Benrashid, E., McCoy, C. C., Youngwirth, L. M., Kim, J., Manson, R. J., Otto, J. C., & Lawson, J. H. (2016). Tissue engineered vascular grafts: Origins, development, and current strategies for clinical application. Methods, 99, 13-19. doi:10.1016/j.ymeth.2015.07.014
Asadpour, S., Ai, J., Davoudi, P., Ghorbani, M., Jalali Monfared, M., & Ghanbari, H. (2018). In vitro
physical and biological characterization of biodegradable elastic polyurethane containing ferulic acid for small-caliber vascular grafts. Biomedical Materials, 13(3), 035007. doi:10.1088/1748-605x/aaa8b6
Niu, Y., Chen, K. C., He, T., Yu, W., Huang, S., & Xu, K. (2014). Scaffolds from block polyurethanes based on poly(ɛ-caprolactone) (PCL) and poly(ethylene glycol) (PEG) for peripheral nerve regeneration. Biomaterials, 35(14), 4266-4277. doi:10.1016/j.biomaterials.2014.02.013
[+]
Benrashid, E., McCoy, C. C., Youngwirth, L. M., Kim, J., Manson, R. J., Otto, J. C., & Lawson, J. H. (2016). Tissue engineered vascular grafts: Origins, development, and current strategies for clinical application. Methods, 99, 13-19. doi:10.1016/j.ymeth.2015.07.014
Asadpour, S., Ai, J., Davoudi, P., Ghorbani, M., Jalali Monfared, M., & Ghanbari, H. (2018). In vitro
physical and biological characterization of biodegradable elastic polyurethane containing ferulic acid for small-caliber vascular grafts. Biomedical Materials, 13(3), 035007. doi:10.1088/1748-605x/aaa8b6
Niu, Y., Chen, K. C., He, T., Yu, W., Huang, S., & Xu, K. (2014). Scaffolds from block polyurethanes based on poly(ɛ-caprolactone) (PCL) and poly(ethylene glycol) (PEG) for peripheral nerve regeneration. Biomaterials, 35(14), 4266-4277. doi:10.1016/j.biomaterials.2014.02.013
Kupka, V., Vojtova, L., Fohlerova, Z., & Jancar, J. (2016). Solvent free synthesis and structural evaluation of polyurethane films based on poly(ethylene glycol) and poly(caprolactone). Express Polymer Letters, 10(6), 479-492. doi:10.3144/expresspolymlett.2016.46
Arévalo-Alquichire, S., Morales-Gonzalez, M., Navas-Gómez, K., Diaz, L. E., Gómez-Tejedor, J. A., Serrano, M.-A., & Valero, M. F. (2020). Influence of Polyol/Crosslinker Blend Composition on Phase Separation and Thermo-Mechanical Properties of Polyurethane Thin Films. Polymers, 12(3), 666. doi:10.3390/polym12030666
Wu, J., Hu, C., Tang, Z., Yu, Q., Liu, X., & Chen, H. (2018). Tissue-engineered Vascular Grafts: Balance of the Four Major Requirements. Colloid and Interface Science Communications, 23, 34-44. doi:10.1016/j.colcom.2018.01.005
Wolf, F., Vogt, F., Schmitz-Rode, T., Jockenhoevel, S., & Mela, P. (2016). Bioengineered vascular constructs as living models for in vitro cardiovascular research. Drug Discovery Today, 21(9), 1446-1455. doi:10.1016/j.drudis.2016.04.017
Kotula, A. P., Snyder, C. R., & Migler, K. B. (2017). Determining conformational order and crystallinity in polycaprolactone via Raman spectroscopy. Polymer, 117, 1-10. doi:10.1016/j.polymer.2017.04.006
Cunha, F. O. V. da, Melo, D. H. R., Veronese, V. B., & Forte, M. M. C. (2004). Study of castor oil polyurethane - poly(methyl methacrylate) semi-interpenetrating polymer network (SIPN) reaction parameters using a 2³ factorial experimental design. Materials Research, 7(4), 539-543. doi:10.1590/s1516-14392004000400006
33. Chang, H.-I. and Wang, Y. : Cell response to surface and architecture of tissue engineering scaffolds. Regen. Med. Tissue Eng. – Cells Biomater. (2012), pp. 569–588.
