Advertisement for Spire Corporation radiopaque coating technology, Medical Products Manufacturing News, Mar., 1977, p. 30. |
Studies on a new radiopaque polymeric biomaterial, A. Benzina, M.A.B. Kruft, F. Bar, F.H. van der Veen, C.W. Bastiaansen, V. Heijnen, C. Reutelingsperger, and L.H. Koole, Biomaterials 1994, vol. 15 No. 14, pp. 1122-1128. |
Deformation Characteristics of a Bioabsorbable Intravascular Stent, C. Mauli Agrawal, Ph.D., PE. and Howard G. Clark, Ph.D., Investigative Radiology, Dec. 1992, vol. 27, pp. 1020-1024. |
Studies on radio-opaque polymeric biomaterials with potential applications to endovascular prostheses, M. Kruft, A. Benzina, R. Blezer, and L. Koole, Biomaterials 1996, vol. 17, No. 18, pp. 1803-1812. |
Advertisement for radiopaque polymers for medical device manufacturing, New England Urethane, Inc. |
Gianturco-Roubin Flex-Stent GRII, M-D-D-I Report—“The Gray Sheet”, Mar. 4, 1996. |
Seventh Complex Coronary Angioplasty Course, May 1996, p. 257. |
Synthetic Biabsorbable Polymers, Thomas H. Barrows, Ph.D., High Performance Biomaterials, Szycher ed., pp. 243-257. |
Wound Closure Biomaterials and Devices, C.C. Chu, J.A. von Fraunhofer, amd H.P. Greisler, CRC Press, Boca Raton, FL, 1997, pp. 131-235. |
In Vitro Degradation of Polylactides Depending on Different Processes, M. Dauner, E. Muller, B. Wagner, and H. Planck, Degradation Phenomena on Polymeric Biomaterials, H. Planck, M. Dauner, M. Renardy (eds), Springer-Verlag, Berlin, 1992, pp. 107-122. |
Long-term in vivo degradation and bone reaction to various polylactides, P. Mainil-Varlet, B. Rahn, and S. Gogolewski, Biomaterials 1997, vol. 18, No. 3, pp. 257-266. |
Current Status of Biodegradable Stents, J.F. Tanguay, M.D., J.P. Zidar, M.D., H.R. Phillips, III, MD., and R. S. Stack, M.D.,Cardiology Clinics, vol. 12, No. 4, Nov. 1994, pp. 699-713. |
Perspectives on the In Vivo Responses of Biodegradable Polymers, James M. Anderson, M.D., Ph.D., CRC Press Inc., (1995) pp. 223-233, 1995. |
Advances in Controlled Release Technology: Polymeric Delivery System for Drugs, Pesticides and Foods: New Methods of Drug Delivery, Robert Langer, Science vol. 249, pp. 1527-1533. |
Advances in Controlled Release Technology: Polymeric Delivery System s for Drugs, Pesticides and Foods: Fundamentals of pH. and Temperature-Sensitive Polymers, Nicholas A. Peppas, pp. 32-45. |
Bioabsorbable Stent and Method of Making the Same, Assignee: Duke University. |
U.S. application No. 08/598,751, entitled “Titanium Alloy Self-Expanding Stent”, which is commonly owned by the assignee of the above-captioned application. |
Enhancement of the Mechanical Properties of Polylactides by solid-state extrusion, Walter Weiler and Sylwester Gogolewski, Biomaterials 17 (1996), pp. 529-535. |
The Physics of Radiology, H.E. Johns and J. R. Cunningham, pp. 137-142. |
Bicomponent vascular grafts consisting of synthetic absorbable fibers. I. In Vitro Study, Tarng-Jenn Yu and C.C. Chu, Journal of Biomedical Materoa;s Research, vol. 27, 1329-1339 (1993). |
Biomedical Applications of Synthetic Biodegradable Polymers, Editited by Jeffrey O. Hollinger, D.D.S., Ph.D., CRC Press, p. 21. |
Development of a Polymer Endovascular Prosthesis and Its Implantation in Porcine Arteries, William J. Van der Giessen, M.D., et al., Journal of Interventional Cardiology, vol. 5, No. 3, 1992, pp. 175-185. |
Role of Polymers in improving the results of stenting in coronary arteries, Tao Peng, et al., Biomaterials 1996, vol. 17, No. 7, pp. 685-694. |
Bioabsorbable, Drug-Eluting, Intracoronary Stents: Design and Future Applications, R.S. Schwartz, et al., Coronary Stents (1992), pp. 135-154. |
Ten Years of Stenting: What Next?, Ulrich Sigwart, M.D., FRCP, FACC, FESC, Journal of Interventional Cardiology, vol. 10, No. 3, pp. 195-205. |
Biocompatibility of solid poly (ortho ester), M. Ekholm, et al., Journal of Materials Science: Materials in Medicine 8, (1997), pp. 265-269. |