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June 1, 2003AJP Heart and Circulatory Physiology25 citations

Unloading-induced remodeling in the normal and hypertrophic left ventricle

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BMBrian McGowanCSChristopher B. ScottAMAnbin Mu

Structured PICO

P
Population
Lewis rats (normal and with stable left ventricular hypertrophy induced by 32-day arteriovenous fistula)
I
Intervention
Left ventricular unloading induced by heterotopic transplantation for 7 days
C
Comparator
Normal controls and non-transplanted arteriovenous fistula (hypertrophic) controls
O
Outcome
Indexes of remodeling including cardiomyocyte size, collagen concentration, matrix metalloproteinase (MMP-2 and -9) activity, and collagen cross-linkingsurrogate

Surgical unloading of hypertrophic rat hearts reveals distinct extracellular matrix regulation, specifically increased collagen cross-linking, compared to normal hearts.

Abstract

To date, no study has assessed the degree of similarity between left ventricular (LV) reverse remodeling and atrophic remodeling. Stable LV hypertrophy was induced by creation of an arteriovenous fistula (AVF) in Lewis rats (32 days). LV unloading was induced by heterotopic transplantation of normal (NL-HT) and/or hypertrophic (AVF-HT) hearts (7 days). We compared indexes of remodeling in AVF, NL-HT, and AVF-HT groups with those of normal controls. LV unloading induced decreases in cardiomyocyte size in NL-HT and AVF-HT hearts. NL-HT and AVF-HT LV were both characterized by relative increases in collagen concentration that were largely a reflection of decreases in myocyte volume. NL-HT and AVF-HT LV were associated with similar increases in matrix metalloproteinase (MMP-2 and -9) zymographic activity, without change in the abundance of the tissue inhibitors of the MMPs. In contrast, AVF-HT, but not NL-HT, was associated with a dramatic increase in collagen cross-linking. Our findings suggest an overall similarity in the response of the normal and hypertrophic LV to surgical unloading. However, the dramatic increase in collagen cross-linking after just 1 wk of unloading suggests a potential difference in the dynamics of collagen metabolism between the two models. Further studies will be required to determine the precise molecular mechanisms responsible for these differences in extracellular matrix regulation. However, with respect to these and related issues, heterotopic transplantation of hypertrophied hearts will be a useful small animal model for defining mechanisms of myocyte-matrix interactions during decreased loading conditions.

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Cite This Study

McGowan et al. (2003) studied this question.

synapsesocial.com/papers/6a9580cd66ca20f6f97d0f40https://doi.org/10.1152/ajpheart.00873.2002
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