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Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption

Fecal microbiota transplantation (FMT) is an effective means of modulating gut microbiota for the treatment of many diseases, including Clostridioides difficile infections. The gut-spleen axis has been established, and this is involved in the development and function of the spleen. However, it is no...

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Autores principales: Fang, Hanhan, Feng, Xiaohui, Xu, Tao, Zhong, Ruqing, Lu, Dongxin, Zhang, Hongfu, Shen, Wei, Zhao, Yong, Chen, Liang, Wang, Junjie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942571/
https://www.ncbi.nlm.nih.gov/pubmed/36511706
http://dx.doi.org/10.1128/msphere.00581-22
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author Fang, Hanhan
Feng, Xiaohui
Xu, Tao
Zhong, Ruqing
Lu, Dongxin
Zhang, Hongfu
Shen, Wei
Zhao, Yong
Chen, Liang
Wang, Junjie
author_facet Fang, Hanhan
Feng, Xiaohui
Xu, Tao
Zhong, Ruqing
Lu, Dongxin
Zhang, Hongfu
Shen, Wei
Zhao, Yong
Chen, Liang
Wang, Junjie
author_sort Fang, Hanhan
collection PubMed
description Fecal microbiota transplantation (FMT) is an effective means of modulating gut microbiota for the treatment of many diseases, including Clostridioides difficile infections. The gut-spleen axis has been established, and this is involved in the development and function of the spleen. However, it is not understood whether gut microbiota can be used to improve spleen function, especially in spleens disrupted by a disease or an anti-cancer treatment. In the current investigation, we established that alginate oligosaccharide (AOS)-improved gut microbiota (A10-FMT) can rescue anticancer drug busulfan-disrupted spleen vasculature and spleen function. A10-FMT improved the gene and/or protein expression of genes involved in vasculature development, increased the cell proliferation rate, enhanced the endothelial progenitor cell capability, and elevated the expression of the cell junction molecules to increase the vascularization of the spleen. This investigation found for the first time that the reestablishment of spleen vascularization restored spleen function by improving spleen immune cells and iron metabolism. These findings may be used as a strategy to minimize the side effects of anti-cancer drugs or to improve spleen vasculature-related diseases. IMPORTANCE Alginate oligosaccharide (AOS)-improved gut microbiota (A10-FMT) can rescue busulfan disrupted spleen vasculature. A10-FMT improved the cell proliferation rate, endothelial progenitor cell capability, and cell junction molecules to increase vasculature formation in the spleen. This reestablishment restored spleen function by improving spleen immune cells and iron metabolism. These findings are useful for the treatment of spleen vasculature-related diseases.
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spelling pubmed-99425712023-02-22 Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption Fang, Hanhan Feng, Xiaohui Xu, Tao Zhong, Ruqing Lu, Dongxin Zhang, Hongfu Shen, Wei Zhao, Yong Chen, Liang Wang, Junjie mSphere Research Article Fecal microbiota transplantation (FMT) is an effective means of modulating gut microbiota for the treatment of many diseases, including Clostridioides difficile infections. The gut-spleen axis has been established, and this is involved in the development and function of the spleen. However, it is not understood whether gut microbiota can be used to improve spleen function, especially in spleens disrupted by a disease or an anti-cancer treatment. In the current investigation, we established that alginate oligosaccharide (AOS)-improved gut microbiota (A10-FMT) can rescue anticancer drug busulfan-disrupted spleen vasculature and spleen function. A10-FMT improved the gene and/or protein expression of genes involved in vasculature development, increased the cell proliferation rate, enhanced the endothelial progenitor cell capability, and elevated the expression of the cell junction molecules to increase the vascularization of the spleen. This investigation found for the first time that the reestablishment of spleen vascularization restored spleen function by improving spleen immune cells and iron metabolism. These findings may be used as a strategy to minimize the side effects of anti-cancer drugs or to improve spleen vasculature-related diseases. IMPORTANCE Alginate oligosaccharide (AOS)-improved gut microbiota (A10-FMT) can rescue busulfan disrupted spleen vasculature. A10-FMT improved the cell proliferation rate, endothelial progenitor cell capability, and cell junction molecules to increase vasculature formation in the spleen. This reestablishment restored spleen function by improving spleen immune cells and iron metabolism. These findings are useful for the treatment of spleen vasculature-related diseases. American Society for Microbiology 2022-12-13 /pmc/articles/PMC9942571/ /pubmed/36511706 http://dx.doi.org/10.1128/msphere.00581-22 Text en Copyright © 2022 Fang et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Fang, Hanhan
Feng, Xiaohui
Xu, Tao
Zhong, Ruqing
Lu, Dongxin
Zhang, Hongfu
Shen, Wei
Zhao, Yong
Chen, Liang
Wang, Junjie
Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title_full Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title_fullStr Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title_full_unstemmed Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title_short Gut-Spleen Axis: Microbiota via Vascular and Immune Pathways Improve Busulfan-Induced Spleen Disruption
title_sort gut-spleen axis: microbiota via vascular and immune pathways improve busulfan-induced spleen disruption
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942571/
https://www.ncbi.nlm.nih.gov/pubmed/36511706
http://dx.doi.org/10.1128/msphere.00581-22
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