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March 1, 1982Acta Physiologica Scandinavica20 citations

Left ventricular hypertrophy improves cardiac performance in spontaneously hypertensive rats

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SLS. LundinPFPeter FribergMHM. Hallbäck-Nordlander

Key Result

Left ventricular hypertrophy in spontaneously hypertensive rats resulted in significantly greater peak stroke volume at similar mean arterial pressure levels compared to normotensive rats.

Structured PICO

Does left ventricular hypertrophy in spontaneously hypertensive rats improve cardiac performance compared to normotensive rats?

P
Population
Adult spontaneously hypertensive rats and Wistar-Kyoto normotensive rats.
E
Exposure
Alteration of mean arterial pressure (MAP) via abdominal aorta constriction or hydralazine, and rapid intravenous blood infusion under pharmacological autonomic blockade
C
Comparator
Wistar-Kyoto normotensive rats (WKY)
O
Outcome
Stroke volume (SV) and its relationship with left ventricular end-diastolic pressure (LVEDP) at varying levels of mean arterial pressure (MAP)surrogate

Left ventricular hypertrophy in spontaneously hypertensive rats acts as a physiological adaptation to maintain normal stroke volume and cardiac output despite increased arterial pressure.

Abstract

Cardiac function was studied in spontaneously breathing, adult spontaneously hypertensive rats (SHR) and Wistar-Kyoto normotensive rats (WKY). By rapid intravenous blood infusion, the relation between left ventricular end-diastolic pressure (LVEDP) and stroke infusion, the relation between left ventricular end-diastolic pressure (LVEDP) and stroke volume (SV) was determined while the cardiac nervous control was pharmacologically blocked. Since SV is greatly influenced by the level of afterload (mean arterial pressure, MAP), SV was also determined at increased MAP (constriction of abdominal aorta) and at decreased MAP (vasodilation by hydralazine). At low LVEDP levels, a rightward shift of the Frank-Starling relationship was observed in SHR. This rightward shift seems mainly to depend on the increased MAP present in SHR since it was less prominent if MAP was lowered to normotensive levels in SHR. Maximal SV during volume infusion was similar in SHR and WKY, despite a much higher MAP in SHR. When peak SV was instead compared at similar MAP levels for both (either at normotensive' or 'hypertensive' levels) it was always significantly greater in SHR, and was increased largely in proportion to their increased left ventricular weight. This indicates that the left ventricular hypertrophy present in SHR is, at least at this stage, a physiological adaptation of the heart to increase its performance, in order to maintain a normal SV and hence cardiac output, despite an increased arterial pressure.

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Cite This Study

Lundin et al. (1982) studied Hypertension. Left ventricular hypertrophy (Spontaneously hypertensive rats) vs. Wistar-Kyoto normotensive rats was evaluated on Stroke volume (SV) at similar mean arterial pressure (MAP) levels. Left ventricular hypertrophy in spontaneously hypertensive rats resulted in significantly greater peak stroke volume at similar mean arterial pressure levels compared to normotensive rats.

synapsesocial.com/papers/6a1f57c9e800721f0483561ehttps://doi.org/10.1111/j.1748-1716.1982.tb06991.x
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Also Consider

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

  1. 1Cardiac Hypertrophy in Spontaneously Hypertensive Rats1974 · 460 citations
  2. 2Cardiac hypertrophy and antihypertensive therapy1977 · 257 citations
  3. 3Preload, contractility, and afterload as determinants of stroke volume during elevation of aortic blood pressure in dogs1973 · 48 citations
  4. 4Regulation of Cardiac Contraction1972 · 62 citations
  5. 5Performance of the hypertrophied left ventricle in spontaneously hypertensive rats. Effects of adrenergic stimulation1982 · 9 citations