Allen, T. D., and S. T. Schor. The contraction of collagen matrices by dermal fibroblasts. J. Ultrastruct. Res. 83:205–219, 1983.
PubMed
Article
CAS
Google Scholar
Ateshian, G. A., H. Wang, and W. M. Lai. The role of interstitial fluid pressurization and surface porosities on the boundary friction of articular cartilage. J. Tribol. ASME 120:241–251, 1998.
Article
Google Scholar
Bell, E., B. Evarsson, and C. Merrill. Production of a tissue-like structure by contraction of collagen lattices by human fibroblasts of different proliferative potential in vitro. Proc. Natl. Acad. Sci. 76:1274–1278, 1979.
PubMed
Article
CAS
Google Scholar
Bowen, R. Theory of mixtures. In: Continuum Physics, Vol. 3, edited by A. E. Eringen. New York, NY: Academic Press, 1976, pp. 1–127.
Google Scholar
Breuls, R. G. M., B. G. Sengers, C. W. J. Oomens, C. V. C. Bouten, and F. P. T. Baaijens. Predicting local cell deformations in engineered tissue constructs: a multilevel finite element approach. J. Biomech. Eng. 124(2):198–208, 2002.
PubMed
Article
Google Scholar
Chan, B., P. S. Donzelli, and R. L. Spilker. A mixed-penalty biphasic finite element formulation incorporating viscous fluids and material interfaces. Ann. Biomed. Eng. 28:589–597, 2000.
PubMed
Article
CAS
Google Scholar
Chen, X., and M. Sarntinoranont. Biphasic finite element model of solute transport for direct infusion into nervous tissue. Ann. Biomed Eng. 35(12):2145–2158, 2007.
PubMed
Article
Google Scholar
Chevallay, B., and D. Herbage. Collagen-based biomaterials as 3D scaffold for cell cultures: applications for tissue engineering and gene therapy. Med. Biol. Eng. Comput. 38:211–218, 2000.
PubMed
Article
CAS
Google Scholar
Cummings, C. L., D. Gawlitta, R. M. Nerem, and J. P. Stegemann. Properties of engineered vascular constructs made from collagen, fibrin, and collagen–fibrin mixtures. Biomaterials 25(17):3699–3706, 2004.
PubMed
Article
CAS
Google Scholar
Freed, L. E. Advanced tools for tissue engineering: scaffolds, bioreactors, and signaling. Tissue Eng. 12(12):3285–3305, 2006.
PubMed
Article
CAS
Google Scholar
Galie, P. A., and J. P. Stegemann. Simultaneous application of interstitial flow and cyclic mechanical strain to a 3D cell-seeded hydrogel. Tissue Eng. C 17(5):527–536, 2011.
Article
CAS
Google Scholar
Galie, P. A., M. V. Westfall, and J. P. Stegemann. Reduced serum content and increased matrix stiffness promote the cardiac myofibroblast transition in 3D collagen matrices. Cardiovasc. Pathol. 2011 [Epub ahead of print].
Ghosh, K., et al. Cell adaptation to a physiologically relevant ECM mimic with different viscoelastic properties. Biomaterials 28(4):671–679, 2007.
PubMed
Article
CAS
Google Scholar
Grinnell, F. Fibroblast biology in three-dimensional collagen matrices. Trends Cell Biol. 13(5):264–269, 2003.
PubMed
Article
CAS
Google Scholar
Gudi, S. R. P., A. A. Lee, C. B. Clark, and J. A. Frangos. Equibiaxial strain and strain rate stimulate early activation of G proteins in cardiac fibroblasts. Am. J. Physiol. Cell Physiol. 274(5):C1424–C1428, 1998.
CAS
Google Scholar
Guilak, F., and V. C. Mow. The mechanical environment of the chondrocyte: a biphasic finite element model of cell–matrix interactions in articular cartilage. J. Biomech. 33(12):1663–1673, 2000.
PubMed
Article
CAS
Google Scholar
Holmes, M. H. Finite deformation theory of soft tissue: analysis of a mixture model in uniaxial compression. J. Biomech. Eng. 108:372–381, 1986.
