RAVI BIRLA to Rats
This is a "connection" page, showing publications RAVI BIRLA has written about Rats.
Connection Strength
1.865
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Bioengineering Cardiac Tissue Constructs With Adult Rat Cardiomyocytes. ASAIO J. 2018 Sep/Oct; 64(5):e105-e114.
Score: 0.098
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The Bioengineered Cardiac Left Ventricle. ASAIO J. 2018 Jan/Feb; 64(1):56-62.
Score: 0.093
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The design and fabrication of a three-dimensional bioengineered open ventricle. J Biomed Mater Res B Appl Biomater. 2017 Nov; 105(8):2206-2217.
Score: 0.084
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Optimizing cell seeding and retention in a three-dimensional bioengineered cardiac ventricle: The two-stage cellularization model. Biotechnol Bioeng. 2016 10; 113(10):2275-85.
Score: 0.083
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Development of a Cyclic Strain Bioreactor for Mechanical Enhancement and Assessment of Bioengineered Myocardial Constructs. Cardiovasc Eng Technol. 2015 Dec; 6(4):533-45.
Score: 0.079
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Establishing the Framework for Fabrication of a Bioartificial Heart. ASAIO J. 2015 Jul-Aug; 61(4):429-36.
Score: 0.078
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32-Channel System to Measure the Electrophysiological Properties of Bioengineered Cardiac Muscle. IEEE Trans Biomed Eng. 2015 Jun; 62(6):1614-22.
Score: 0.076
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Establishing the Framework for Tissue Engineered Heart Pumps. Cardiovasc Eng Technol. 2015 Sep; 6(3):220-9.
Score: 0.076
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Engineering 3D bio-artificial heart muscle: the acellular ventricular extracellular matrix model. ASAIO J. 2015 Jan-Feb; 61(1):61-70.
Score: 0.076
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Establishing the framework to support bioartificial heart fabrication using fibrin-based three-dimensional artificial heart muscle. Artif Organs. 2015 Feb; 39(2):165-71.
Score: 0.073
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Optimizing a spontaneously contracting heart tissue patch with rat neonatal cardiac cells on fibrin gel. J Tissue Eng Regen Med. 2017 01; 11(1):153-163.
Score: 0.072
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Bypassing the patient: comparison of biocompatible models for the future of vascular tissue engineering. Cell Transplant. 2012; 21(1):269-83.
Score: 0.058
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Fabrication of functional cardiac, skeletal, and smooth muscle pumps in vitro. Artif Organs. 2011 Jan; 35(1):69-74.
Score: 0.057
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Variable optimization for the formation of three-dimensional self-organized heart muscle. In Vitro Cell Dev Biol Anim. 2009 Dec; 45(10):592-601.
Score: 0.052
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Novel bench-top perfusion system improves functional performance of bioengineered heart muscle. J Biosci Bioeng. 2009 Feb; 107(2):183-90.
Score: 0.050
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Changes in gene expression during the formation of bioengineered heart muscle. Artif Organs. 2009 Jan; 33(1):3-15.
Score: 0.050
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Cardiac cells implanted into a cylindrical, vascularized chamber in vivo: pressure generation and morphology. Biotechnol Lett. 2009 Feb; 31(2):191-201.
Score: 0.049
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Force characteristics of in vivo tissue-engineered myocardial constructs using varying cell seeding densities. Artif Organs. 2008 Sep; 32(9):684-91.
Score: 0.049
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New and simplified method for multiple left ventricle catheterizations in small animals. Interact Cardiovasc Thorac Surg. 2008 Oct; 7(5):925-7.
Score: 0.048
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Design and fabrication of heart muscle using scaffold-based tissue engineering. J Biomed Mater Res A. 2008 Jul; 86(1):195-208.
Score: 0.048
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Effect of streptomycin on the active force of bioengineered heart muscle in response to controlled stretch. In Vitro Cell Dev Biol Anim. 2008 Jul-Aug; 44(7):253-60.
Score: 0.048
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Effect of thyroid hormone on the contractility of self-organized heart muscle. In Vitro Cell Dev Biol Anim. 2008 Jul-Aug; 44(7):204-13.
Score: 0.048
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Modulating the functional performance of bioengineered heart muscle using growth factor stimulation. Ann Biomed Eng. 2008 Aug; 36(8):1372-82.
Score: 0.048
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Methodology for the formation of functional, cell-based cardiac pressure generation constructs in vitro. In Vitro Cell Dev Biol Anim. 2008 Sep-Oct; 44(8-9):340-50.
Score: 0.048
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Development of a microperfusion system for the culture of bioengineered heart muscle. ASAIO J. 2008 May-Jun; 54(3):284-94.
Score: 0.048
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Micro-perfusion for cardiac tissue engineering: development of a bench-top system for the culture of primary cardiac cells. Ann Biomed Eng. 2008 May; 36(5):713-25.
Score: 0.047
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Development of a novel bioreactor for the mechanical loading of tissue-engineered heart muscle. Tissue Eng. 2007 Sep; 13(9):2239-48.
Score: 0.046
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Contractile three-dimensional bioengineered heart muscle for myocardial regeneration. J Biomed Mater Res A. 2007 Mar 01; 80(3):719-31.
Score: 0.044
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In vivo conditioning of tissue-engineered heart muscle improves contractile performance. Artif Organs. 2005 Nov; 29(11):866-75.
Score: 0.040
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Myocardial engineering in vivo: formation and characterization of contractile, vascularized three-dimensional cardiac tissue. Tissue Eng. 2005 May-Jun; 11(5-6):803-13.
Score: 0.039
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Electrical Stimulation of Artificial Heart Muscle: A Look Into the Electrophysiologic and Genetic Implications. ASAIO J. 2017 May/Jun; 63(3):333-341.
Score: 0.022
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Human thymus mesenchymal stromal cells augment force production in self-organized cardiac tissue. Ann Thorac Surg. 2010 Sep; 90(3):796-803; discussion 803-4.
Score: 0.014
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Microfeature guided skeletal muscle tissue engineering for highly organized 3-dimensional free-standing constructs. Biomaterials. 2009 Feb; 30(6):1150-5.
Score: 0.013
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Self-organization of rat cardiac cells into contractile 3-D cardiac tissue. FASEB J. 2005 Feb; 19(2):275-7.
Score: 0.009