Concepts of Cell Therapy and Myocardial Regeneration
Sangeetha Vadakke-Madathil
Search for more papers by this authorHina W. Chaudhry
Search for more papers by this authorSangeetha Vadakke-Madathil
Search for more papers by this authorHina W. Chaudhry
Search for more papers by this authorGeorge D. Dangas MD, MACC, MSCAI, FAHA, FESC
Professor of Medicine (Cardiology) & Surgery (Vascular) Professor of Cardiology Adjunct Professor of Internal Medicine
Icahn School of Medicine at Mount Sinai, Mount Sinai Hospital, New York, NY, USA
National Kapodistrian University of Athens, Greece
Medical University of Vienna, Austria
Search for more papers by this authorCarlo Di Mario MD, PhD, FRCP, FACC, FSCAI, FESC
Professor of Cardiology Director of the Structural Interventional Cardiology Division Honorary Consultant
University of Florence
University Hospital Careggi, Florence, Italy
Cardiologist Royal Brompton Hospital, London, UK
Search for more papers by this authorHolger Thiele MD
Professor of Cardiology at University of Leipzig
Heart Center Leipzig at University of Leipzig, Leipzig, Germany
Search for more papers by this authorPeter Barlis MBBS, MPH, PHD, FACC, FESC, FRACP
Professor of Cardiology Interventional Cardiologist
University of Melbourne, Melbourne, Victoria, Australia
St Vincent's & Northern Hospitals Victoria, Australia
Search for more papers by this authorSummary
The limited potential of the adult mammalian heart to regenerate itself has been a longstanding challenge in the field of cardiovascular biology. The cell cycle exit of adult cardiomyocytes and the lack of endogenous stem cells that can differentiate into cardiomyocytes after injury forms the basis for these limitations. Despite a myriad of cell types investigated in clinical trials, moving cell therapy from bench to bedside has been disappointing in terms of genuine cardiomyocyte generation and functional improvement. Studies in animals lacked scientific rigor in terms of assessing the true cardiomyogenic potential of stem cells and created a void in ongoing research in this direction. This warrants critical assessment of cell types used and further emphasizes the need for large animal experiments prior to their translation to clinic. Here we address the current understanding of cell-based and cell-free approaches thus far and delineate the prerequisites of regenerative therapies for successful preclinical and clinical studies. Our own understanding involving placental stem cells and gene therapy approaches using cell cycle regulators suggest that strategies that leverage developmental underpinnings likely represent the most potent treatment approaches aimed at cardiac regeneration. As such, investigations into both gene and cell therapy approaches should work in concert to develop successful strategies to regenerate the injured heart.
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