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The effect of changes in arterial PCO2 on neuroendocrine function in man
12-38A Neuroendocrine Laboratories, New Hunt's House, GKT School of Medicine, Guy's Campus, London Bridge, London, SE1 1UL UK. mary.forsling@kcl.ac.uk
Abstract:
There is evidence that changes in arterial P(CO(2)) (P(a,CO(2))), as well as P(O(2)), influence neuroendocrine function. The hyponatraemia and fluid retention (cor pumonale) seen in chronic obstructive pulmonary disease (COPD) and type II respiratory failure is associated with increased vasopressin release. This study examines the specific effects of altered P(a,CO(2)) on hormone release from the posterior and anterior pituitary. The study was performed in 20 ventilated ICU patients in the late recovery phase of their illness. None had primary respiratory disease. Control blood samples were taken and the alveolar ventilation was then adjusted to allow the P(a,CO(2)) increase or decrease for a period of 3 h, during which time further blood samples were taken for the determination, by radioimmmunoassy of vasopressin, oxytocin, growth hormone and cortisol. Urine output and electrolyte concentrations were also measured. Circulating concentrations of growth hormone and oxytocin increased with increasing P(a,CO(2)). Vasopressin release showed a similar pattern up to a P(a,CO(2)) of approximately 6.0 kPa, above which vasopressin concentrations were inversely related to P(a,CO(2)). There was no significant effect on cortisol concentrations. No significant effects were established in urinary parameters during the short period of this study. Thus an increase in CO(2) is associated with stimulated pituitary hormone release. The effect on the neurohypophysial hormones may account for the fluid retention and hyponatraemia seen in COPD and hence provide a rationale for treatment.
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