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Transcriptomic landscapes of effective and failed liver regeneration in humans

BACKGROUND & AIMS: Although extensive experimental evidence on the process of liver regeneration exists, in humans, validation is largely missing. However, liver regeneration is critically affected by underlying liver disease. Within this project, we aimed to systematically assess early transcri...

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Autores principales: Starlinger, Patrick, Brunnthaler, Laura, McCabe, Chantal, Pereyra, David, Santol, Jonas, Steadman, Jessica, Hackl, Matthias, Skalicky, Susanna, Hackl, Hubert, Gronauer, Raphael, O’Brien, Daniel, Kain, Renate, Hirsova, Petra, Gores, Gregory J., Wang, Chen, Gruenberger, Thomas, Smoot, Rory L., Assinger, Alice
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10025111/
https://www.ncbi.nlm.nih.gov/pubmed/36950091
http://dx.doi.org/10.1016/j.jhepr.2023.100683
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author Starlinger, Patrick
Brunnthaler, Laura
McCabe, Chantal
Pereyra, David
Santol, Jonas
Steadman, Jessica
Hackl, Matthias
Skalicky, Susanna
Hackl, Hubert
Gronauer, Raphael
O’Brien, Daniel
Kain, Renate
Hirsova, Petra
Gores, Gregory J.
Wang, Chen
Gruenberger, Thomas
Smoot, Rory L.
Assinger, Alice
author_facet Starlinger, Patrick
Brunnthaler, Laura
McCabe, Chantal
Pereyra, David
Santol, Jonas
Steadman, Jessica
Hackl, Matthias
Skalicky, Susanna
Hackl, Hubert
Gronauer, Raphael
O’Brien, Daniel
Kain, Renate
Hirsova, Petra
Gores, Gregory J.
Wang, Chen
Gruenberger, Thomas
Smoot, Rory L.
Assinger, Alice
author_sort Starlinger, Patrick
collection PubMed
description BACKGROUND & AIMS: Although extensive experimental evidence on the process of liver regeneration exists, in humans, validation is largely missing. However, liver regeneration is critically affected by underlying liver disease. Within this project, we aimed to systematically assess early transcriptional changes during liver regeneration in humans and further assess how these processes differ in people with dysfunctional liver regeneration. METHODS: Blood samples of 154 patients and intraoperative tissue samples of 46 patients undergoing liver resection were collected and classified with regard to dysfunctional postoperative liver regeneration. Of those, a matched cohort of 21 patients were used for RNA sequencing. Samples were assessed for circulating cytokines, gene expression dynamics, intrahepatic neutrophil accumulation, and spatial transcriptomics. RESULTS: Individuals with dysfunctional liver regeneration demonstrated an aggravated transcriptional inflammatory response with higher intracellular adhesion molecule-1 induction. Increased induction of this critical leukocyte adhesion molecule was associated with increased intrahepatic neutrophil accumulation and activation upon induction of liver regeneration in individuals with dysfunctional liver regeneration. Comparing baseline gene expression profiles in individuals with and without dysfunctional liver regeneration, we found that dual-specificity phosphatase 4 (DUSP4) expression, a known critical regulator of intracellular adhesion molecule-1 expression in endothelial cells, was markedly reduced in patients with dysfunctional liver regeneration. Mimicking clinical risk factors for dysfunctional liver regeneration, we found liver sinusoidal endothelial cells of two liver disease models to have significantly reduced baseline levels of DUSP4. CONCLUSIONS: Exploring the landscape of early transcriptional changes of human liver regeneration, we observed that people with dysfunctional regeneration experience overwhelming intrahepatic inflammation. Subclinical liver disease might account for DUSP4 reduction in liver sinusoidal endothelial cells, which ultimately primes the liver for an aggravated inflammatory response. IMPACT AND IMPLICATIONS: Using a unique human biorepository, focused on liver regeneration (LR), we explored the landscape of circulating and tissue-level alterations associated with both functional and dysfunctional LR. In contrast to experimental animal models, people with dysfunctional LR demonstrated an aggravated transcriptional inflammatory response, higher intracellular adhesion molecule-1 (ICAM-1) induction, intrahepatic neutrophil accumulation and activation upon induction of LR. Although inflammatory responses appear rapidly after liver resection, people with dysfunctional LR have exaggerated inflammatory responses that appear to be related to decreased levels of LSEC DUSP4, challenging existing concepts of post-resectional LR.
