Bioengineering in Development of the Hybrid Artificial Pancreas; C.K. Colton et al., Transactions of the ASME, vol. 113, May 1991. |
Texturing of Polmer Surfaces at the Cellular Level, J.A. Schmidt et at., Biomaterials, vol. 12, May, 1991. |
Microtopography and Soft Tissue Response; C.E. Campbell et al., Journal of Investigative Surgery, vol. 2, pp. 51-74, 1991. |
Macroporous Hydrogel Membranes for a Hybrid Artificial Pancreas. II. Biocompatibility; Klomp et al., Jrnl of Bomedical Mat. Res., vol. 17, 865-871 (1983). |
Oxygen Tension Regulates the Expression of Angiogenesis Factor by Macrophages; Knighton et al., Science, 1981. |
Macrophage-derived Growth Factors in Wound Healing: Regulation of Growth Factor Production by theOxygen Microenvironment; Knighton et al., Am. Rev. Respir. Dis. 1989; 140:1108-1111. |
Activated Macrophages Induce Vascular Proliteration; Piverini et al., Nature, vol. 269, pp. 804-806, Oct. 27, 1977. |
Japanes Abstract of 8078845 assigned to Fujisawa Pharm KK & Kyoto Ceramic KK. |
Anderson J. "Inflammatory Responses to Implants," vol. XXXIV Trans. Am. Soc. Artif. Intern. Organs, 1988. |
Christenson et al., "Tissue of Corticoid and Doxorubicin," J of Biomed Mat Res, 23, pp. 705-718 (1989). |
Schrap, D. et al., "Islet Immuno-Isolation: The Use of Hybrid Artificial Organs to Prevent Islet Tissue Immuno-Isolation;" World J Surg 8 pp. 221-229 (1984). |
Ratner, B., "New ideas in biomaterials science--a path to engineered biomaterials:" Journal of Biomedical Materials Research, vol. 27, pp. 837-850 (1993). |
Weaver, J.M. et al., "The Growth of Cells in Diffusion Chambers. II. The Role of Cells in the Destruction of Homografts in Mice;" Journal of the National Cancer Institute, vol. 15 No. 6, pp. 1737-1764 (Jun. 1955). |
Woodward et al., "The Tissue Response to Implants and its Evaluation by Light Microscopy;" CH 30, Handbook of Biomaterials Evaluation, Ed., pp. 364-378. |
Miller et al., "Characterization of Biomedical Polymeradherent Macrophages: Interleukin 1 Generation and Scanning Electron Microscopy Studies", vol. 10, Apr. 1989 of Biomaterials, pp. 187-105. |
Brauker, J. et al., Neovascularization at a Membrane-Tissue Interface is Dependent on Microarchitecture, New Ideas . . . : p. 846. |
Freed, P.S., "Long-Term Percutaneous Access Device;" Trans AM Soc Artif Intern Organs, vol. XXXI, pp. 230-232 (1985). |
Chehroudi, B. et al, "Effects of a grooved epoxy substratum on epithelial cell behavior in vitro and in vivo;" Journal of Biomedical Materials Research, vol. 22, pp. 459-473 (1988). |
Eskin, S. G. et al., "Endothelial Cell Culture on Dacron Fabrics of Different Configurations;" Journal of Biomedical Materials Research, vol. 12, pp. 517-524 (1978). |
Boyce, B., "Physical Characteristics of Expanded Polytetraflurorethylene Grafts; Biologic and Synthetic Vascular Prostheses," pp. 553-559 (1982). |
Campebell, C. et al., "A Small Arterial Substitute: Expanded Microporous Polytetrafiroroethylene: Patency Versus Porosity;" Annals of Surgery, pp. 136-143 (1975). |
Campbell, C.D., "Expanded microporous polytetrafluoroethylene as a vascular substitute: A two year follow-up;" Surgery 85, pp. 17701-17783 (1979). |
Squier, C.A., "The relationship between soft tissue attachment, epithelial downgrowth and surface porosity;" Journal of Periodontal Research 16, pp. 434-440, 1981. |
Wasfie, T. et al., "Inhibition of Epithelial Downgrowth on Percutaneous Access Devices inSwind: II;" Trans Am Soc Artif Intern Organs, vol. XXX, pp. 556-560, (1984). |
Schruders, P. et al., "Normal wound healing compared to healing within proous Dacron Implants;" Journal of biomedical Materials Research, vol. 22, pp. 121-135 (1988). |
Korsmeyer, R. et al., "Effect of the Morphology of Hydrophilic Polmeric Matrices on the Diffusionand Release of Water Soluble Drugs;" Journal ofMembrane Science, 9, pp. 211-227 (1981). |
Reinhart, C. et al., "Solute diffusion in swollen membranes. Part II. Influence of crosslinking on diffusive properties;" Journal of Membrane Science, 18 pp. 227-239 (1984). |
Iwata, H., "The use of photocrosslinkable polyvinyl alcohol in the immunoisolation of pancreatic Islets;" Transplantation Proceedings, vol. 22, No. 2 (Apr.), 1990 pp. 797-799. |
Algire, G., "Diffusion-Chamber Techniques for studies of cellular immunity;" Annals New York Academy of Sciences, pp. 663-667. |
Algire, G. et al., "Recent Developments in the Transparent-Chamber Technique as Adapted to the Mouse;" Journal of the National Cancer Institute, vol. 10 No. 2, pp. 225-253 (Oct. 1949). |
Prehn, R.T. et al., "The Diffusion-Chamber Technique Applied to a Study of the Nature of Homograft Resistance;" Journal of the National Cancer Institute, vol. 15, No. 3, pp. 509-517 (Dec. 1954). |
Algire, G. H. et al., "Growth of Cells in Vivo in Diffusion Chambers. I. Survival of Homografts in Immunized Mice;" Journal of the National Cancer Institute, vol. 15 No. 3, pp. 493-506 (Dec. 1954). |
Merwin, R.M. et al., "Fate of Vascularized and Nonvascularized Subcutaneous Homografts in Mice;" Journal of the National Cancer Institute, vol. 14, No. 4, pp. 819-839 (Feb. 1954). |
Islet Immuno-Isolation: The Use of Hybrid Artificial Organs to Prevent Islet Tissue Rejection, World J. Surg. 8, 221-229, 1984, D.W. Scharp et al. |