse models of hepatic steatosis were used to investigate observations made from human liver tissue. RESULTS: We observed variable degrees of liver steatosis with minimal fibrosis in our participants. Single-cell RNA sequencing revealed four macrophage clusters that exist in the human fatty liver encompassing Kupffer cells and monocyte-derived macrophages (MdMs). The genes expressed in these macrophage subsets were similar to those observed in mouse models of MAFLD. Hepatic CD14(+) monocyte/macrophage number correlated with the degree of steatosis. Using mouse models of early liver steatosis, we demonstrate that recruitment of MdMs precedes Kupffer cell loss and liver damage. Electron microscopy of isolated macrophages revealed increased lipid accumulation in MdMs, and ex vivo lipid transfer experiments suggested that MdMs may serve a distinct role in lipid uptake during MAFLD. CONCLUSIONS: The human liver in MAFLD contains macrophage subsets that align well with those that appear in mouse models of fatty liver disease. Recruited myeloid cells correlate well with the degree of liver steatosis in humans. MdMs appear to participate in lipid uptake during early stages of MALFD. IMPACT AND IMPLICATIONS: Metabolic dysfunction associated fatty liver disease (MAFLD) is extremely common; however, the early inflammatory responses that occur in human disease are not well understood. In this study, we investigated macrophage heterogeneity in human livers during early MAFLD and demonstrated that similar shifts in macrophage subsets occur in human disease that are similar to those seen in preclinical models. These findings are important as they establish a translational link between mouse and human models of disease, which is important for the development and testing of new therapeutic approaches for MAFLD.
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spelling pubmed-105853072023-10-20 Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease Chan, Mandy M. Daemen, Sabine Beals, Joseph W. Terekhova, Marina Yang, Bin Q. Fu, Christina F. He, Li Park, Arick C. Smith, Gordon I. Razani, Babak Byrnes, Kathleen Beatty, Wandy L. Eckhouse, Shaina R. Eagon, J. Christopher Ferguson, Daniel Finck, Brian N. Klein, Samuel Artyomov, Maxim N. Schilling, Joel D. JHEP Rep Research Article BACKGROUND & AIMS: Metabolic dysfunction-associated fatty liver disease (MAFLD) is a common complication of obesity with a hallmark feature of hepatic steatosis. Recent data from animal models of MAFLD have demonstrated substantial changes in macrophage composition in the fatty liver. In humans, the relationship between liver macrophage heterogeneity and liver steatosis is less clear. METHODS: Liver tissue from 21 participants was collected at time of bariatric surgery and analysed using flow cytometry, immunofluorescence, and H&E microscopy. Single-cell RNA sequencing was also conducted on a subset of samples (n = 3). Intrahepatic triglyceride content was assessed via MRI and tissue histology. Mouse models of hepatic steatosis were used to investigate observations made from human liver tissue. RESULTS: We observed variable degrees of liver steatosis with minimal fibrosis in our participants. Single-cell RNA sequencing revealed four macrophage clusters that exist in the human fatty liver encompassing Kupffer cells and monocyte-derived macrophages (MdMs). The genes expressed in these macrophage subsets were similar to those observed in mouse models of MAFLD. Hepatic CD14(+) monocyte/macrophage number correlated with the degree of steatosis. Using mouse models of early liver steatosis, we demonstrate that recruitment of MdMs precedes Kupffer cell loss and liver damage. Electron microscopy of isolated macrophages revealed increased lipid accumulation in MdMs, and ex vivo lipid transfer experiments suggested that MdMs may serve a distinct role in lipid uptake during MAFLD. CONCLUSIONS: The human liver in MAFLD contains macrophage subsets that align well with those that appear in mouse models of fatty liver disease. Recruited myeloid cells correlate well with the degree of liver steatosis in humans. MdMs appear to participate in lipid uptake during early stages of MALFD. IMPACT AND IMPLICATIONS: Metabolic dysfunction associated fatty liver disease (MAFLD) is extremely common; however, the early inflammatory responses that occur in human disease are not well understood. In this study, we investigated macrophage heterogeneity in human livers during early MAFLD and demonstrated that similar shifts in macrophage subsets occur in human disease that are similar to those seen in preclinical models. These findings are important as they establish a translational link between mouse and human models of disease, which is important for the development and testing of new therapeutic approaches for MAFLD. Elsevier 2023-08-11 /pmc/articles/PMC10585307/ /pubmed/37869071 http://dx.doi.org/10.1016/j.jhepr.2023.100877 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Chan, Mandy M.
Daemen, Sabine
Beals, Joseph W.
Terekhova, Marina
Yang, Bin Q.
Fu, Christina F.
He, Li
Park, Arick C.
Smith, Gordon I.
Razani, Babak
Byrnes, Kathleen
Beatty, Wandy L.
Eckhouse, Shaina R.
Eagon, J. Christopher
Ferguson, Daniel
Finck, Brian N.
Klein, Samuel
Artyomov, Maxim N.
Schilling, Joel D.
Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title_full Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title_fullStr Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title_full_unstemmed Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title_short Steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
title_sort steatosis drives monocyte-derived macrophage accumulation in human metabolic dysfunction-associated fatty liver disease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10585307/
https://www.ncbi.nlm.nih.gov/pubmed/37869071
http://dx.doi.org/10.1016/j.jhepr.2023.100877
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