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Published on: March 4, 2016
Transcription factor decoys for the prevention of vein bypass graft failure
Michael J Mann1, Michael S Conte
1Department of Surgery, Harvard Medical School, Brigham and Women's Hospital, Boston, Massachusetts, USA.
Abstract:
Failure of vein bypass grafts, performed for either coronary or lower extremity arterial occlusions, is a common clinical problem that incurs significant morbidity and mortality. Vein grafts provide a unique opportunity for genetic interventions, since the target tissue is available for manipulation ex vivo prior to implantation, and prior to the onset of the pathophysiologic events that lead to graft disease. Smooth muscle cell proliferation is a hallmark of neointimal hyperplasia in vein grafts and arteries, and is an attractive target for molecular therapy. Gene blockade strategies can be accomplished by delivery of small oligodeoxynucleotides (ODN) that target specific mRNAs ('antisense') or that competitively inhibit transcription factors ('decoys'). Transcription factors are attractive targets for molecular therapy since they influence the expression of a large number of genes involved in a coordinated cellular program. An ODN decoy approach has been developed targeting the transcription factor E2F, which is critically involved in cell cycle progression. Brief (10 minute) incubation of the ODN in solution, using non-distending pressure, results in efficient delivery of the ODN to >80% of cells in the vein wall. Preclinical studies in a rabbit model of vein grafting and hypercholesterolemia demonstrated a marked reduction in neointima formation, as well as prolonged resistance to graft atherosclerosis. Phase I/II studies conducted in lower extremity and coronary bypass patients have demonstrated safety and feasibility, and have also suggested possible efficacy. Large, randomized multicenter, phase III trials are currently under way to evaluate the efficacy of E2F decoy treatment on preventing vein bypass failure in both peripheral and coronary grafting procedures. These studies herald the arrival of a new class of molecular agents into the armamentarium of cardiovascular therapies.
Insights
E2F decoy oligodeoxynucleotides (ODN) show promise in preventing vein bypass graft failure by reducing smooth muscle cell proliferation. Clinical trials are underway to confirm efficacy in cardiovascular therapies.
Area of Science:
- Cardiovascular Biology
- Molecular Therapy
- Vascular Surgery
Background:
- Vein bypass graft failure is a significant clinical issue causing morbidity and mortality.
- Smooth muscle cell proliferation, leading to neointimal hyperplasia, is a key factor in graft disease.
- Genetic interventions targeting vein grafts ex vivo offer a therapeutic opportunity.
Purpose of the Study:
- To evaluate the efficacy of E2F decoy oligodeoxynucleotides (ODN) in preventing vein bypass graft failure.
- To assess the safety and feasibility of E2F decoy ODN therapy in patients.
- To explore a novel molecular therapy for cardiovascular applications.
Main Methods:
- Development of an ODN decoy strategy targeting the cell cycle transcription factor E2F.
- In vitro delivery of ODN to vein wall cells.
- Preclinical studies in a rabbit vein grafting model.
- Phase I/II clinical trials in bypass patients.
Main Results:
- Preclinical studies showed a marked reduction in neointima formation and prolonged resistance to atherosclerosis.
- Phase I/II trials demonstrated safety and feasibility, with suggestions of efficacy.
- Ongoing Phase III trials aim to confirm effectiveness in preventing graft failure.
Conclusions:
- E2F decoy ODN therapy represents a potential new class of molecular agents for cardiovascular therapies.
- This approach targets smooth muscle cell proliferation, a critical mechanism in vein graft disease.
- Further clinical trials are essential to establish the role of E2F decoy ODN in preventing vein bypass failure.

