Medical device with coating that promotes endothelial cell adherence
A medical device with a coating for capturing target cells in vivo is provided. In particular, the medical device is coated with at least one layer of matrix and a layer of antibodies, antibody fragments or combinations thereof, which bind with specificity to mature or progenitor endothelial cells at various developmental stages to form an endothelial cell layer on the surface of the device. The coated medical device can be, for example, a stent or a synthetic graft and is useful in therapy of diseases such as restenosis, atherosclerosis, and thromboembolic complications.
1. An implantable medical device comprising a lumen and a luminal surface, said luminal surface comprising a coating comprising one or more layers of a matrix and a therapeutically effective amount of single type of antibody, antibody fragments or combinations thereof attached to said one or more layers of said matrix, said single type of antibody, antibody fragments or combinations thereof being compatible to binding selectively a specific cell surface antigen of circulating autologous endothelial progenitor cells in peripheral blood and capturing the endothelial progenitor cells on the luminal surface of the device in vivo, wherein said coating stimulates adherence and proliferation of said endothelial progenitor cells on the luminal surface of said medical device to rapidly form a confluent endothelium in situ.
2. The medical device of claim 1 , wherein said medical device is a stent, covered stent, synthetic graft, artificial heart valves, artificial hearts, fixtures for connecting prosthetic organs to vascular circulation; venous valves, abdominal aortic aneurysm grafts, inferior venal caval filters, permanent drug infusion catheters, embolic coils, embolic materials for vascular embolization, or vascular sutures.
3. The medical device of claim 1 , wherein said one or more layers of said matrix comprises a synthetic polymer, naturally occurring polymer, fullerenes or amorphous carbon.
4. The medical device of claim 3 , wherein said synthetic polymer is polyurethane, segmented polyurethane-urea/heparin, poly-lactic acid, cellulose ester, polyethylene glycol, or combinations thereof.
5. The medical device of claim 3 , wherein said naturally-occurring polymer is collagen, laminin, heparin, fibrin, cellulose, elastin or combinations thereof.
6. The medical device of claim 1 , wherein the antibodies and antibody fragments are derived from monoclonal antibodies or fragments thereof.
7. The medical device of claim 6 , wherein the antibodies or antibody fragments have specificity to bind an endothelial cell membrane antigen.
8. The medical device of claim 7 , wherein the endothelial cell surface antigen is CD31, CD34, CD45, Flk-1, Tie-2, and E-selectin.
9. The medical device of claim 1 , wherein said coating promotes in vivo adherence of circulating endothelial cells to said medical device.
10. The medical device of claim 1 , wherein the medical device is a stent or graft, the coating comprises at least one inner layer of a synthetic matrix and the antibodies are anti-CD34 antibodies.
11. The medical device of claim 1 , wherein the antibodies, antibody fragments or combinations thereof comprise a plurality of different antibodies directed against different endothelial cell surface antigens.
12. The medical device of claim 1 wherein said antibodies and antibody fragments have been screened as to specificity to bind to an endothelial cell membrane antigen.
13. A tubular expandable stent having a lumen and a luminal surface, said luminal surface comprising a coating comprising one or more layers of a matrix and a therapeutically effective amount of single type of antibody, antibody fragments or combinations thereof covalently attached to said one or more layers of said matrix, said single type of antibody, antibody fragments or combinations thereof being capable of binding to a specific cell surface antigen, CD34, of circulating peripheral endothelial progenitor cells on the luminal surface of the stent in vivo, wherein said coating stimulates adherence and proliferation of said endothelial progenitor cells to form an endothelium in situ after implantation.