Cell therapy, 3D culture systems and tissue engineering for cardiac regeneration

Ischemic Heart Disease (IHD) still represents the “Number One Killer” worldwide accounting for the death of numerous patients. However the capacity for self-regeneration of the adult heart is very limited and the loss of cardiomyocytes in the infarcted heart leads to continuous adverse cardiac-remod...

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Published inAdvanced drug delivery reviews Vol. 69-70; pp. 254 - 269
Main Authors Emmert, Maximilian Y., Hitchcock, Robert W., Hoerstrup, Simon P.
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.04.2014
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Abstract Ischemic Heart Disease (IHD) still represents the “Number One Killer” worldwide accounting for the death of numerous patients. However the capacity for self-regeneration of the adult heart is very limited and the loss of cardiomyocytes in the infarcted heart leads to continuous adverse cardiac-remodeling which often leads to heart-failure (HF). The concept of regenerative medicine comprising cell-based therapies, bio-engineering technologies and hybrid solutions has been proposed as a promising next-generation approach to address IHD and HF. Numerous strategies are under investigation evaluating the potential of regenerative medicine on the failing myocardium including classical cell-therapy concepts, three-dimensional culture techniques and tissue-engineering approaches. While most of these regenerative strategies have shown great potential in experimental studies, the translation into a clinical setting has either been limited or too rapid leaving many key questions unanswered. This review summarizes the current state-of-the-art, important challenges and future research directions as to regenerative approaches addressing IHD and resulting HF. [Display omitted]
AbstractList Ischemic Heart Disease (IHD) still represents the "Number One Killer" worldwide accounting for the death of numerous patients. However the capacity for self-regeneration of the adult heart is very limited and the loss of cardiomyocytes in the infarcted heart leads to continuous adverse cardiac-remodeling which often leads to heart-failure (HF). The concept of regenerative medicine comprising cell-based therapies, bio-engineering technologies and hybrid solutions has been proposed as a promising next-generation approach to address IHD and HF. Numerous strategies are under investigation evaluating the potential of regenerative medicine on the failing myocardium including classical cell-therapy concepts, three-dimensional culture techniques and tissue-engineering approaches. While most of these regenerative strategies have shown great potential in experimental studies, the translation into a clinical setting has either been limited or too rapid leaving many key questions unanswered. This review summarizes the current state-of-the-art, important challenges and future research directions as to regenerative approaches addressing IHD and resulting HF.
Ischemic Heart Disease (IHD) still represents the “Number One Killer” worldwide accounting for the death of numerous patients. However the capacity for self-regeneration of the adult heart is very limited and the loss of cardiomyocytes in the infarcted heart leads to continuous adverse cardiac-remodeling which often leads to heart-failure (HF). The concept of regenerative medicine comprising cell-based therapies, bio-engineering technologies and hybrid solutions has been proposed as a promising next-generation approach to address IHD and HF. Numerous strategies are under investigation evaluating the potential of regenerative medicine on the failing myocardium including classical cell-therapy concepts, three-dimensional culture techniques and tissue-engineering approaches. While most of these regenerative strategies have shown great potential in experimental studies, the translation into a clinical setting has either been limited or too rapid leaving many key questions unanswered. This review summarizes the current state-of-the-art, important challenges and future research directions as to regenerative approaches addressing IHD and resulting HF. [Display omitted]
Author Hoerstrup, Simon P.
Emmert, Maximilian Y.
Hitchcock, Robert W.
Author_xml – sequence: 1
  givenname: Maximilian Y.
  surname: Emmert
  fullname: Emmert, Maximilian Y.
  organization: Swiss Center of Regenerative Medicine, Zurich, Switzerland
– sequence: 2
  givenname: Robert W.
  surname: Hitchcock
  fullname: Hitchcock, Robert W.
  organization: Department of Bioengineering, University of Utah, Salt Lake City, USA
– sequence: 3
  givenname: Simon P.
  surname: Hoerstrup
  fullname: Hoerstrup, Simon P.
  email: simon_philipp.hoerstrup@usz.ch
  organization: Swiss Center of Regenerative Medicine, Zurich, Switzerland
BackLink https://www.ncbi.nlm.nih.gov/pubmed/24378579$$D View this record in MEDLINE/PubMed
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Keywords Myocardial regeneration
Three dimensional culture systems
Cardiac cell therapy
Bioreactors
Cardiac tissue engineering
Stem cells
Language English
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  year: 2005
  ident: 10.1016/j.addr.2013.12.004_bb0930
  article-title: VEGF profiling and angiogenesis in human microtissues
  publication-title: J. Biotechnol.
  doi: 10.1016/j.jbiotec.2005.03.016
  contributor:
    fullname: Kelm
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Snippet Ischemic Heart Disease (IHD) still represents the “Number One Killer” worldwide accounting for the death of numerous patients. However the capacity for...
Ischemic Heart Disease (IHD) still represents the "Number One Killer" worldwide accounting for the death of numerous patients. However the capacity for...
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StartPage 254
SubjectTerms Animals
Bioreactors
Cardiac cell therapy
Cardiac tissue engineering
Cell- and Tissue-Based Therapy - methods
Cell- and Tissue-Based Therapy - trends
Heart - physiology
Humans
Myocardial Ischemia - physiopathology
Myocardial Ischemia - therapy
Myocardial regeneration
Myocytes, Cardiac - physiology
Regeneration - physiology
Regenerative Medicine - methods
Regenerative Medicine - trends
Stem cells
Three dimensional culture systems
Tissue Engineering - methods
Tissue Engineering - trends
Title Cell therapy, 3D culture systems and tissue engineering for cardiac regeneration
URI https://dx.doi.org/10.1016/j.addr.2013.12.004
https://www.ncbi.nlm.nih.gov/pubmed/24378579
https://search.proquest.com/docview/1534808264
https://search.proquest.com/docview/1537591865
Volume 69-70
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