Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1
Background: Human decidual mesenchymal stem cells (hDMSCs) play crucial roles in pregnancy. The decreased resistance of hDMSCs to oxidative stress is a key factor contributing to recurrent spontaneous abortion (RSA). miRNAs have essential functions in the proliferation and apoptosis of decidual tiss...
Saved in:
Main Authors: | , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Elsevier
2025-03-01
|
Series: | Redox Biology |
Subjects: | |
Online Access: | http://www.sciencedirect.com/science/article/pii/S2213231725000217 |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
_version_ | 1832087463214972928 |
---|---|
author | Hong Zhou Jiaxin Zhou ShanShan Liu Jing Niu Jinghua Pan Ruiman Li |
author_facet | Hong Zhou Jiaxin Zhou ShanShan Liu Jing Niu Jinghua Pan Ruiman Li |
author_sort | Hong Zhou |
collection | DOAJ |
description | Background: Human decidual mesenchymal stem cells (hDMSCs) play crucial roles in pregnancy. The decreased resistance of hDMSCs to oxidative stress is a key factor contributing to recurrent spontaneous abortion (RSA). miRNAs have essential functions in the proliferation and apoptosis of decidual tissues. However, the miRNAs involved in regulating oxidative stress in hDMSCs remain unclear. Methods: Decidual tissues and hDMSCs were collected from patients with RSA and early pregnancy miscarriages. We assessed the antioxidant capacity of hDMSCs in both groups by detecting relevant indicators. Furthermore, differentially expressed miRNAs in hDMSCs were analyzed through miRNA sequencing. We evaluated the interaction between hsa-miR-532-3p and KEAP1 using a luciferase reporter assay. A mouse model of RSA was constructed for confirmation. Finally, we analyzed the correlations between serum hsa-miR-532-3p levels and the clinical features of pregnant women with RSA. Results: miRNA sequencing revealed 44 miRNAs whose expression was downregulated and 9 miRNAs whose expression was upregulated in hDMSCs from the RSA group compared with those from the control group. The overexpression of hsa-miR-532-3p led to a significantly increased antioxidant capacity in hDMSCs. The knockdown or overexpression of hsa-miR-532-3p led to the upregulation or downregulation of KEAP1 expression, respectively. In a mouse model, the overexpression of hsa-miR-532-3p reduced embryo absorption rates in RSA mice, decreased KEAP1 expression levels in decidual tissues, and concurrently enhanced the resistance to oxidative stress. Furthermore, in patients diagnosed with RSA, serum hsa-miR-532-3p levels were significantly and negatively correlated with the gestational age. Conclusions: Our study revealed a lower expression level of hsa-miR-532-3p in the hDMSCs of patients with RSA. Moreover, hsa-miR-532-3p protects hDMSCs from oxidative stress by targeting the Kelch-like ECH-associated protein 1/nuclear factor erythroid 2-related factor 2 (KEAP1/NRF2) pathway. Hsa-miR-532-3p is closely related to gestational age and has good predictive value for identifying RSA. |
format | Article |
id | doaj-art-2107e70ebfeb4627af76232ce30cce16 |
institution | Kabale University |
issn | 2213-2317 |
language | English |
publishDate | 2025-03-01 |
publisher | Elsevier |
record_format | Article |
series | Redox Biology |
spelling | doaj-art-2107e70ebfeb4627af76232ce30cce162025-02-06T05:11:35ZengElsevierRedox Biology2213-23172025-03-0180103508Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1Hong Zhou0Jiaxin Zhou1ShanShan Liu2Jing Niu3Jinghua Pan4Ruiman Li5Reproductive Medical Center, The First Affiliated Hospital of Jinan University, 510632, Guangzhou, Guangdong, ChinaReproductive Medical Center, The First Affiliated Hospital of Jinan University, 510632, Guangzhou, Guangdong, China; International School, Jinan University, Guangzhou, Guangdong, 510632, ChinaGynecology Department, Guangdong Women and Children Hospital, Guangzhou, 511442, ChinaGynecology Department, Guangdong Women and Children Hospital, Guangzhou, 