Literature DB >> 12878835

Cardiac tissue engineering for replacement therapy.

Wolfram-Hubertus Zimmermann1, Thomas Eschenhagen.   

Abstract

Cell therapy is a new concept to repair diseased organs. For patients with myocardial infarction, heart failure, and congenital heart diseases cell based therapies might represent a potential cure. The field can be subdivided into two principally different approaches: (1) Implantation of isolated cells and (2) implantation of in vitro engineered tissue constructs. This review will focus on the latter approach. Cardiac tissue engineering comprises the fields of material sciences and cell biology. In general, scaffold materials such as gelatin, collagen, alginate, or synthetic polymers and cardiac cells are utilized to reconstitute tissue-like constructs in vitro. Ideally, these constructs display properties of native myocardium such as coherent contractions, low diastolic tension, and syncytial propagation of action potentials. To be applicable for surgical repair of diseased myocardium engineered tissue constructs should have the propensity to integrate and remain contractile in vivo. Size and mechanical properties of engineered constructs are critical for surgical repair of large tissue defects. Successful application of tissue engineering in men will depend on the utilization of an autologous or non-immunogeneic cell source and scaffold material to avoid life long immunosuppression. This review will give an overview of recent approaches in cardiac tissue engineering and its first applications in vivo. We will discuss materials and cell sources for cardiac tissue engineering. Further, principle obstacles will be addressed. Cardiac tissue engineering for replacement therapy has an intriguing perspective, but is in its early days. Its true value remains to be thoroughly evaluated.

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Year:  2003        PMID: 12878835     DOI: 10.1023/a:1024725818835

Source DB:  PubMed          Journal:  Heart Fail Rev        ISSN: 1382-4147            Impact factor:   4.214


  78 in total

1.  Cardiac muscle tissue engineering: toward an in vitro model for electrophysiological studies.

Authors:  N Bursac; M Papadaki; R J Cohen; F J Schoen; S R Eisenberg; R Carrier; G Vunjak-Novakovic; L E Freed
Journal:  Am J Physiol       Date:  1999-08

2.  Three-dimensional engineered heart tissue from neonatal rat cardiac myocytes.

Authors:  W H Zimmermann; C Fink; D Kralisch; U Remmers; J Weil; T Eschenhagen
Journal:  Biotechnol Bioeng       Date:  2000-04-05       Impact factor: 4.530

3.  Functional living trileaflet heart valves grown in vitro.

Authors:  S P Hoerstrup; R Sodian; S Daebritz; J Wang; E A Bacha; D P Martin; A M Moran; K J Guleserian; J S Sperling; S Kaushal; J P Vacanti; F J Schoen; J E Mayer
Journal:  Circulation       Date:  2000-11-07       Impact factor: 29.690

Review 4.  Biomaterials and scaffolds in reparative medicine.

Authors:  Elliot L Chaikof; Howard Matthew; Joachim Kohn; Antonios G Mikos; Glenn D Prestwich; Christopher M Yip
Journal:  Ann N Y Acad Sci       Date:  2002-06       Impact factor: 5.691

5.  Activation of cardiac gene expression by myocardin, a transcriptional cofactor for serum response factor.

Authors:  D Wang; P S Chang; Z Wang; L Sutherland; J A Richardson; E Small; P A Krieg; E N Olson
Journal:  Cell       Date:  2001-06-29       Impact factor: 41.582

6.  Existence of the Frank-Starling mechanism in the failing human heart. Investigations on the organ, tissue, and sarcomere levels.

Authors:  C Holubarsch; T Ruf; D J Goldstein; R C Ashton; W Nickl; B Pieske; K Pioch; J Lüdemann; S Wiesner; G Hasenfuss; H Posival; H Just; D Burkhoff
Journal:  Circulation       Date:  1996-08-15       Impact factor: 29.690

7.  Survival and function of bioengineered cardiac grafts.

Authors:  R K Li; Z Q Jia; R D Weisel; D A Mickle; A Choi; T M Yau
Journal:  Circulation       Date:  1999-11-09       Impact factor: 29.690

8.  Chimerism of the transplanted heart.

Authors:  Federico Quaini; Konrad Urbanek; Antonio P Beltrami; Nicoletta Finato; Carlo A Beltrami; Bernardo Nadal-Ginard; Jan Kajstura; Annarosa Leri; Piero Anversa
Journal:  N Engl J Med       Date:  2002-01-03       Impact factor: 91.245

9.  Evidence for protein phosphatase inhibitor-1 playing an amplifier role in beta-adrenergic signaling in cardiac myocytes.

