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Sharon Lovell

Publications and source records attributed to Sharon Lovell.

2 recordsLinked to original sources

Gas exchange responses to constant work-rate exercise in patients with glycogenosis type V and VII.

During constant work-rate exercise above the lactic acidosis threshold, oxygen consumption fails to plateau by 3 minutes, but continues to rise slowly. This slow component correlates closely with the rise in lactate in normal subjects. We investigated if oxygen consumption during constant work-rate exercise could rise after 3 minutes in the absence of a rise in lactate. We studied five patients with McArdle's disease, one patient with phosphofructokinase deficiency and six normal subjects. Subjects performed two 6-minute duration constant work-rate exercise tests at 40 and 70% of peak oxygen consumption. During low-intensity exercise, oxygen consumption reached steady state by 3 minutes in both groups. Lactate rose slightly in control subjects but not in patients. During high-intensity exercise, oxygen consumption rose from the third to the sixth minute by 144 (21-607) ml/minute (median and range) in control subjects and by 142 (73-306) ml/minute in patients (p = not significant, Mann-Whitney U test). Over the same period, lactate (geometric mean and range) rose from 2.68 (1.10-5.00) to 5.39 (2.70-10.00) mmol/L in control subjects, but did not rise in patients (1.20 [0.64-1.60] to 0.70 [0.57-1.20] mmol/L). We conclude that the slow component of oxygen consumption during heavy exercise is not dependent on lactic acidosis.

Acidosis, Lactic↗

Changes in pulmonary vascular function after acute methionine loading in normal men.

Elevated blood levels of Hcy (homocysteine) are associated with endothelial dysfunction in the systemic and coronary arterial beds. We wished to know if similar changes could be detected in the pulmonary circulation, using non-invasive tests. We studied ten normal young men aged 23-31 years, in whom acute hyperhomocysteinaemia was induced by oral ingestion of methionine. Cardiopulmonary exercise testing [including measurement of exhaled breath NO (nitric oxide)] was performed on two occasions, with and without methionine loading. In addition, blood samples for vWf (von Willebrand factor) and factor VIIIc were taken as markers of endothelial function. After oral methionine, plasma Hcy increased from 11.8 +/- 3.1 to 31.2 +/- 10.3 micromol/l (values are means +/- S.D.; P < 0.0001), whereas there was no increase after placebo. After exercise there was an increase in V(NO) (NO production) and circulating plasma levels of vWf and factor VIIIc, but these were similar in the two tests. Exercise time, HR (heart rate) and BP (blood pressure) responses and P V(O2) (peak achieved O2 uptake) were also similar in the two tests. V(E) (expiratory minute ventilation)/ V(CO2) (CO2 production) was similar in the two groups at rest (methionine, 31.9 +/- 3.9; placebo, 30.5 +/- 3.9; P = 0.11), but increased during exercise after methionine (at peak, 32.2 +/- 4.6 compared with 29.9 +/- 2.8; P = 0.016). P(ETCO2) (end-tidal partial pressure of CO2) was also similar in the two groups at rest (35.1 +/- 2.9 compared with 36.8 +/- 3.2; P = 0.11), but decreased throughout the methionine test (peak 34.1 +/- 4.4 compared with 36.7 +/- 3.5; P = 0.006). V(E) vs V(CO2) slope also increased in the methionine test (25.2 +/- 2.4 compared with 22.8 +/- 2.3; P = 0.003). In conclusion, small, but consistent and significant, changes in respiratory gas exchange were seen after methionine loading, compatible with a V / Q (ventilation/perfusion) mismatch due to pulmonary vascular endothelial dysfunction.

Adult↗