Biomedical Engineering Reference
In-Depth Information
50. Buijs, J.O.D., Lu, L., Jorgensen, S.M., Dragomir-Daescu, D., Yaszemski, M.J., Ritman, E.L.:
Solute transport in cyclically deformed porous tissue scaffolds with controlled pore cross-
sectional geometries. Tissue Eng. Part A 15(8), 1989-1999 (2009). doi: 10.1089/ten.tea.2008.
0382
51. Greisler, H.P., Joyce, K.A., Kim, D.U., Pham, S.M., Berceli, S.A., Borovetz, H.S.: Spatial
and temporal changes in compliance following implantation of bioresorbable vascular grafts.
J. Biomed. Mater. Res. 26, 1449-1461 (2004). doi: 10.1002/jbm.820261105
52. Song, Y., Wennink, J.W.H., Kamphuis, M.M.J., Sterk, L.M.T., Vermes, I., Poot, A.A.,
Feijen, J., Grijpma, D.W.: Dynamic culturing of smooth muscle cells in tubular poly
(trimethylene carbonate) scaffolds for vascular tissue engineering. Tissue Eng. Part A (2010,
in press). doi: 10.1089/ten.tea.2009.0805
53. Hahn, M.S., Mchale, M.K., Wang, E., Schmedlen, R.H., West, J.I.: Physiologic pulsatile flow
bioreactor conditioning of poly(ethyleneglycol)-based tissue engineered vascular grafts. Ann.
Biomed. Eng. 35(2), 190-200 (2007). doi: 10.1007/s10439-006-9099-3
54. London, G.M., Marchais, S.J., Guerin, A.P., Pannier, B.: Arterial stiffness: pathophysiology
and clinical impact. Clin. Exp. Hypertens. 26(7-8), 689-699 (2004)
55. Jeong, S.I., Kwon, J.H., Lim, J.I., Cho, S.W., Jung, Y.M., Sung, W.J., Kim, S.H., Kim, Y.H.,
Lee, Y.M., Kim, B.S., Choi, C.Y., Kim, S.J.: Mechanoactive tissue engineering of vascular
smooth muscle using pulsatile perfusion bioreactors and elastic PLCL scaffolds. Biomaterials
26, 1405-1411 (2005). doi: 10.1016/j.biomaterials.2004.04.036
56. Stankus, J.J., Guan, J., Fujimoto, K., Wagner, W.R.: Microintegrating smooth muscle cells in
a biodegradable elastomeric fibre matrix. Biomaterials 27(5), 735-744 (2006). doi: 10.1016/
j.biomaterials.2005.06.020
57. Creane, A., Maher, E., Sultan, S., Hynes, N., Kelly, D., Lally, C.: A remodelling metric for
angular fibre distributions and its application to diseased carotid bifurcations. Biomech.
Model. Mechanobiol. 11(6), 869-882 (2012)
58. Zahedmanesh, H., Van Oosterwyck, H., Lally, C.: A multi-scale mechanobiological model of
in-stent restenosis: deciphering the role of matrix metalloproteinase and extracellular matrix
changes. Comput. Meth. Biomech. Biomed. Eng. (2012) doi: 10.1080/10255842.2012.716830
Search WWH ::




Custom Search