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April 10, 2001Circulation293 citations

Cell Therapy Attenuates Deleterious Ventricular Remodeling and Improves Cardiac Performance After Myocardial Infarction

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MJMohit JainInstitute of Management TechnologyHDH DerSimonianGenVecDBDaniel A. BrennerSaint Peter's University Hospital

Key Result

Skeletal myoblast injection after myocardial infarction in rats resulted in 92% graft survival, attenuated ventricular dilation, and improved exercise capacity and LV systolic pressures.

Structured PICO

Does skeletal myoblast injection attenuate ventricular remodeling and improve cardiac performance in a rat model of myocardial infarction?

P
Population
Adult male Lewis rats with experimental myocardial infarction induced by 1-hour coronary ligation followed by reperfusion
I
Intervention
10^6 skeletal myoblasts injected directly into the infarct region 1 week after myocardial infarction
C
Comparator
Myocardial infarction plus sham injection, and noninfarcted controls
O
Outcome
Myoblast graft survival, ventricular remodeling (ventricular dilation and septum-to-free wall diameter), in vivo exercise capacity, and ex vivo left ventricular systolic pressuressurrogate

Implantation of skeletal myoblasts in a rat model of myocardial infarction forms viable grafts, attenuates ventricular dilation, and improves contractile function and exercise capacity.

Abstract

BACKGROUND: Myocardial infarction (MI) promotes deleterious remodeling of the myocardium, resulting in ventricular dilation and pump dysfunction. We examined whether supplementing infarcted myocardium with skeletal myoblasts would (1) result in viable myoblast implants, (2) attenuate deleterious remodeling, and (3) enhance in vivo and ex vivo contractile performance. METHODS AND RESULTS: Experimental MI was induced by 1-hour coronary ligation followed by reperfusion in adult male Lewis rats. One week after MI, 10(6) myoblasts were injected directly into the infarct region. Three groups of animals were studied at 3 and 6 weeks after cell therapy: noninfarcted control (control), MI plus sham injection (MI), and MI plus cell injection (MI+cell). In vivo cardiac function was assessed by maximum exercise capacity testing and ex vivo function was determined by pressure-volume curves obtained from isolated, red cell-perfused, balloon-in-left ventricle (LV) hearts. MI and MI+cell hearts had indistinguishable infarct sizes of approximately 30% of the LV. At 3 and 6 weeks after cell therapy, 92% (13 of 14) of MI+cell hearts showed evidence of myoblast graft survival. MI+cell hearts exhibited attenuation of global ventricular dilation and reduced septum-to-free wall diameter compared with MI hearts not receiving cell therapy. Furthermore, cell therapy improved both post-MI in vivo exercise capacity and ex vivo LV systolic pressures. CONCLUSIONS: Implanted skeletal myoblasts form viable grafts in infarcted myocardium, resulting in enhanced post-MI exercise capacity and contractile function and attenuated ventricular dilation. These data illustrate that syngeneic myoblast implantation after MI improves both in vivo and ex vivo indexes of global ventricular dysfunction and deleterious remodeling and suggests that cellular implantation may be beneficial after MI.

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Cite This Study

Jain et al. (2001) studied Myocardial infarction. Skeletal myoblasts vs. Sham injection and noninfarcted control was evaluated on Myoblast graft survival, ventricular remodeling, and contractile performance. Skeletal myoblast injection after myocardial infarction in rats resulted in 92% graft survival, attenuated ventricular dilation, and improved exercise capacity and LV systolic pressures.

synapsesocial.com/papers/6a13033d4a30fb84f7a5a61ahttps://doi.org/10.1161/01.cir.103.14.1920
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