Chen, H., & Kassab, G. S. (2016). Microstructure-based biomechanics of coronary arteries in health and disease. Journal of Biomechanics, 49(12), 2548-2559. doi:10.1016/j.jbiomech.2016.03.023
Zhou, C., Zhou, X., & Su, X. (2017). Noncytotoxic polycaprolactone-polyethyleneglycol-ε-poly(l-lysine) triblock copolymer synthesized and self-assembled as an antibacterial drug carrier. RSC Advances, 7(63), 39718-39725. doi:10.1039/c7ra07102g
Tijore, A., Behr, J.-M., Irvine, S. A., Baisane, V., & Venkatraman, S. (2018). Bioprinted gelatin hydrogel platform promotes smooth muscle cell contractile phenotype maintenance. Biomedical Microdevices, 20(2). doi:10.1007/s10544-018-0274-8
Jing, X., Mi, H.-Y., Salick, M. R., Cordie, T., McNulty, J., Peng, X.-F., & Turng, L.-S. (2015). In vitro evaluations of electrospun nanofiber scaffolds composed of poly(ɛ-caprolactone) and polyethylenimine. Journal of Materials Research, 30(11), 1808-1819. doi:10.1557/jmr.2015.117
Hou, Z., Xu, J., Teng, J., Jia, Q., & Wang, X. (2020). Facile preparation of medical segmented poly(ester-urethane) containing uniformly sized hard segments and phosphorylcholine groups for improved hemocompatibility. Materials Science and Engineering: C, 109, 110571. doi:10.1016/j.msec.2019.110571
Agrawal, A., Lee, B. H., Irvine, S. A., An, J., Bhuthalingam, R., Singh, V., … Venkatraman, S. S. (2015). Smooth Muscle Cell Alignment and Phenotype Control by Melt Spun Polycaprolactone Fibers for Seeding of Tissue Engineered Blood Vessels. International Journal of Biomaterials, 2015, 1-8. doi:10.1155/2015/434876
Tiwari, A. P., Joshi, M. K., Lee, J., Maharjan, B., Ko, S. W., Park, C. H., & Kim, C. S. (2017). Heterogeneous electrospun polycaprolactone/polyethylene glycol membranes with improved wettability, biocompatibility, and mineralization. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 520, 105-113. doi:10.1016/j.colsurfa.2017.01.054
Yuan, Y., & Lee, T. R. (2013). Contact Angle and Wetting Properties. Springer Series in Surface Sciences, 3-34. doi:10.1007/978-3-642-34243-1_1
Chung, Y.-C., Cho, T. K., & Chun, B. C. (2009). Flexible cross-linking by both pentaerythritol and polyethyleneglycol spacer and its impact on the mechanical properties and the shape memory effects of polyurethane. Journal of Applied Polymer Science, 112(5), 2800-2808. doi:10.1002/app.29538
Mi, H.-Y., Jing, X., Hagerty, B. S., Chen, G., Huang, A., & Turng, L.-S. (2017). Post-crosslinkable biodegradable thermoplastic polyurethanes: Synthesis, and thermal, mechanical, and degradation properties. Materials & Design, 127, 106-114. doi:10.1016/j.matdes.2017.04.056
Lyu, S., & Untereker, D. (2009). Degradability of Polymers for Implantable Biomedical Devices. International Journal of Molecular Sciences, 10(9), 4033-4065. doi:10.3390/ijms10094033
Krsko, P., & Libera, M. (2005). Biointeractive hydrogels. Materials Today, 8(12), 36-44. doi:10.1016/s1369-7021(05)71223-2
Huxley, V. H., & Kemp, S. S. (2018). Sex-Specific Characteristics of the Microcirculation. Sex-Specific Analysis of Cardiovascular Function, 307-328. doi:10.1007/978-3-319-77932-4_20
Wesełucha-Birczyńska, A., Świętek, M., Sołtysiak, E., Galiński, P., Płachta, Ł., Piekara, K., & Błażewicz, M. (2015). Raman spectroscopy and the material study of nanocomposite membranes from poly(ε-caprolactone) with biocompatibility testing in osteoblast-like cells. The Analyst, 140(7), 2311-2320. doi:10.1039/c4an02284j
Blit, P. H., Battiston, K. G., Yang, M., Paul Santerre, J., & Woodhouse, K. A. (2012). Electrospun elastin-like polypeptide enriched polyurethanes and their interactions with vascular smooth muscle cells. Acta Biomaterialia, 8(7), 2493-2503. doi:10.1016/j.actbio.2012.03.032
