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A Hyperglycemic Microenvironment Inhibits Tendon-to-Bone Healing through the let-7b-5p/CFTR Pathway
Tianyi Cao1, Junyi Hong1, Feicheng Qi1
1Department of Orthopedics, Affiliated Xiaoshan Hospital, Hangzhou Normal University, China.
Background:
Tendon-to-bone healing is a difficult process in treatment of rotator cuff tear (RCT). In addition, diabetes is an important risk factor for poor tendon-to-bone healing. Therefore, we investigated the specific mechanisms through which diabetes affects tendon-to-bone healing by regulating the Cystic Fibrosis Transmembrane Conductance Regulator (CFTR).
Methods:
Tendon-derived stem cells (TDSCs) were extracted from rats after which their proliferative capacities were evaluated by the MTT assay. The expression levels of CFTR and tendon-related markers were determined by qRT-PCR. Then, bioinformatics analyses and dual luciferase reporter gene assays were used to identify miRNAs with the ability to bind CFTR mRNA. Finally, CFTR was overexpressed in TDSCs to validate the specific mechanisms through which the high glucose microenvironment inhibits tendon-to-bone healing.
Results:
The high glucose microenvironment downregulated mRNA expression levels of tendon-related markers and CFTR in TDSCs cultured with different glucose concentrations. Additionally, bioinformatics analyses revealed that let-7b-5p may be regulated by the high glucose microenvironment and can regulate CFTR levels. Moreover, a dual luciferase reporter gene assay was used to confirm that let-7b-5p targets and binds CFTR mRNA. Additional experiments also confirmed that overexpressed CFTR effectively reversed the negative effects of the hyperglycaemic microenvironment and upregulation of let-7b-5p on TDSC proliferation and differentiation. These findings imply that the hyperglycemic microenvironment inhibits CFTR transcription and, consequently, proliferation and differentiation of TDSCs in vitro by upregulating let-7b-5p.
Conclusions:
A hyperglycemic microenvironment inhibits TDSC proliferation in vitro via the let-7b-5p/CFTR pathway, and this is a potential mechanism in diabetes-induced poor tendon-to-bone healing.
Insights
Diabetes impairs rotator cuff healing by affecting tendon stem cells. High glucose upregulates let-7b-5p, inhibiting Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) and hindering cell healing.
Area of Science:
- Biomedical Engineering
- Stem Cell Biology
- Diabetology
Background:
- Rotator cuff tear (RCT) healing is challenging, with diabetes mellitus being a significant risk factor for poor outcomes.
- Understanding the molecular mechanisms linking diabetes to impaired tendon-to-bone healing is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) in diabetes-associated deficits in tendon-to-bone healing.
- To elucidate the specific pathways regulated by a high-glucose microenvironment in tendon-derived stem cells (TDSCs).
Main Methods:
- Tendon-derived stem cells (TDSCs) were cultured under varying glucose concentrations.
- Gene expression of CFTR and tendon markers was analyzed using qRT-PCR.
- Bioinformatics and dual luciferase reporter assays identified let-7b-5p as a regulator of CFTR.
- CFTR was overexpressed to assess its impact on TDSC function in a high-glucose environment.
Main Results:
- High glucose significantly downregulated CFTR and tendon-related markers in TDSCs.
- let-7b-5p was identified as a microRNA that targets and inhibits CFTR expression.
- Overexpression of CFTR rescued TDSC proliferation and differentiation suppressed by high glucose and let-7b-5p.
Conclusions:
- A hyperglycemic environment inhibits TDSC proliferation and differentiation in vitro through the let-7b-5p/CFTR pathway.
- This pathway represents a key mechanism contributing to poor tendon-to-bone healing in diabetic patients.
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