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spelling pubmed-100251112023-03-21 Transcriptomic landscapes of effective and failed liver regeneration in humans Starlinger, Patrick Brunnthaler, Laura McCabe, Chantal Pereyra, David Santol, Jonas Steadman, Jessica Hackl, Matthias Skalicky, Susanna Hackl, Hubert Gronauer, Raphael O’Brien, Daniel Kain, Renate Hirsova, Petra Gores, Gregory J. Wang, Chen Gruenberger, Thomas Smoot, Rory L. Assinger, Alice JHEP Rep Research Article BACKGROUND & AIMS: Although extensive experimental evidence on the process of liver regeneration exists, in humans, validation is largely missing. However, liver regeneration is critically affected by underlying liver disease. Within this project, we aimed to systematically assess early transcriptional changes during liver regeneration in humans and further assess how these processes differ in people with dysfunctional liver regeneration. METHODS: Blood samples of 154 patients and intraoperative tissue samples of 46 patients undergoing liver resection were collected and classified with regard to dysfunctional postoperative liver regeneration. Of those, a matched cohort of 21 patients were used for RNA sequencing. Samples were assessed for circulating cytokines, gene expression dynamics, intrahepatic neutrophil accumulation, and spatial transcriptomics. RESULTS: Individuals with dysfunctional liver regeneration demonstrated an aggravated transcriptional inflammatory response with higher intracellular adhesion molecule-1 induction. Increased induction of this critical leukocyte adhesion molecule was associated with increased intrahepatic neutrophil accumulation and activation upon induction of liver regeneration in individuals with dysfunctional liver regeneration. Comparing baseline gene expression profiles in individuals with and without dysfunctional liver regeneration, we found that dual-specificity phosphatase 4 (DUSP4) expression, a known critical regulator of intracellular adhesion molecule-1 expression in endothelial cells, was markedly reduced in patients with dysfunctional liver regeneration. Mimicking clinical risk factors for dysfunctional liver regeneration, we found liver sinusoidal endothelial cells of two liver disease models to have significantly reduced baseline levels of DUSP4. CONCLUSIONS: Exploring the landscape of early transcriptional changes of human liver regeneration, we observed that people with dysfunctional regeneration experience overwhelming intrahepatic inflammation. Subclinical liver disease might account for DUSP4 reduction in liver sinusoidal endothelial cells, which ultimately primes the liver for an aggravated inflammatory response. IMPACT AND IMPLICATIONS: Using a unique human biorepository, focused on liver regeneration (LR), we explored the landscape of circulating and tissue-level alterations associated with both functional and dysfunctional LR. In contrast to experimental animal models, people with dysfunctional LR demonstrated an aggravated transcriptional inflammatory response, higher intracellular adhesion molecule-1 (ICAM-1) induction, intrahepatic neutrophil accumulation and activation upon induction of LR. Although inflammatory responses appear rapidly after liver resection, people with dysfunctional LR have exaggerated inflammatory responses that appear to be related to decreased levels of LSEC DUSP4, challenging existing concepts of post-resectional LR. Elsevier 2023-02-02 /pmc/articles/PMC10025111/ /pubmed/36950091 http://dx.doi.org/10.1016/j.jhepr.2023.100683 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
Starlinger, Patrick
Brunnthaler, Laura
McCabe, Chantal
Pereyra, David
Santol, Jonas
Steadman, Jessica
Hackl, Matthias
Skalicky, Susanna
Hackl, Hubert
Gronauer, Raphael
O’Brien, Daniel
Kain, Renate
Hirsova, Petra
Gores, Gregory J.
Wang, Chen
Gruenberger, Thomas
Smoot, Rory L.
Assinger, Alice
Transcriptomic landscapes of effective and failed liver regeneration in humans
title Transcriptomic landscapes of effective and failed liver regeneration in humans
title_full Transcriptomic landscapes of effective and failed liver regeneration in humans
title_fullStr Transcriptomic landscapes of effective and failed liver regeneration in humans
title_full_unstemmed Transcriptomic landscapes of effective and failed liver regeneration in humans
title_short Transcriptomic landscapes of effective and failed liver regeneration in humans
title_sort transcriptomic landscapes of effective and failed liver regeneration in humans
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10025111/
https://www.ncbi.nlm.nih.gov/pubmed/36950091
http://dx.doi.org/10.1016/j.jhepr.2023.100683
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