PubMed
Article
CAS
Google Scholar
Hou, J. S., M. H. Holmes, W. M. Lai, and V. C. Mow. Boundary conditions at the cartilage-synovial fluid interface for joint lubrication and theoretical verifications. J. Biomech. Eng. 111:78–87, 1989.
PubMed
Article
CAS
Google Scholar
Kenyon, D. E. The theory of an incompressible solid–fluid mixture. Arch. Ration. Mech. Anal. 62:131–147, 1976.
Google Scholar
Kisiday, J., M. Jin, B. Kurz, et al. Self-assembling peptide hydrogel fosters chondrocyte extracellular matrix production and cell division: implications for cartilage tissue repair. PNAS 99(15):9996–10001, 2002.
PubMed
Article
CAS
Google Scholar
Mak, A. K., W. M. Lai, and V. C. Mow. Biphasic indentation of articular cartilage—I. Theoretical analysis. J. Biomech. 20(7):703–714, 1987.
PubMed
Article
CAS
Google Scholar
McGuire, S., D. Zaharoff, and F. Yuan. Nonlinear dependence of hydraulic conductivity on tissue deformation during intratumoral infusion. Ann. Biomed Eng. 34(7):1173–1181, 2006.
PubMed
Article
Google Scholar
Mow, V. C., S. C. Kuei, W. M. Lai, and C. G. Armstrong. Biphasic creep and stress relaxation of articular cartilage in compression: theory and experiments. J. Biomech. Eng. 102:73–84, 1980.
PubMed
Article
CAS
Google Scholar
O’Brien, F. J., B. A. Harley, M. A. Waller, I. V. Yannas, L. J. Gibson, and P. J. Prendergast. The effect of pore size on permeability and cell attachment in collagen scaffolds for tissue engineering. Technol. Health Care 15:3–17, 2007.
PubMed
Google Scholar
Ramanujan, S., A. Pluen, T. D. McKee, E. B. Brown, Y. Boucher, and R. K. Jain. Diffusion and convection in collagen gels: implications for transport in the tumor interstitium. Biophys. J. 83:1650–1660, 2002.
PubMed
Article
CAS
Google Scholar
Slomka, N., S. Or-Tzadikario, D. Sassun, and A. Gefen. Membrane-stretch-induced cell death in deep tissue injury: computer model studies. Cell. Mol. Bioeng. 2(1):118–132, 2009.
Article
CAS
Google Scholar
Spilker, R. L., J.-K. Suh, and V. C. Mow. A finite element formulation of the nonlinear biphasic model for articular cartilage and hydrated soft tissues including strain-dependent permeability. In: Computational Methods in Bioengineering, edited by R. L. Spilker, and B. R. Simon. New York: ASME, 1982, pp. 81–92.
Google Scholar
Stegemann, J. P., H. Hong, and R. M. Nerem. Mechanical, biochemical, and extracellular matrix effects on vascular smooth muscle cell phenotype. J. Appl. Physiol. 98:2321–2327, 2005.
PubMed
Article
Google Scholar
Stegemann, J. P., and R. M. Nerem. Phenotype modulation in vascular tissue engineering using biochemical and mechanical stimulation. Ann. Biomed. Eng. 31(4):391–402, 2003.
PubMed
Article
Google Scholar
Stops, A. J. F., and L. A. McMahon. A finite element prediction of strain on cells in a highly porous collagen-glycosaminoglycan scaffold. J. Biomech. Eng. 130(6):100–111, 2008.
Article
Google Scholar
Stylianopoulos, T. Volume-averaging theory for the study of the mechanics of collagen networks. Comput. Methods Appl. Mech. Eng. 196(31–32):2981–2990, 2007.
Article
Google Scholar
Wang, D. M., and J. M. Tarbell. Modeling interstitial flow in an artery wall allows estimation of wall shear stress on smooth muscle Cells. J. Biomech. Eng. 117(3):358–364, 1995.
PubMed
Article
CAS
Google Scholar
Weinand, C., I. Pomerantseva, C. M. Neville, R. Gupta, E. Weinberg, I. Madisch, F. Shapiro, H. Abukawa, M. J. Troulis, and J. P. Vacanti. Hydrogel-β-TCP scaffolds and stem cells for tissue engineering bone. Bone 38(4):555–563, 2006.
PubMed
Article
CAS
Google Scholar