511442, ChinaGeneral Surgery, The First Affiliated Hospital of Jinan University, 510632, Guangzhou, Guangdong, China; Corresponding author.Department of Obstetrics and Gynecology, The First Affiliated Hospital of Jinan University, 510632, Guangzhou, Guangdong, China; Corresponding author.Background: Human decidual mesenchymal stem cells (hDMSCs) play crucial roles in pregnancy. The decreased resistance of hDMSCs to oxidative stress is a key factor contributing to recurrent spontaneous abortion (RSA). miRNAs have essential functions in the proliferation and apoptosis of decidual tissues. However, the miRNAs involved in regulating oxidative stress in hDMSCs remain unclear. Methods: Decidual tissues and hDMSCs were collected from patients with RSA and early pregnancy miscarriages. We assessed the antioxidant capacity of hDMSCs in both groups by detecting relevant indicators. Furthermore, differentially expressed miRNAs in hDMSCs were analyzed through miRNA sequencing. We evaluated the interaction between hsa-miR-532-3p and KEAP1 using a luciferase reporter assay. A mouse model of RSA was constructed for confirmation. Finally, we analyzed the correlations between serum hsa-miR-532-3p levels and the clinical features of pregnant women with RSA. Results: miRNA sequencing revealed 44 miRNAs whose expression was downregulated and 9 miRNAs whose expression was upregulated in hDMSCs from the RSA group compared with those from the control group. The overexpression of hsa-miR-532-3p led to a significantly increased antioxidant capacity in hDMSCs. The knockdown or overexpression of hsa-miR-532-3p led to the upregulation or downregulation of KEAP1 expression, respectively. In a mouse model, the overexpression of hsa-miR-532-3p reduced embryo absorption rates in RSA mice, decreased KEAP1 expression levels in decidual tissues, and concurrently enhanced the resistance to oxidative stress. Furthermore, in patients diagnosed with RSA, serum hsa-miR-532-3p levels were significantly and negatively correlated with the gestational age. Conclusions: Our study revealed a lower expression level of hsa-miR-532-3p in the hDMSCs of patients with RSA. Moreover, hsa-miR-532-3p protects hDMSCs from oxidative stress by targeting the Kelch-like ECH-associated protein 1/nuclear factor erythroid 2-related factor 2 (KEAP1/NRF2) pathway. Hsa-miR-532-3p is closely related to gestational age and has good predictive value for identifying RSA.http://www.sciencedirect.com/science/article/pii/S2213231725000217Recurrent spontaneous abortionHuman decidual mesenchymal stem cellsmicroRNABiomarker |
spellingShingle | Hong Zhou Jiaxin Zhou ShanShan Liu Jing Niu Jinghua Pan Ruiman Li Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 Redox Biology Recurrent spontaneous abortion Human decidual mesenchymal stem cells microRNA Biomarker |
title | Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 |
title_full | Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 |
title_fullStr | Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 |
title_full_unstemmed | Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 |
title_short | Hsa-miR-532-3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting KEAP1 |
title_sort | hsa mir 532 3p protects human decidual mesenchymal stem cells from oxidative stress in recurrent spontaneous abortion via targeting keap1 |
topic | Recurrent spontaneous abortion Human decidual mesenchymal stem cells microRNA Biomarker |
url | http://www.sciencedirect.com/science/article/pii/S2213231725000217 |
work_keys_str_mv | AT hongzhou hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 AT jiaxinzhou hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 AT shanshanliu hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 AT jingniu hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 AT jinghuapan hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 AT ruimanli hsamir5323pprotectshumandecidualmesenchymalstemcellsfromoxidativestressinrecurrentspontaneousabortionviatargetingkeap1 |