Perfusion improves tissue architecture of engineered cardiac muscle.
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Gordana Vunjak-Novakovic | Maria Rupnick | Frederick J Schoen | Rebecca L Carrier | Lisa E Freed | G. Vunjak‐Novakovic | R. Langer | F. Schoen | L. Freed | R. Carrier | Robert Langer | M. Rupnick
[1] N Dunkelman,et al. Bioreactor Development for Tissue‐Engineered Cartilage , 1999, Annals of the New York Academy of Sciences.
[2] W. Zimmermann,et al. Tissue Engineering of a Differentiated Cardiac Muscle Construct , 2002, Circulation research.
[3] F J Schoen,et al. Cardiac tissue engineering: cell seeding, cultivation parameters, and tissue construct characterization. , 1999, Biotechnology and bioengineering.
[4] A. Samarel,et al. Regulation of rat ventricular myosin heavy chain expression by serum and contractile activity. , 1994, The American journal of physiology.
[5] D J Mooney,et al. Release from alginate enhances the biological activity of vascular endothelial growth factor. , 1998, Journal of biomaterials science. Polymer edition.
[6] K Rakusan,et al. Functional capillary density in normal and transplanted rat hearts. , 1982, Canadian journal of physiology and pharmacology.
[7] Thomas Eschenhagen,et al. Three‐dimensional reconstitution of embryonic cardiomyocytes in a collagen matrix: a new heart muscle model system , 1997, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[8] W. Grunewald,et al. Distribution of the myocardial tissuePO2 in the rat and the inhomogeneity of the coronary bed , 1978, Pflügers Archiv.
[9] A. Ratcliffe,et al. Repair of osteochondral defects with allogeneic tissue engineered cartilage implants. , 1999, Clinical orthopaedics and related research.
[10] W W Minuth,et al. Artificial Tissues in Perfusion Culture , 1997, The International journal of artificial organs.
[11] Doris A Taylor,et al. Regenerating functional myocardium: Improved performance after skeletal myoblast transplantation , 1998, Nature Medicine.
[12] M. Kwan,et al. Cartilage production by rabbit articular chondrocytes on polyglycolic acid scaffolds in a closed bioreactor system , 1995, Biotechnology and bioengineering.
[13] P. Bianco,et al. Stem cells in tissue engineering , 2001, Nature.
[14] L. G. Cima,et al. Engineering human tissue , 1993 .
[15] D. F. James,et al. The permeability of fibrous porous media , 1986 .
[16] S. Deutsch. Shut off that heater (or air conditioning) unit! , 2003, IEEE Engineering in Medicine and Biology Magazine.
[17] Junzo Tanaka,et al. Application of perfusion culture system improves in vitro and in vivo osteogenesis of bone marrow-derived osteoblastic cells in porous ceramic materials. , 2003, Tissue engineering.
[18] W. Wilfinger,et al. Fluorometric quantification of DNA in cells and tissue. , 1983, Analytical biochemistry.
[19] Alexander M Seifalian,et al. The use of animal models in developing the discipline of cardiovascular tissue engineering: a review. , 2004, Biomaterials.
[20] D. Fischman,et al. Myosin heavy chain expression in embryonic cardiac cell cultures. , 1986, Developmental biology.
[21] Gordana Vunjak-Novakovic,et al. Effects of mixing on the composition and morphology of tissue‐engineered cartilage , 1996 .
[22] N. Stathopoulos,et al. Shear stress effects on human embryonic kidney cells in Vitro , 1985, Biotechnology and bioengineering.
[23] Thomas Eschenhagen,et al. Chronic stretch of engineered heart tissue induces hypertrophy and functional improvement , 2000, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[24] Gordana Vunjak-Novakovic,et al. Tissue Engineering of Cartilage , 1999 .
[25] D L Eckberg,et al. Mathematical treatment of autonomic oscillations. , 1999, Circulation.
