» Articles » PMID: 33968135

Potential Networks Regulated by MSCs in Acute-On-Chronic Liver Failure: Exosomal MiRNAs and Intracellular Target Genes

Overview
Journal Front Genet
Date 2021 May 10
PMID 33968135
Citations 12
Authors
Affiliations
Soon will be listed here.
Abstract

Acute-on-chronic liver failure (ACLF) is a severe syndrome associated with high mortality. Alterations in the liver microenvironment are one of the vital causes of immune damage and liver dysfunction. Human bone marrow mesenchymal stem cells (hBMSCs) have been reported to alleviate liver injury via exosome-mediated signaling; of note, miRNAs are one of the most important cargoes in exosomes. Importantly, the miRNAs within exosomes in the hepatic microenvironment may mediate the mesenchymal stem cell (MSC)-derived regulation of liver function. This study investigated the hepatocyte exosomal miRNAs which are regulated by MSCs and the target genes which have potential in the treatment of liver failure. Briefly, ACLF was induced in mice using carbon tetrachloride and primary hepatocytes were isolated and co-cultured (or not) with MSCs under serum-free conditions. Exosomes were then collected, and the expression of exosomal miRNAs was assessed using next-generation sequencing; a comparison was performed between liver cells from healthy ACLF animals. Additionally, to identify the intracellular targets of exosomal miRNAs in humans, we focused on previously published data, i.e., microarray data and mass spectrometry data in liver samples from ACLF patients. The biological functions and signaling pathways associated with differentially expressed genes were predicted using gene ontology and Kyoto Encyclopedia of Genes and Genomics enrichment analyses; hub genes were also screened based on pathway analysis and the prediction of protein-protein interaction networks. Finally, we constructed the hub gene-miRNA network and performed correlation analysis and qPCR validation. Importantly, our data revealed that MSCs could regulate the miRNA content within exosomes in the hepatic microenvironment. MiR-20a-5p was down-regulated in ACLF hepatocytes and their exosomes, while the levels of chemokine C-X-C Motif Chemokine Ligand 8 (CXCL8; interleukin 8) were increased in hepatocytes. Importantly, co-culture with hBMSCs resulted in up-regulated expression of miR-20a-5p in exosomes and hepatocytes, and down-regulated expression of CXCL8 in hepatocytes. Altogether, our data suggest that the exosomal miR-20a-5p/intracellular CXCL8 axis may play an important role in the reduction of liver inflammation in ACLF in the context of MSC-based therapies and highlights CXCL8 as a potential target for alleviating liver injury.

Citing Articles

Med1 inhibits ferroptosis and alleviates liver injury in acute liver failure via Nrf2 activation.

Lei Z, Li Z, Lin D, Cao J, Chen J, Meng S Cell Biosci. 2024; 14(1):54.

PMID: 38678227 PMC: 11056072. DOI: 10.1186/s13578-024-01234-4.


Current Perspectives and Progress in Preoperative Portal Vein Embolization with Stem Cell Augmentation (PVESA).

Barcena A, Owens T, Melancon S, Workeneh I, Tran Cao H, Vauthey J Stem Cell Rev Rep. 2024; 20(5):1236-1251.

PMID: 38613627 PMC: 11222268. DOI: 10.1007/s12015-024-10719-1.


Bone marrow mesenchymal stem cell-derived small extracellular vesicles promote liver regeneration via miR-20a-5p/PTEN.

Zhang J, Gao J, Li X, Lin D, Li Z, Wang J Front Pharmacol. 2023; 14:1168545.

PMID: 37305542 PMC: 10248071. DOI: 10.3389/fphar.2023.1168545.


Recent advances in pre-conditioned mesenchymal stem/stromal cell (MSCs) therapy in organ failure; a comprehensive review of preclinical studies.

Kahrizi M, Mousavi E, Khosravi A, Rahnama S, Salehi A, Nasrabadi N Stem Cell Res Ther. 2023; 14(1):155.

PMID: 37287066 PMC: 10249180. DOI: 10.1186/s13287-023-03374-9.


The progress to establish optimal animal models for the study of acute-on-chronic liver failure.

Zhai H, Zhang J, Shang D, Zhu C, Xiang X Front Med (Lausanne). 2023; 10:1087274.

PMID: 36844207 PMC: 9947362. DOI: 10.3389/fmed.2023.1087274.


References
1.
Peng Y, Chen X, Zhang X, Huang K, Liu L, Li H . Mesenchymal stromal cells infusions improve refractory chronic graft versus host disease through an increase of CD5+ regulatory B cells producing interleukin 10. Leukemia. 2014; 29(3):636-46. DOI: 10.1038/leu.2014.225. View

2.
Fu X, Qie J, Fu Q, Chen J, Jin Y, Ding Z . miR-20a-5p/TGFBR2 Axis Affects Pro-inflammatory Macrophages and Aggravates Liver Fibrosis. Front Oncol. 2020; 10:107. PMC: 7031347. DOI: 10.3389/fonc.2020.00107. View

3.
Redis R, Calin S, Yang Y, You M, Calin G . Cell-to-cell miRNA transfer: from body homeostasis to therapy. Pharmacol Ther. 2012; 136(2):169-74. PMC: 3855335. DOI: 10.1016/j.pharmthera.2012.08.003. View

4.
Klingmuller U, Bauer A, Bohl S, Nickel P, Breitkopf K, Dooley S . Primary mouse hepatocytes for systems biology approaches: a standardized in vitro system for modelling of signal transduction pathways. Syst Biol (Stevenage). 2006; 153(6):433-47. DOI: 10.1049/ip-syb:20050067. View

5.
Motameny S, Wolters S, Nurnberg P, Schumacher B . Next Generation Sequencing of miRNAs - Strategies, Resources and Methods. Genes (Basel). 2014; 1(1):70-84. PMC: 3960865. DOI: 10.3390/genes1010070. View