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February 1, 1994AJP Heart and Circulatory Physiology109 citations

Adaptive responses of coronary circulation and myocardium to chronic reduction in perfusion pressure and flow

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IMIra MillsJFJohn T. FallonDWDavid S. Wrenn

Structured PICO

Does chronic reduction in perfusion pressure and flow induce myocardial hibernation and microvascular changes in a swine model?

P
Population
Swine with an extraluminal coronary stenosis placed 4-32 weeks before study (stenosis reduced lumen diameter by approximately 80%)
I
Intervention
Chronic reduction in perfusion pressure and flow via extraluminal coronary stenosis
C
Comparator
Normal zone (internal control) and historical controls without coronary stenosis
O
Outcome
Myocardial O2 consumption (MVO2) and vasodilator reservesurrogate

Chronic coronary stenosis in a swine model induces myocardial hibernation characterized by reduced oxygen consumption, preserved vasodilator reserve, and heterogeneous microvascular remodeling.

Abstract

We tested the hypothesis that chronic reduction in perfusion pressure and flow in the coronary circulation induces a state of myocardial "hibernation" characterized not only by a steady-state reduction in myocardial O2 consumption (MVO2) but also by evidence of persistent dilator reserve of the distal vasculature. Biochemical and morphological changes in the coronary vasculature were also assessed. Experiments were conducted in swine with an extraluminal coronary stenosis placed 4-32 wk before study. Stenosis reduced lumen diameter by approximately 80% at the time of final experimentation. Baseline, regional myocardial blood flow distal to the stenosis in both endocardial and epicardial layers was reduced vs. that of the normal zone. Vasodilator reserve persisted in both endocardial and epicardial layers of the stenosis zone. Flow increased in each layer in response to adenosine plus phenylephrine and failed to decline despite a marked reduction in perfusion pressure in response to adenosine alone. Regional MVO2 at baseline was reduced vs. historical controls without coronary stenosis. Protein synthesis rate in coronary vessels of the stenosis zone was reduced vs. that of the normal zone. Morphological responses of stenosis zone vessel walls were heterogeneous. Smaller microvessels exhibited mild hypertrophy of their walls, whereas walls of larger microvessels tended to atrophy. Thus chronic reduction in perfusion pressure and flow induces a state of myocardial hibernation characterized by a steady-state reduction in MVO2 in association with persistent dilator capacity. Biochemical and morphological changes occur in microvessel walls and may contribute to observed physiological responses.

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Cite This Study

Mills et al. (1994) studied this question.

synapsesocial.com/papers/6a870a0a2527c72a71a2541fhttps://doi.org/10.1152/ajpheart.1994.266.2.h447
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