Shear stress-regulated miR-27b controls pericyte recruitment by repressing SEMA6A and SEMA6D
Shemsi Demolli1, Anuradha Doddaballapur1, Kavi Devraj2
1Institute for Cardiovascular Regeneration, Centre of Molecular Medicine, Goethe University, Theodor Stern Kai 7, 60590 Frankfurt, Germany.
Aims:
Vessel maturation involves the recruitment of mural cells such as pericytes and smooth muscle cells. Laminar shear stress is a major trigger for vessel maturation, but the molecular mechanisms by which shear stress affects recruitment of pericytes are unclear. MicroRNAs (miRs) are small non-coding RNAs, which post-transcriptionally control gene expression. The aim of the present study was to unveil the mechanism by which shear stress-regulated microRNAs contribute to vessel maturation.
Methods And Results:
Here, we show that laminar shear stress increased miR-27a and miR-27b expression in vitro and in ex vivo in mouse femoral artery explants. Overexpression of miR-27b in endothelial cells increased pericyte adhesion and pericyte recruitment in vitro. In vitro barrier function of endothelial-pericyte co-cultures was augmented by miR-27b overexpression, whereas inhibition of miR-27a/b reduced adhesion and pericyte coverage and decreased barrier functions. In vivo, pharmacological inhibition of miR-27a/b by locked nucleic acid antisense oligonucleotides significantly reduced pericyte coverage and increased water content in the murine uterus. MiR-27b overexpression repressed semaphorins (SEMA), which mediate repulsive signals, and the vessel destabilizing human but not mouse Angiopoietin-2 (Ang-2). Silencing of SEMA6A and SEMA6D rescued the reduced pericyte adhesion by miR-27 inhibition. Furthermore, inhibition of SEMA6D increased barrier function of an endothelial-pericyte co-culture in vitro.
Conclusion:
The present study demonstrates for the first time that shear stress-regulated miR-27b promotes the interaction of endothelial cells with pericytes, partly by repressing SEMA6A and SEMA6D.
Insights
Shear stress increases microRNA-27b (miR-27b), which enhances pericyte recruitment and vessel maturation by repressing repulsive semaphorin signals. This study clarifies a key mechanism in blood vessel development.
Area of Science:
- Vascular Biology
- Molecular Biology
- Biochemistry
Background:
- Vessel maturation requires mural cell recruitment, influenced by laminar shear stress.
- The precise molecular pathways linking shear stress to pericyte recruitment remain incompletely understood.
- MicroRNAs (miRs) are key regulators of post-transcriptional gene expression.
Purpose of the Study:
- To elucidate the role of shear stress-regulated microRNAs in blood vessel maturation.
- To investigate how microRNAs mediate the effects of shear stress on pericyte recruitment and endothelial cell function.
Main Methods:
- Assessed miR-27a and miR-27b expression in response to laminar shear stress in vitro and ex vivo.
- Manipulated miR-27b levels in endothelial cells to evaluate effects on pericyte adhesion and recruitment.
- Utilized locked nucleic acid antisense oligonucleotides for in vivo inhibition of miR-27a/b.
- Analyzed the impact on endothelial-pericyte co-culture barrier function and in vivo uterine vascularization.
Main Results:
- Laminar shear stress upregulated miR-27a and miR-27b expression.
- miR-27b overexpression enhanced endothelial cell-pericyte adhesion, recruitment, and co-culture barrier function.
- Inhibition of miR-27a/b reduced pericyte coverage and barrier function in vivo.
- miR-27b repressed semaphorins (SEMA), including SEMA6A and SEMA6D, which are involved in repulsive signaling.
Conclusions:
- Shear stress-induced miR-27b promotes endothelial cell-pericyte interaction, contributing to vessel maturation.
- The mechanism involves the repression of repulsive semaphorin signals by miR-27b.
- This finding reveals a novel microRNA-mediated pathway regulating vascular development.
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