Mechanical stimulation in the engineering of heart muscle.
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[1] E. Schiffrin,et al. Mechanics and composition of human subcutaneous resistance arteries in essential hypertension. , 1999, Hypertension.
[2] Milica Radisic,et al. Functional assembly of engineered myocardium by electrical stimulation of cardiac myocytes cultured on scaffolds , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[3] Gordon Keller,et al. Stage-specific optimization of activin/nodal and BMP signaling promotes cardiac differentiation of mouse and human pluripotent stem cell lines. , 2011, Cell stem cell.
[4] V. Regitz-Zagrosek,et al. Differential Cardiac Remodeling in Preload Versus Afterload , 2010, Circulation.
[5] Praveen Shukla,et al. Chemically defined generation of human cardiomyocytes , 2014, Nature Methods.
[6] T. Dubose,et al. Embryonic Heart Rate and Age , 1990 .
[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] M. Franklin,et al. Cardiomyocyte DNA synthesis and binucleation during murine development. , 1996, The American journal of physiology.
[9] R E Poelmann,et al. Extraembryonic venous obstructions lead to cardiovascular malformations and can be embryolethal. , 1999, Cardiovascular research.
[10] E. Schiffrin,et al. Resistance artery mechanics, structure, and extracellular components in spontaneously hypertensive rats : effects of angiotensin receptor antagonism and converting enzyme inhibition. , 1999, Circulation.
[11] R E Poelmann,et al. Intracardiac blood flow patterns related to the yolk sac circulation of the chick embryo. , 1995, Circulation research.
[12] Robert H. Anderson,et al. DEVELOPMENT OF THE HEART: (1) FORMATION OF THE CARDIAC CHAMBERS AND ARTERIAL TRUNKS , 2003, Heart.
[13] N. Alpert,et al. Altered Myocardial Force‐Frequency Relation in Human Heart Failure , 1992, Circulation.
[14] Biomechanical regulation of in vitro cardiogenesis for tissue-engineered heart repair , 2013, Stem Cell Research & Therapy.
[15] Eva Wagner,et al. Physiologic force-frequency response in engineered heart muscle by electromechanical stimulation. , 2015, Biomaterials.
[16] Robert H. Anderson,et al. Development of the heart: (2) Septation of the atriums and ventricles , 2003, Heart.
[17] S. Shroff,et al. Engineered early embryonic cardiac tissue retains proliferative and contractile properties of developing embryonic myocardium. , 2006, American journal of physiology. Heart and circulatory physiology.
[18] M. Endoh. Force-frequency relationship in intact mammalian ventricular myocardium: physiological and pathophysiological relevance. , 2004, European journal of pharmacology.
[19] Justin S. Weinbaum,et al. Cell-induced alignment augments twitch force in fibrin gel-based engineered myocardium via gap junction modification. , 2009, Tissue engineering. Part A.
[20] Lil Pabon,et al. Get with the (re)program: cardiovascular potential of skin-derived induced pluripotent stem cells. , 2008, Circulation.
[21] Nenad Bursac,et al. Tissue-engineered cardiac patch for advanced functional maturation of human ESC-derived cardiomyocytes. , 2013, Biomaterials.
[22] Wolfram-Hubertus Zimmermann,et al. Cardiac Tissue Engineering for Replacement Therapy , 2003, Heart Failure Reviews.
[23] G M Hutchins,et al. The development of the semilunar valves in the human heart. , 1974, The American journal of pathology.
[24] Kotaro Oyama,et al. Cardiac thin filament regulation and the Frank–Starling mechanism , 2014, The Journal of Physiological Sciences.
[25] J. Leor,et al. Bioengineered Cardiac Grafts: A New Approach to Repair the Infarcted Myocardium? , 2000, Circulation.
[26] H. Schulz,et al. Functional improvement and maturation of rat and human engineered heart tissue by chronic electrical stimulation. , 2014, Journal of molecular and cellular cardiology.
[27] J. Lüdemann,et al. Existence of the Frank-Starling mechanism in the failing human heart. Investigations on the organ, tissue, and sarcomere levels. , 1996, Circulation.
[28] Wolfram-Hubertus Zimmermann,et al. Optimizing Engineered Heart Tissue for Therapeutic Applications as Surrogate Heart Muscle , 2006, Circulation.
[29] L. Ye,et al. Patching the Heart: Cardiac Repair From Within and Outside , 2013, Circulation research.
[30] Mitsuo Umezu,et al. Fabrication of Pulsatile Cardiac Tissue Grafts Using a Novel 3-Dimensional Cell Sheet Manipulation Technique and Temperature-Responsive Cell Culture Surfaces , 2002, Circulation research.
[31] Wolfgang A. Linke,et al. Terminal Differentiation, Advanced Organotypic Maturation, and Modeling of Hypertrophic Growth in Engineered Heart Tissue , 2011, Circulation research.
[32] Sean P. Palecek,et al. Chemically defined, albumin-free human cardiomyocyte generation , 2015, Nature Methods.
[33] P. Kirshbom,et al. Force Frequency Relationship of the Human Ventricle Increases During Early Postnatal Development , 2009, Pediatric Research.
