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November 20, 2001Human Gene Therapy90 citations

Blocking Caspase-Activated Apoptosis Improves Contractility in Failing Myocardium

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KLKarl‐Ludwig LaugwitzAMAlessandra MorettiHWHans‐Jörg Weig

Key Result

Gene transfer of the caspase inhibitor p35 improved left ventricular pressure rise, decreased end-diastolic pressure, and delayed the development of heart failure in a rabbit model.

Structured PICO

Does blocking caspase-activated apoptosis improve contractility in failing myocardium?

P
Population
Rabbit model of heart failure obtained by rapid ventricular pacing, and in vitro intact cardiomyocytes
I
Intervention
In vivo transcoronary adenovirus-mediated gene delivery of the potent caspase inhibitor p35; in vitro microinjection of activated caspase 3
C
Comparator
Control animals/cells (implied)
O
Outcome
Cardiac contractility (left ventricular pressure rise [+dp/dt], end-diastolic chamber pressure [LVEDP]), sarcomere organization, and caspase 3 activitysurrogate

Blocking caspase-activated apoptosis via p35 gene transfer improves cardiac contractility and delays heart failure development in a rabbit model.

Abstract

Cardiac myocyte apoptosis has been demonstrated in end-stage failing human hearts. The therapeutic utility of blocking apoptosis in congestive heart failure (CHF) has not been elucidated. This study investigated the role of caspase activation in cardiac contractility and sarcomere organization in the development of CHF. In a rabbit model of heart failure obtained by rapid ventricular pacing, we demonstrate, using in vivo transcoronary adenovirus-mediated gene delivery of the potent caspase inhibitor p35, that caspase activation is associated with a reduction in contractile force of failing myocytes by destroying sarcomeric structure. In this animal model gene transfer of p35 prevented the rise in caspase 3 activity and DNA-histone formation. Genetically manipulated hearts expressing p35 had a significant improvement in left ventricular pressure rise (+dp/dt), decreased end-diastolic chamber pressure (LVEDP), and the development of heart failure was delayed. To better understand this benefit, we examined the effects of caspase 3 on cardiomyocyte dysfunction in vitro. Microinjection of activated caspase 3 into the cytoplasm of intact myocytes induced sarcomeric disorganization and reduced contractility of the cells. These results demonstrate a direct impact of caspases on cardiac function and may lead to novel therapeutic strategies via antiapoptotic regimens.

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Cite This Study

Laugwitz et al. (2001) studied Congestive heart failure. Adenovirus-mediated gene delivery of caspase inhibitor p35 was evaluated on Left ventricular pressure rise (+dp/dt), end-diastolic chamber pressure (LVEDP), and development of heart failure. Gene transfer of the caspase inhibitor p35 improved left ventricular pressure rise, decreased end-diastolic pressure, and delayed the development of heart failure in a rabbit model.

synapsesocial.com/papers/6a1af68937bfaf0f5945d982https://doi.org/10.1089/10430340152677403
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Caspase-3 as a therapeutic target for heart failure2013 · 96 citations
  2. 2Heart-targeted overexpression of <i>caspase3</i> in mice increases infarct size and depresses cardiac function2001 · 173 citations
  3. 3Apoptosis in heart failure: Release of cytochrome <i>c</i> from mitochondria and activation of caspase-3 in human cardiomyopathy1999 · 587 citations
  4. 4A mechanistic role for cardiac myocyte apoptosis in heart failure2003 · 746 citations
  5. 5Delayed activation of caspase-independent apoptosis during heart failure in transgenic mice overexpressing caspase inhibitor CrmA2010 · 33 citations