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Published on: April 20, 2017
Pathological analysis of local delivery of paclitaxel via a polymer-coated stent
1Department of Cardiovascular Pathology, Armed Forces Institute of Pathology, Washington, DC, USA.
Background:
Paclitaxel can inhibit vascular smooth muscle proliferation in vitro, and early studies suggest that paclitaxel may be useful in preventing restenosis. Early and late intimal growth and local vascular pathological changes associated with paclitaxel delivered via stents have not been fully explored.
Methods And Results:
Localized drug delivery was accomplished with balloon-expandable stainless steel stents coated with a cross-linked biodegradable polymer, chondroitin sulfate and gelatin (CSG), containing various doses of paclitaxel. CSG-coated stents with paclitaxel (42.0, 20.2, 8.6, or 1.5 microgram of paclitaxel per stent), CSG-coated stents without paclitaxel, and uncoated stents (without paclitaxel or CSG) were deployed in the iliac arteries of New Zealand White rabbits, which were killed 28 days after implant. Mean neointimal thickness at stent strut sites was reduced 49% (P<0.0003) and 36% (P<0.007) with stents containing 42.0 and 20.2 microgram of paclitaxel per stent, respectively, versus CSG-coated stents without paclitaxel. However, histological findings suggested incomplete healing in the higher-dose (42.0 and 20.2 microgram) paclitaxel-containing stents consisting of persistent intimal fibrin deposition, intraintimal hemorrhage, and increased intimal and adventitial inflammation. Stents coated with CSG alone (without paclitaxel) had similar neointimal growth as uncoated stents. In a separate group of rabbits killed at 90 days, neointimal growth was no longer suppressed by CSG-coated stents containing 42.0 or 21.0 microgram of paclitaxel
Conclusions:
CSG coating appears to be a promising medium for localized drug delivery. Paclitaxel polymer-coated stents reduce neointima formation but are associated with evidence of incomplete healing at 28 days. However, neointimal suppression was not maintained at 90 days.
Insights
Paclitaxel-eluting stents reduced neointima formation in rabbits, but higher doses caused incomplete healing. This effect was not sustained long-term, indicating potential limitations for restenosis prevention.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Drug Delivery Systems
Background:
- Paclitaxel demonstrates in vitro inhibition of vascular smooth muscle proliferation.
- Early studies suggest paclitaxel's potential in preventing restenosis.
- Limited exploration of early/late intimal growth and pathological changes with paclitaxel-eluting stents.
Purpose of the Study:
- To evaluate the efficacy and safety of paclitaxel-eluting stents for preventing neointimal hyperplasia.
- To assess intimal growth and vascular healing at different time points post-implantation.
- To investigate the role of a novel chondroitin sulfate and gelatin (CSG) polymer coating for localized drug delivery.
Main Methods:
- Paclitaxel was loaded onto CSG-coated balloon-expandable stainless steel stents at varying doses.
- Stents were implanted into the iliac arteries of New Zealand White rabbits.
- Vascular healing and neointimal thickness were assessed at 28 and 90 days post-implantation.
Main Results:
- Paclitaxel-eluting stents significantly reduced neointimal thickness at 28 days (49% and 36% reduction with highest doses).
- Higher paclitaxel doses (42.0 and 20.2 µg) were associated with incomplete healing, including fibrin deposition, hemorrhage, and inflammation.
- Neointimal suppression was not observed at 90 days, and CSG-coated stents without paclitaxel showed no benefit over uncoated stents.
Conclusions:
- CSG coating is a viable medium for localized drug delivery via stents.
- Paclitaxel-eluting stents effectively reduce neointima formation but may impair vascular healing in the short term.
- The neointimal suppressive effect of paclitaxel-eluting stents was transient and not maintained at 90 days.
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