Cargando…

Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism

Human placental mesenchymal stem cells (PMSCs) can prevent liver ischaemia–reperfusion injury (LIRI). However, their therapeutic effects are limited. Therefore, additional research is required to elucidate the mechanisms of PMSC‐mediated LIRI prevention and enhance the related therapeutic effects. T...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhou, Xi, Li, Junbo, Wang, Jin, Yang, Huifang, Xie, Xiaoyun, Chen, Zhishui, Zhang, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10183713/
https://www.ncbi.nlm.nih.gov/pubmed/37005492
http://dx.doi.org/10.1111/jcmm.17739
_version_ 1785042016986464256
author Zhou, Xi
Li, Junbo
Wang, Jin
Yang, Huifang
Xie, Xiaoyun
Chen, Zhishui
Zhang, Bo
author_facet Zhou, Xi
Li, Junbo
Wang, Jin
Yang, Huifang
Xie, Xiaoyun
Chen, Zhishui
Zhang, Bo
author_sort Zhou, Xi
collection PubMed
description Human placental mesenchymal stem cells (PMSCs) can prevent liver ischaemia–reperfusion injury (LIRI). However, their therapeutic effects are limited. Therefore, additional research is required to elucidate the mechanisms of PMSC‐mediated LIRI prevention and enhance the related therapeutic effects. This study aimed to examine the role of the Lin28 protein in the regulation of glucose metabolism in PMSCs. Further, it explored whether Lin28 could enhance the protective effects of PMSCs against LIRI and investigated the underlying mechanisms. Western blotting was performed to examine Lin28 expression in PMSCs under hypoxic conditions. A Lin28 overexpression construct was introduced into PMSCs, and the effect on glucose metabolism was examined using a glucose metabolism kit. Further, the expression of some proteins involved in glucose metabolism and the PI3K‐AKT pathway and the levels of microRNA Let‐7a–g were examined using western blots and real‐time quantitative PCR, respectively. To examine the relationship between Lin28 and the PI3K‐Akt pathway, the effects of AKT inhibitor treatment on the changes induced by Lin28 overexpression were examined. Subsequently, AML12 cells were co‐cultured with PMSCs to elucidate the mechanisms via which PMSCs prevent hypoxic injury in liver cells in vitro. Finally, C57BL/6J mice were used to establish a partial warm ischaemia–reperfusion model. The mice received intravenous injections containing PMSCs (control and Lin28‐overexpressing PMSCs). Finally, their serum transaminase levels and degree of liver injury were assessed using biochemical and histopathological methods, respectively. Lin28 was upregulated under hypoxic conditions in PMSCs. Lin28 exerted protective effects against hypoxia‐induced cell proliferation. Moreover, it increased the glycolytic capacity of PMSCs, allowing PMSCs to produce more energy under hypoxic conditions. Lin28 also activated the PI3K‐Akt signalling pathway under hypoxic conditions, and its effects were attenuated by AKT inhibition. Lin28 overexpression could protect cells against LIRI‐induced liver damage, inflammation and apoptosis and could also attenuate hypoxia‐induced hepatocyte injury. Lin28 enhances glucose metabolism under hypoxic conditions in PMSCs, thereby exerting protective effects against LIRI by activating the PI3K‐Akt signalling pathway. Our study is the first to report the potential of genetically modified PMSCs for LIRI treatment.
format Online
Article
Text
id pubmed-10183713
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-101837132023-05-16 Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism Zhou, Xi Li, Junbo Wang, Jin Yang, Huifang Xie, Xiaoyun Chen, Zhishui Zhang, Bo J Cell Mol Med Original Articles Human placental mesenchymal stem cells (PMSCs) can prevent liver ischaemia–reperfusion injury (LIRI). However, their therapeutic effects are limited. Therefore, additional research is required to elucidate the mechanisms of PMSC‐mediated LIRI prevention and enhance the related therapeutic effects. This study aimed to examine the role of the Lin28 protein in the regulation of glucose metabolism in PMSCs. Further, it explored whether Lin28 could enhance the protective effects of PMSCs against LIRI and investigated the underlying mechanisms. Western blotting was performed to examine Lin28 expression in PMSCs under hypoxic conditions. A Lin28 overexpression construct was introduced into PMSCs, and the effect on glucose metabolism was examined using a glucose metabolism kit. Further, the expression of some proteins involved in glucose metabolism and the PI3K‐AKT pathway and the levels of microRNA Let‐7a–g were examined using western blots and real‐time quantitative PCR, respectively. To examine the relationship between Lin28 and the PI3K‐Akt pathway, the effects of AKT inhibitor treatment on the changes induced by Lin28 overexpression were examined. Subsequently, AML12 cells were co‐cultured with PMSCs to elucidate the mechanisms via which PMSCs prevent hypoxic injury in liver cells in vitro. Finally, C57BL/6J mice were used to establish a partial warm ischaemia–reperfusion model. The mice received intravenous injections containing PMSCs (control and Lin28‐overexpressing PMSCs). Finally, their serum transaminase levels and degree of liver injury were assessed using biochemical and histopathological methods, respectively. Lin28 was upregulated under hypoxic conditions in PMSCs. Lin28 exerted protective effects against hypoxia‐induced cell proliferation. Moreover, it increased the glycolytic capacity of PMSCs, allowing PMSCs to produce more energy under hypoxic conditions. Lin28 also activated the PI3K‐Akt signalling pathway under hypoxic conditions, and its effects were attenuated by AKT inhibition. Lin28 overexpression could protect cells against LIRI‐induced liver damage, inflammation and apoptosis and could also attenuate hypoxia‐induced hepatocyte injury. Lin28 enhances glucose metabolism under hypoxic conditions in PMSCs, thereby exerting protective effects against LIRI by activating the PI3K‐Akt signalling pathway. Our study is the first to report the potential of genetically modified PMSCs for LIRI treatment. John Wiley and Sons Inc. 2023-04-02 /pmc/articles/PMC10183713/ /pubmed/37005492 http://dx.doi.org/10.1111/jcmm.17739 Text en © 2023 The Authors. Journal of Cellular and Molecular Medicine published by Foundation for Cellular and Molecular Medicine and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Zhou, Xi
Li, Junbo
Wang, Jin
Yang, Huifang
Xie, Xiaoyun
Chen, Zhishui
Zhang, Bo
Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title_full Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title_fullStr Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title_full_unstemmed Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title_short Lin28 promoting the protective effect of PMSCs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
title_sort lin28 promoting the protective effect of pmscs on hepatic ischaemia–reperfusion injury by regulating glucose metabolism
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10183713/
https://www.ncbi.nlm.nih.gov/pubmed/37005492
http://dx.doi.org/10.1111/jcmm.17739
work_keys_str_mv AT zhouxi lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT lijunbo lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT wangjin lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT yanghuifang lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT xiexiaoyun lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT chenzhishui lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism
AT zhangbo lin28promotingtheprotectiveeffectofpmscsonhepaticischaemiareperfusioninjurybyregulatingglucosemetabolism