Authors:  Ali El-Armouche; Thomas Rau; Oliver Zolk; Diana Ditz; Torsten Pamminger; Wolfram-H Zimmermann; Elmar Jäckel; Sian E Harding; Peter Boknik; Joachim Neumann; Thomas Eschenhagen
Journal:  FASEB J       Date:  2003-01-02       Impact factor: 5.191

10.  Functional capillary density in normal and transplanted rat hearts.

Authors:  B Korecky; C M Hai; K Rakusan
Journal:  Can J Physiol Pharmacol       Date:  1982-01       Impact factor: 2.273

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  33 in total

1.  Adipose tissue-derived stem cells display a proangiogenic phenotype on 3D scaffolds.

Authors:  Evgenios A Neofytou; Edwin Chang; Bhagat Patlola; Lydia-Marie Joubert; Jayakumar Rajadas; Sanjiv S Gambhir; Zhen Cheng; Robert C Robbins; Ramin E Beygui
Journal:  J Biomed Mater Res A       Date:  2011-05-31       Impact factor: 4.396

2.  Novel biodegradable, biomimetic and functionalised polymer scaffolds to prevent expansion of post-infarct left ventricular remodelling.

Authors:  Caterina Cristallini; Mariacristina Gagliardi; Niccoletta Barbani; Daniela Giannessi; Giulio D Guerra
Journal:  J Mater Sci Mater Med       Date:  2011-12-06       Impact factor: 3.896

Review 3.  Getting to the heart of tissue engineering.

Authors:  Luda Khait; Louise Hecker; Nicole R Blan; Garrett Coyan; Francesco Migneco; Yen-Chih Huang; Ravi K Birla
Journal:  J Cardiovasc Transl Res       Date:  2008-01-29       Impact factor: 4.132

4.  Use of arginine-glycine-aspartic acid adhesion peptides coupled with a new collagen scaffold to engineer a myocardium-like tissue graft.

Authors:  O Schussler; C Coirault; M Louis-Tisserand; W Al-Chare; P Oliviero; C Menard; R Michelot; P Bochet; D R Salomon; J C Chachques; A Carpentier; Y Lecarpentier
Journal:  Nat Clin Pract Cardiovasc Med       Date:  2009-03

5.  Effect of thyroid hormone on the contractility of self-organized heart muscle.

Authors:  Luda Khait; Ravi K Birla
Journal:  In Vitro Cell Dev Biol Anim       Date:  2008-06-05       Impact factor: 2.416

6.  Cell-induced alignment augments twitch force in fibrin gel-based engineered myocardium via gap junction modification.

Authors:  Lauren D Black; Jason D Meyers; Justin S Weinbaum; Yevgeniya A Shvelidze; Robert T Tranquillo
Journal:  Tissue Eng Part A       Date:  2009-10       Impact factor: 3.845

7.  Cardiac cell culture model as a left ventricle mimic for cardiac tissue generation.

Authors:  Mai-Dung Nguyen; Joseph P Tinney; Fangping Yuan; Thomas J Roussel; Ayman El-Baz; Guruprasad Giridharan; Bradley B Keller; Palaniappan Sethu
Journal:  Anal Chem       Date:  2013-08-29       Impact factor: 6.986

8.  Stromal Cells in Dense Collagen Promote Cardiomyocyte and Microvascular Patterning in Engineered Human Heart Tissue.

Authors:  Meredith A Roberts; Dominic Tran; Kareen L K Coulombe; Maria Razumova; Michael Regnier; Charles E Murry; Ying Zheng
Journal:  Tissue Eng Part A       Date:  2016-03-31       Impact factor: 3.845

9.  Development of a Cyclic Strain Bioreactor for Mechanical Enhancement and Assessment of Bioengineered Myocardial Constructs.

Authors:  Betsy H Salazar; Avery T Cashion; Robert G Dennis; Ravi K Birla
Journal:  Cardiovasc Eng Technol       Date:  2015-07-24       Impact factor: 2.495

10.  Stem cells for heart cell therapies.

Authors:  Donghui Jing; Abhirath Parikh; John M Canty; Emmanuel S Tzanakakis
Journal:  Tissue Eng Part B Rev       Date:  2008-12       Impact factor: 6.389

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