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Biomedical subjects

K Fey

Publications and source records attributed to K Fey.

25 records · Page 2Linked to original sources

Studies on myocardial reperfusion injury. I. Favorable modification by adjusting reperfusate pH.

This study tests the hypothesis that postischemic myocardial depression can be reduced by providing an initial reperfusate pH which is appropriate for myocardial temperature (i.e., metabolic systems function optimally when pH is kept slightly alkaline to the neutral point, which changes with temperature in concordance with the pK of water). Ten dogs underwent 1 hour of ischemic arrest with topical hypothermia (intramyocardial temperature 16+/-2 degrees C). The initial reperfusate (500 cc of blood from the extracorporeal circuit) was infused (100 cc/minute) into the proximal aorta just before removing the cross-clamp. Reperfusate pH was kept at 7.4 in five dogs (control) and raised to 7.8 with THAM [tris (hydroxymethyl) aminomethane] in five dogs. Measurements 30 minutes after reperfusion showed that raising reperfusate pH to 7.8 resulted in (1) higher subendocardial blood flows (109+/-20 vs 61 cc+/-8 cc/100 gm/minute), (2) redistribution of postischemic blood flow toward the subendocardium (endocardial/epicardial flow 1.25+/-0.1 vs 1.0+/-0.03), (3) higher left ventricular oxygen uptakes (0.046 vs 0.033 cc/100 gm/beat), (4) better postischemic left ventricular compliance (56+/-3% more compliant), and (5) improved left ventricular performance (88+/-7% recovery vs only 57+/-3% recovery at pH 7.4). Postischemic edema (2% water gain) was unchanged by pH modification. We conclude that initial reperfusion with the appropriate pH provides an optimal milieu for restoration of cellular metabolism, counteracts the acidosis of ischemia, and improves postischemic left ventricular blood flow, distribution, oxygen uptake, compliance, and performance.

Animals↗

Effects of membrane stabilization on the safety of hypothermic arrest after aortic cross-clamping.

Twenty dogs underwent 1 hour of topical hypothermic arrest; five were untreated, five received methyl prednisolone (30 mg/kg), five received 0.2% procaine, and five received both drugs. Arrest was almost immediate (less than 2 min) with procaine, but was delayed 14 +/- 3 minutes in the other groups. Steroid-treated dogs had the highest post-ischemic left ventricular (LV) blood flows (110 +/- 22 cc/100 g/min) (P less than 0.05). Membrane-stabilizing drugs did not prevent myocardial edema; LV water rose 2% (P less than 0.01) in all groups. Post-ischemic LV compliance was depressed most (55%) in the untreated group, and less after procaine (30%) (P less than 0.05). Postischemic LV performance was depressed 44% (P less than 0.01) in the untreated dogs, and returned to near normal levels with steroid (89% recovery), procaine (97% recovery), and both drugs (95% recovery). We conclude that steroids and/or procaine protect against postischemic myocardial depression but do not prevent myocardial edema. Combining steroids and procaine provide no apparent added benefit, but procaine has the technical advantage of almost immediate cardioplegia.

Animals↗