Guan, J., Sacks, M. S., Beckman, E. J., & Wagner, W. R. (2004). Biodegradable poly(ether ester urethane)urea elastomers based on poly(ether ester) triblock copolymers and putrescine: synthesis, characterization and cytocompatibility. Biomaterials, 25(1), 85-96. doi:10.1016/s0142-9612(03)00476-9
Le, X., Poinern, G. E. J., Ali, N., Berry, C. M., & Fawcett, D. (2013). Engineering a Biocompatible Scaffold with Either Micrometre or Nanometre Scale Surface Topography for Promoting Protein Adsorption and Cellular Response. International Journal of Biomaterials, 2013, 1-16. doi:10.1155/2013/782549
Chen, L., Yan, C., & Zheng, Z. (2018). Functional polymer surfaces for controlling cell behaviors. Materials Today, 21(1), 38-59. doi:10.1016/j.mattod.2017.07.002
França de Sá, S., Ferreira, J. L., Matos, A. S., Macedo, R., & Ramos, A. M. (2016). A new insight into polyurethane foam deterioration - the use of Raman microscopy for the evaluation of long-term storage conditions. Journal of Raman Spectroscopy, 47(12), 1494-1504. doi:10.1002/jrs.4984
Xie, F., Zhang, T., Bryant, P., Kurusingal, V., Colwell, J. M., & Laycock, B. (2019). Degradation and stabilization of polyurethane elastomers. Progress in Polymer Science, 90, 211-268. doi:10.1016/j.progpolymsci.2018.12.003
Uscátegui, Y. L., Arévalo-Alquichire, S. J., Gómez-Tejedor, J. A., Vallés-Lluch, A., Díaz, L. E., & Valero, M. F. (2017). Polyurethane-based bioadhesive synthesized from polyols derived from castor oil (Ricinus communis) and low concentration of chitosan. Journal of Materials Research, 32(19), 3699-3711. doi:10.1557/jmr.2017.371
Horakova, J., Mikes, P., Saman, A., Jencova, V., Klapstova, A., Svarcova, T., … Lukas, D. (2018). The effect of ethylene oxide sterilization on electrospun vascular grafts made from biodegradable polyesters. Materials Science and Engineering: C, 92, 132-142. doi:10.1016/j.msec.2018.06.041
Liu, X., Xia, Y., Liu, L., Zhang, D., & Hou, Z. (2018). Synthesis of a novel biomedical poly(ester urethane) based on aliphatic uniform-size diisocyanate and the blood compatibility of PEG-grafted surfaces. Journal of Biomaterials Applications, 32(10), 1329-1342. doi:10.1177/0885328218763912
Uscátegui, Y., Díaz, L., Gómez-Tejedor, J., Vallés-Lluch, A., Vilariño-Feltrer, G., Serrano, M., & Valero, M. (2019). Candidate Polyurethanes Based on Castor Oil (Ricinus communis), with Polycaprolactone Diol and Chitosan Additions, for Use in Biomedical Applications. Molecules, 24(2), 237. doi:10.3390/molecules24020237
Adipurnama, I., Yang, M.-C., Ciach, T., & Butruk-Raszeja, B. (2017). Surface modification and endothelialization of polyurethane for vascular tissue engineering applications: a review. Biomaterials Science, 5(1), 22-37. doi:10.1039/c6bm00618c
Peng, Z., Zhou, P., Zhang, F., & Peng, X. (2018). Preparation and Properties of Polyurethane Hydrogels Based on Hexamethylene Diisocyanate/Polycaprolactone-Polyethylene Glycol. Journal of Macromolecular Science, Part B, 57(3), 187-195. doi:10.1080/00222348.2018.1439223
Baranowska-Korczyc, A., Warowicka, A., Jasiurkowska-Delaporte, M., Grześkowiak, B., Jarek, M., Maciejewska, B. M., … Jurga, S. (2016). Antimicrobial electrospun poly(ε-caprolactone) scaffolds for gingival fibroblast growth. RSC Advances, 6(24), 19647-19656. doi:10.1039/c6ra02486f
Zehnder, T., Freund, T., Demir, M., Detsch, R., & Boccaccini, A. (2016). Fabrication of Cell-Loaded Two-Phase 3D Constructs for Tissue Engineering. Materials, 9(11), 887. doi:10.3390/ma9110887
Hoque, M. E., San, W. Y., Wei, F., Li, S., Huang, M.-H., Vert, M., & Hutmacher, D. W. (2009). Processing of Polycaprolactone and Polycaprolactone-Based Copolymers into 3D Scaffolds, and Their Cellular Responses. Tissue Engineering Part A, 15(10), 3013-3024. doi:10.1089/ten.tea.2008.0355
[-]