[26] B. Obradovic,et al. Bioreactor cultivation conditions modulate the composition and mechanical properties of tissue‐engineered cartilage , 1999, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[27] David J. Mooney,et al. Tissue engineering using synthetic extracellular matrices , 1996, Nature Medicine.
[28] David M. Bodine,et al. Bone marrow cells regenerate infarcted myocardium , 2001, Nature.
[29] K Rakusan,et al. The effect of growth and aging on functional capillary supply of the rat heart. , 1982, Growth.
[30] R Langer,et al. Tissue engineering of functional cardiac muscle: molecular, structural, and electrophysiological studies. , 2001, American journal of physiology. Heart and circulatory physiology.
[31] M. Papadaki. Cardiac muscle tissue engineering. , 2003, IEEE engineering in medicine and biology magazine : the quarterly magazine of the Engineering in Medicine & Biology Society.
[32] D. Wendt,et al. Oscillating perfusion of cell suspensions through three‐dimensional scaffolds enhances cell seeding efficiency and uniformity , 2003, Biotechnology and bioengineering.
[33] M. Seraydarian,et al. Oxygen consumption of mammalian myocardial cells in culture: measurements in beating cells attached to the substrate of the culture dish. , 1985, Analytical biochemistry.
[34] Daniel I. C. Wang,et al. Fiber bed reactor design for animal cell culture , 1989, Biotechnology and bioengineering.
[35] J. Leor,et al. Bioengineered Cardiac Grafts: A New Approach to Repair the Infarcted Myocardium? , 2000, Circulation.
[36] R Langer,et al. Stabilized polyglycolic acid fibre-based tubes for tissue engineering. , 1996, Biomaterials.
[37] Y. Kira,et al. Effect of long-term cyclic mechanical load on protein synthesis and morphological changes in cultured Myocardial cells from neonatal rat , 1994, Cardiovascular Drugs and Therapy.
[38] K. Schügerl,et al. Response of mammalian cells to shear stress , 1991, Applied Microbiology and Biotechnology.
[39] Karen Birmingham,et al. the heart , 2002, Nature.
[40] P. Greenfield,et al. Shear sensitivity of three hybridoma cell lines in suspension culture , 1987 .
[41] J. Drummond,et al. Laminar viscous flow through regular arrays of parallel solid cylinders , 1984 .
[42] Robert Langer,et al. Biodegradable Polymer Scaffolds for Tissue Engineering , 1994, Bio/Technology.
[43] C. Cooney,et al. Model of oxygen transport limitations in hollow fiber bioreactors , 1991, Biotechnology and bioengineering.
[44] R. E. Spier,et al. Modern Approaches to Animal Cell Technology , 1987 .
[45] G. Koh,et al. Potential Approaches for Myocardial Regeneration a , 1995, Annals of the New York Academy of Sciences.
[46] Gordana Vunjak-Novakovic,et al. Cultivation in rotating bioreactors promotes maintenance of cardiac myocyte electrophysiology and molecular properties. , 2003, Tissue engineering.
[47] H. Vandenburgh,et al. Bioreactor perfusion system for the long-term maintenance of tissue-engineered skeletal muscle organoids , 1998, In Vitro Cellular & Developmental Biology - Animal.
[48] Clark K. Colton,et al. Implantable Biohybrid Artificial Organs , 1995 .
[49] R. Weisel,et al. Survival and function of bioengineered cardiac grafts. , 1999, Circulation.
[50] M. Steinhausen,et al. Microcirculation of the epimyocardial layer of the heart , 1978, Pflügers Archiv.
[51] R J Cohen,et al. Cardiac muscle tissue engineering : toward an in vitro model for electrophysiological studies , 1999 .
[52] S R Gonda,et al. Cardiac organogenesis in vitro: reestablishment of three-dimensional tissue architecture by dissociated neonatal rat ventricular cells. , 1999, Tissue engineering.
[53] Milica Radisic,et al. High-density seeding of myocyte cells for cardiac tissue engineering. , 2003, Biotechnology and bioengineering.
[54] L. Freed. Tissue culture bioreactors ; chondrogenesis as a model system , 1997 .