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Updated: Jan 18, 2026

Delivery of Modified mRNA in a Myocardial Infarction Mouse Model
Published on: June 11, 2020
Small Interfering RNA Therapy Targeting the Long Noncoding RNA SMILR for Therapeutic Intervention in Coronary Artery
Simon D Brown1, Anna L Malinowska2, Matthew Bennett1
1BHF Centre for Cardiovascular Science, Queens Medical Research Institute, University of Edinburgh, Edinburgh, United Kingdom.
Insights
Researchers developed a novel siRNA therapy, BHF7, to target SMILR, a long noncoding RNA driving smooth muscle cell proliferation. This therapy shows promise in preventing coronary artery bypass graft failure by improving graft patency.
Area of Science:
- Biomedical Engineering
- Molecular Biology
- Cardiovascular Research
Background:
- Coronary artery bypass graft (CABG) failure is often caused by excessive vascular smooth muscle cell (SMC) proliferation.
- SMILR, a long noncoding RNA, drives SMC proliferation and contributes to CABG failure.
Purpose of the Study:
- To identify a lead small interfering RNA (siRNA) targeting SMILR for clinical development.
- To evaluate the efficacy and safety of a novel siRNA therapeutic for preventing CABG failure.
Main Methods:
- Designed and synthesized a library of 76 SMILR-targeting siRNAs.
- Identified and tested lead siRNA BHF7 in vitro and ex vivo using human saphenous vein models.
- Utilized RNA-sequencing, TUNEL staining, and ELISA to assess gene expression, proliferation, and cytotoxicity.
Main Results:
- BHF7 effectively silenced SMILR expression and blocked SMC proliferation in vitro and ex vivo.
- RNA-sequencing revealed BHF7 down-regulates proliferation-associated genes without inducing interferon or apoptosis.
- BHF7 demonstrated no cytotoxic response in treated tissues.
Conclusions:
- BHF7 is a potent and specific siRNA therapeutic candidate for preventing neointima formation and CABG failure.
- The preclinical data support further investigation of BHF7 as an ex vivo RNA therapeutic for improving CABG graft patency.
Abstract:
Coronary artery bypass graft (CABG) surgery remains the gold standard of care to prevent myocardial ischemia in patients with advanced atherosclerosis; however, poor long-term graft patency remains a considerable and long-standing problem. Excessive vascular smooth muscle cell (SMC) proliferation in the grafted tissue is recognized as central to late CABG failure. We previously identified SMILR, a human-specific SMC-enriched long noncoding RNA that drives SMC proliferation, suggesting that targeting SMILR expression could be a novel way to prevent neointima formation, and thus CABG failure. Here, we sought to identify a lead siRNA for clinical development. We describe the design and synthesis of a library of 76 chemically enhanced SMILR-targeting siRNA. From this library, we identify a lead siRNA, BHF7, which demonstrates potent and reproducible silencing of SMILR expression, and which robustly blocks vascular smooth muscle cell proliferation, both in vitro and in the ex vivo human saphenous vein model. We further demonstrate using RNA-sequencing that BHF7 down-regulates the expression of genes associated with proliferation and does not induce the expression of interferon or apoptosis genes, suggesting it has a favorable safety profile, both on- and off-target. Finally, we performed TUNEL staining on BHF7-treated tissues and measured the levels of cleaved caspase-3 by enzyme-linked immunosorbent assay after BHF7 treatment. This demonstrated that BHF7 does not induce a cytotoxic response either in vitro or ex vivo. Collectively, these data represent a preclinical package into the function and specificity of BHF7 which warrants further investigation into the possibility of utilizing BHF7 as a novel, ex vivo RNA therapeutic for the prevention of CABG failure in humans.
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