[34] Gordon Keller,et al. Production of de novo cardiomyocytes: human pluripotent stem cell differentiation and direct reprogramming. , 2012, Cell stem cell.
[35] Lior Gepstein,et al. Controlling the Cellular Organization of Tissue‐Engineered Cardiac Constructs , 2004, Annals of the New York Academy of Sciences.
[36] Kumaraswamy Nanthakumar,et al. Biowire: a New Platform for Maturation of Human Pluripotent Stem Cell Derived Cardiomyocytes Pubmed Central Canada , 2022 .
[37] Edwin Chandraharan,et al. Use of Continuous Electronic Fetal Monitoring in a Preterm Fetus: Clinical Dilemmas and Recommendations for Practice , 2011, Journal of pregnancy.
[38] K Sagawa,et al. Translation of Otto Frank's paper "Die Grundform des Arteriellen Pulses" Zeitschrift für Biologie 37: 483-526 (1899). , 1990, Journal of molecular and cellular cardiology.
[39] Andreas Hess,et al. Engineered heart tissue grafts improve systolic and diastolic function in infarcted rat hearts , 2006, Nature Medicine.
[40] J. Weil,et al. Preserved Frank-Starling mechanism in human end stage heart failure. , 1998, Cardiovascular research.
[41] W. Zimmermann,et al. Tissue Engineering of a Differentiated Cardiac Muscle Construct , 2002, Circulation research.
[42] F J Schoen,et al. Cardiac tissue engineering: cell seeding, cultivation parameters, and tissue construct characterization. , 1999, Biotechnology and bioengineering.
[43] R. Gerrity,et al. Age‐Related Changes in Ploidy Levels and Biochemical Parameters in Cardiac Myocytes Isolated from Spontaneously Hypertensive Rats , 1986, Circulation research.
[44] Robert H. Anderson,et al. Development of the heart: (3) Formation of the ventricular outflow tracts, arterial valves, and intrapericardial arterial trunks , 2003, Heart.
[45] Sandra Rugonyi,et al. Biomechanics of early cardiac development , 2012, Biomechanics and modeling in mechanobiology.
[46] R Langer,et al. Biomimetic approach to cardiac tissue engineering , 2007, Philosophical Transactions of the Royal Society B: Biological Sciences.
[47] S Udenfriend,et al. Increased turnover of arterial collagen in hypertensive rats. , 1978, Proceedings of the National Academy of Sciences of the United States of America.
[48] W. Zimmermann,et al. Three-dimensional engineered heart tissue from neonatal rat cardiac myocytes. , 2000, Biotechnology and bioengineering.
[49] R. Arcilla,et al. Intracardiac Flow Patterns in Early Embryonic Life: A Reexamination , 1983, Circulation research.
[50] T. Ichisaka,et al. Induction of Pluripotent Stem Cells from Adult Human Fibroblasts by Defined Factors , 2007, Cell.
[51] P. Janssen. Myocardial contraction-relaxation coupling. , 2010, American journal of physiology. Heart and circulatory physiology.
[52] O. Frazier,et al. Metabolic Gene Expression in Fetal and Failing Human Heart , 2001, Circulation.
[53] S. Chien. Mechanotransduction and endothelial cell homeostasis: the wisdom of the cell. , 2007, American journal of physiology. Heart and circulatory physiology.
[54] O. Frank,et al. Die grundform des arteriellen pulses , 1899 .
[55] Charles E. Murry,et al. Growth of Engineered Human Myocardium With Mechanical Loading and Vascular Coculture , 2011, Circulation research.
[56] C. Adler,et al. Myocardial DNA content, ploidy level and cell number in geriatric hearts: post-mortem examinations of human myocardium in old age. , 1986, Journal of molecular and cellular cardiology.
[57] J. Thomson,et al. Embryonic stem cell lines derived from human blastocysts. , 1998, Science.
[58] Donald M Bers,et al. Dynamic Regulation of Sodium/Calcium Exchange Function in Human Heart Failure , 2003, Circulation.
[59] R. Weisel,et al. Survival and function of bioengineered cardiac grafts. , 1999, Circulation.
[60] Gabriel Acevedo-Bolton,et al. Intracardiac fluid forces are an essential epigenetic factor for embryonic cardiogenesis , 2003, Nature.
[61] R J Cohen,et al. Cardiac muscle tissue engineering: toward an in vitro model for electrophysiological studies. , 1999, American journal of physiology. Heart and circulatory physiology.
[62] A. Boulesteix,et al. What is the “normal” fetal heart rate? , 2013, PeerJ.
[63] K. Pekkan,et al. Investigating developmental cardiovascular biomechanics and the origins of congenital heart defects , 2014, Front. Physiol..
[64] Wolfram-Hubertus Zimmermann,et al. Development of a Biological Ventricular Assist Device: Preliminary Data From a Small Animal Model , 2007, Circulation.
[65] Kohtaro Kamino,et al. Localization of pacemaking activity in early embryonic heart monitored using voltage-sensitive dye , 1981, Nature.