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Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome

RATIONALE: Acute respiratory distress syndrome (ARDS) is a lethal complication of severe bacterial pneumonia due to the inability to dampen overexuberant immune responses without compromising pathogen clearance. Both of these processes involve tissue-resident and bone marrow (BM)–recruited macrophag...

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Autores principales: Wang, Li-Tzu, Yen, B Linju, Wang, Hsiu-Huan, Chao, Ying-Yin, Lee, Wei, Huang, Li-Yueh, Chiu, Sheng-Kang, Siu, L. Kristopher, Liu, Ko-Jiunn, Sytwu, Huey-Kang, Yen, Men-Luh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BMJ Publishing Group 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10176360/
https://www.ncbi.nlm.nih.gov/pubmed/35450943
http://dx.doi.org/10.1136/thoraxjnl-2021-217928
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author Wang, Li-Tzu
Yen, B Linju
Wang, Hsiu-Huan
Chao, Ying-Yin
Lee, Wei
Huang, Li-Yueh
Chiu, Sheng-Kang
Siu, L. Kristopher
Liu, Ko-Jiunn
Sytwu, Huey-Kang
Yen, Men-Luh
author_facet Wang, Li-Tzu
Yen, B Linju
Wang, Hsiu-Huan
Chao, Ying-Yin
Lee, Wei
Huang, Li-Yueh
Chiu, Sheng-Kang
Siu, L. Kristopher
Liu, Ko-Jiunn
Sytwu, Huey-Kang
Yen, Men-Luh
author_sort Wang, Li-Tzu
collection PubMed
description RATIONALE: Acute respiratory distress syndrome (ARDS) is a lethal complication of severe bacterial pneumonia due to the inability to dampen overexuberant immune responses without compromising pathogen clearance. Both of these processes involve tissue-resident and bone marrow (BM)–recruited macrophage (MΦ) populations which can be polarised to have divergent functions. Surprisingly, despite the known immunomodulatory properties of mesenchymal stem cells (MSCs), simultaneous interactions with tissue-resident and recruited BMMΦ populations are largely unexplored. OBJECTIVES: We assessed the therapeutic use of human placental MSCs (PMSCs) in severe bacterial pneumonia with elucidation of the roles of resident alveolar MΦs (AMΦs) and BMMΦs. METHODS: We developed a lethal, murine pneumonia model using intratracheal infection of a clinically relevant Klebsiella pneumoniae (KP) strain with subsequent intravenous human PMSC treatment. Pulmonary AMΦ and recruited BMMΦ analyses, histological evaluation, bacterial clearance and mice survival were assessed. To elucidate the role of resident AMΦs in improving outcome, we performed AMΦ depletion in the KP-pneumonia model with intratracheal clodronate pretreatment. MEASUREMENTS AND MAIN RESULTS: Human PMSC treatment decreased tissue injury and improved survival of severe KP-pneumonia mice by decreasing the presence and function of recruited M1 BMMΦ while preserving M2 AMΦs and enhancing their antibacterial functions. Interestingly, PMSC therapy failed to rescue AMΦ-depleted mice with KP pneumonia, and PMSC-secreted IL-1β was identified as critical in increasing AMΦ antibacterial activities to significantly improve pathogen clearance—especially bacteraemia—and survival. CONCLUSIONS: Human PMSC treatment preferentially rescued resident M2 AMΦs over recruited M1 BMMΦs with overall M2 polarisation to improve KP-related ARDS survival.
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spelling pubmed-101763602023-05-13 Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome Wang, Li-Tzu Yen, B Linju Wang, Hsiu-Huan Chao, Ying-Yin Lee, Wei Huang, Li-Yueh Chiu, Sheng-Kang Siu, L. Kristopher Liu, Ko-Jiunn Sytwu, Huey-Kang Yen, Men-Luh Thorax Respiratory Infection RATIONALE: Acute respiratory distress syndrome (ARDS) is a lethal complication of severe bacterial pneumonia due to the inability to dampen overexuberant immune responses without compromising pathogen clearance. Both of these processes involve tissue-resident and bone marrow (BM)–recruited macrophage (MΦ) populations which can be polarised to have divergent functions. Surprisingly, despite the known immunomodulatory properties of mesenchymal stem cells (MSCs), simultaneous interactions with tissue-resident and recruited BMMΦ populations are largely unexplored. OBJECTIVES: We assessed the therapeutic use of human placental MSCs (PMSCs) in severe bacterial pneumonia with elucidation of the roles of resident alveolar MΦs (AMΦs) and BMMΦs. METHODS: We developed a lethal, murine pneumonia model using intratracheal infection of a clinically relevant Klebsiella pneumoniae (KP) strain with subsequent intravenous human PMSC treatment. Pulmonary AMΦ and recruited BMMΦ analyses, histological evaluation, bacterial clearance and mice survival were assessed. To elucidate the role of resident AMΦs in improving outcome, we performed AMΦ depletion in the KP-pneumonia model with intratracheal clodronate pretreatment. MEASUREMENTS AND MAIN RESULTS: Human PMSC treatment decreased tissue injury and improved survival of severe KP-pneumonia mice by decreasing the presence and function of recruited M1 BMMΦ while preserving M2 AMΦs and enhancing their antibacterial functions. Interestingly, PMSC therapy failed to rescue AMΦ-depleted mice with KP pneumonia, and PMSC-secreted IL-1β was identified as critical in increasing AMΦ antibacterial activities to significantly improve pathogen clearance—especially bacteraemia—and survival. CONCLUSIONS: Human PMSC treatment preferentially rescued resident M2 AMΦs over recruited M1 BMMΦs with overall M2 polarisation to improve KP-related ARDS survival. BMJ Publishing Group 2023-05 2022-04-21 /pmc/articles/PMC10176360/ /pubmed/35450943 http://dx.doi.org/10.1136/thoraxjnl-2021-217928 Text en © Author(s) (or their employer(s)) 2023. Re-use permitted under CC BY-NC. No commercial re-use. See rights and permissions. Published by BMJ. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited, appropriate credit is given, any changes made indicated, and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Respiratory Infection
Wang, Li-Tzu
Yen, B Linju
Wang, Hsiu-Huan
Chao, Ying-Yin
Lee, Wei
Huang, Li-Yueh
Chiu, Sheng-Kang
Siu, L. Kristopher
Liu, Ko-Jiunn
Sytwu, Huey-Kang
Yen, Men-Luh
Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title_full Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title_fullStr Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title_full_unstemmed Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title_short Placental mesenchymal stem cells boost M2 alveolar over M1 bone marrow macrophages via IL-1β in Klebsiella-mediated acute respiratory distress syndrome
title_sort placental mesenchymal stem cells boost m2 alveolar over m1 bone marrow macrophages via il-1β in klebsiella-mediated acute respiratory distress syndrome
topic Respiratory Infection
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10176360/
https://www.ncbi.nlm.nih.gov/pubmed/35450943
http://dx.doi.org/10.1136/thoraxjnl-2021-217928
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