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Updated: Jun 18, 2026

MicroRNA Amplification and Recognition through Locked-nucleic-acid In situ Hybridization as a Novel Detection and Quantification Method
Published on: October 7, 2025
Discovery of microvascular miRNAs using public gene expression data: miR-145 is expressed in pericytes and is a
Erik Larsson1, Peder Fredlund Fuchs, Johan Heldin
1Wallenberg Laboratory for Cardiovascular Research, Bruna Stråket 16, Sahlgrenska University Hospital, SE-413 45 Gothenburg, Sweden.
Background:
A function for the microRNA (miRNA) pathway in vascular development and angiogenesis has been firmly established. miRNAs with selective expression in the vasculature are attractive as possible targets in miRNA-based therapies. However, little is known about the expression of miRNAs in microvessels in vivo. Here, we identified candidate microvascular-selective miRNAs by screening public miRNA expression datasets.
Methods:
Bioinformatics predictions of microvascular-selective expression were validated with real-time quantitative reverse transcription PCR on purified microvascular fragments from mouse. Pericyte expression was shown with in situ hybridization on tissue sections. Target sites were identified with 3' UTR luciferase assays, and migration was tested in a microfluid chemotaxis chamber.
Results:
miR-145, miR-126, miR-24, and miR-23a were selectively expressed in microvascular fragments isolated from a range of tissues. In situ hybridization and analysis of Pdgfb retention motif mutant mice demonstrated predominant expression of miR-145 in pericytes. We identified the Ets transcription factor Friend leukemia virus integration 1 (Fli1) as a miR-145 target, and showed that elevated levels of miR-145 reduced migration of microvascular cells in response to growth factor gradients in vitro.
Conclusions:
miR-126, miR-24 and miR-23a are selectively expressed in microvascular endothelial cells in vivo, whereas miR-145 is expressed in pericytes. miR-145 targets the hematopoietic transcription factor Fli1 and blocks migration in response to growth factor gradients. Our findings have implications for vascular disease and provide necessary information for future drug design against miRNAs with selective expression in the microvasculature.
Insights
MicroRNAs (miRNAs) are crucial for blood vessel formation. This study identifies specific miRNAs in microvessels, finding miR-145 in pericytes regulates cell migration, impacting vascular disease therapies.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- The microRNA (miRNA) pathway is vital for vascular development and angiogenesis.
- Microvascular-selective miRNAs are potential targets for miRNA-based therapies.
- Limited knowledge exists regarding in vivo miRNA expression in microvessels.
Purpose of the Study:
- To identify microvascular-selective miRNAs in vivo.
- To investigate the function of identified miRNAs in microvascular cells.
- To provide insights for drug design targeting microvascular miRNAs.
Main Methods:
- Screening public miRNA expression datasets for candidate microvascular-selective miRNAs.
- Validating miRNA expression using real-time quantitative reverse transcription PCR on purified mouse microvascular fragments.
- Assessing pericyte expression via in situ hybridization and identifying miRNA targets using 3' UTR luciferase assays.
Main Results:
- miR-145, miR-126, miR-24, and miR-23a showed selective expression in microvascular fragments.
- miR-145 was predominantly expressed in pericytes, targeting the transcription factor Fli1.
- Elevated miR-145 levels inhibited microvascular cell migration in response to growth factors.
Conclusions:
- miR-126, miR-24, and miR-23a are selectively expressed in microvascular endothelial cells.
- miR-145 is expressed in pericytes and regulates cell migration by targeting Fli1.
- Findings inform future drug development for vascular diseases targeting microvascular miRNAs.
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