MiR‐143‐3p regulates chondrogenic differentiation of synovium derived mesenchymal stem cells under mechanical stress through the BMPR2‐Smad signalling pathway by targeting BMPR2

Author:

Yan Xiao12,Zhang Qiang12ORCID,Zhang Mengmeng3,He Zijing12ORCID,Liu Ran1,Liu Jun1,Ren Dapeng12,Zeng Xuemin12,Lv Tao4,Yuan Xiao12ORCID

Affiliation:

1. Department of Orthodontics The Affiliated Hospital of Qingdao University Qingdao China

2. School of Stomatology Qingdao University Qingdao China

3. Department of Pathology Qingdao Hospital University of Health and Rehabilitation Sciences (Qingdao Municipal Hospital) Qingdao China

4. Department of Orthodontics, School and Hospital of Stomatology, Cheeloo College of Medicine Shandong University and Shandong Key Laboratory of Oral Tissue Regeneration and Shandong Engineering Laboratory for Dental Materials and Oral Tissue Regeneration and Shandong Provincial Clinical Research Center for Oral Diseases Jinan China

Abstract

AbstractBackgroundMesenchymal stem cells (MSCs) derived from the synovium, known as synovium mesenchymal stem cells (SMSCs), exhibit significant potential for articular cartilage regeneration owing to their capacity for chondrogenic differentiation. However, the microRNAs (miRNAs) governing this process and the associated mechanisms remain unclear. While mechanical stress positively influences chondrogenesis in MSCs, the miRNA‐mediated response of SMSCs to mechanical stimuli is not well understood.ObjectiveThis study explores the miRNA‐driven mechano‐transduction in SMSCs chondrogenesis under mechanical stress.MethodsThe surface phenotype of SMSCs was analysed by flow cytometry. Chondrogenesis capacities of SMSCs were examined by Alcian blue staining. High throughput sequencing was used to screen mechano‐sensitive miRNAs of SMSCs. The RNA expression level of COL2A1, ACAN, SOX9, BMPR2 and miR‐143‐3p of SMSCs were tested by quantitative real‐time polymerase chain reaction (qRT‐PCR). The interaction between miR‐143‐3p and TLR4 was confirmed by luciferase reporter assays. The protein expression levels of related genes were assessed by western blot.ResultsHigh‐throughput sequencing revealed a notable reduction in miR‐143‐3p levels in mechanically stressed SMSCs. Gain‐ or loss‐of‐function strategies introduced by lentivirus demonstrated that miR‐143‐3p overexpression hindered chondrogenic differentiation, whereas its knockdown promoted this process. Bioinformatics scrutiny and luciferase reporter assays pinpointed a potential binding site for miR‐143‐3p within the 3′‐UTR of bone morphogenetic protein receptor type 2 (BMPR2). MiR‐143‐3p overexpression decreased BMPR2 expression and phosphorylated Smad1, 5 and 8 levels, while its inhibition activated BMPR2‐Smad pathway.ConclusionThis study elucidated that miR‐143‐3p negatively regulates SMSCs chondrogenic differentiation through the BMPR2‐Smad pathway under mechanical tensile stress. The direct targeting of BMPR2 by miR‐143‐3p established a novel dimension to our understanding of mechano‐transduction mechanism during SMSC chondrogenesis. This understanding is crucial for advancing strategies in articular cartilage regeneration.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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