Key result
Adrenergic blockade preserves catecholamine responses to subsequent hypoglycemia, yielding ~64% higher epinephrine than saline.
Why the study?
The mechanisms by which recent antecedent hypoglycemia reduces the sympathoadrenal response to subsequent hypoglycemia, causing hypoglycemia-associated autonomic failure in diabetes, were unclear.
Does adrenergic or cholinergic blockade during antecedent hypoglycemia prevent the reduction of sympathoadrenal responses to subsequent hypoglycemia in healthy adults?
RCT (n=17)
random sequence
Does adrenergic or cholinergic blockade during antecedent hypoglycemia prevent the reduction of sympathoadrenal responses to subsequent hypoglycemia in healthy adults?
p-value: p=<0.0001
Adrenergic activation mediates the blunted sympathoadrenal response to subsequent hypoglycemia, a key feature of hypoglycemia-associated autonomic failure.
Adrenergic activation mediates HAAF induction in healthy adults; supports mechanistic trials but leaves open clinical relevance in diabetes.
OBJECTIVE: We tested the hypothesis that adrenergic activation, cholinergic activation, or both, mediate the effect of recent antecedent hypoglycemia to reduce the sympathoadrenal response to subsequent hypoglycemia, the key feature of hypoglycemia-associated autonomic failure in diabetes, in humans. RESEARCH DESIGN AND METHODS: Seventeen healthy adults were studied on 2 consecutive days on three occasions. Day 1 involved hyperinsulinemic euglycemic (90 mg/dL × 1 h), then hypoglycemic (54 mg/dL × 2 h) clamps, in the morning and afternoon on all three occasions with 1) saline infusion, 2) adrenergic blockade with the nonselective α-adrenergic and β-adrenergic antagonists phentolamine and propranolol, or 3) adrenergic blockade plus cholinergic blockade with the muscarinic cholinergic antagonist atropine in random sequence. Day 2 involved similar morning euglycemic and hypoglycemic clamps, with saline infusion, on all three occasions. RESULTS: Compared with the responses to hypoglycemia during saline infusion on day 1, the plasma epinephrine and norepinephrine responses to hypoglycemia were reduced on day 2 (351 ± 13 vs. 214 ± 22 pg/mL for epinephrine and 252 ± 4 vs. 226 ± 7 pg/mL for norepinephrine during the last hour; both P < 0.0001). However, the plasma epinephrine and norepinephrine responses to hypoglycemia were not reduced on day 2 when adrenergic or adrenergic plus cholinergic blockade was produced during hypoglycemia on day 1. CONCLUSIONS: Adrenergic blockade prevents the effect of hypoglycemia to reduce the plasma catecholamine responses to subsequent hypoglycemia. Thus, adrenergic activation mediates the effect of recent antecedent hypoglycemia to reduce the sympathoadrenal response to subsequent hypoglycemia, the key feature of hypoglycemia-associated autonomic failure in diabetes, in humans.
No takes yet. Share an insight, caveat, or question.
Ramanathan et al. (2011) conducted an RCT in hypoglycemia-associated autonomic failure (n=17). Adrenergic blockade with or without cholinergic blockade vs. Saline infusion was evaluated on Plasma epinephrine and norepinephrine responses to subsequent hypoglycemia on day 2 (p=<0.0001). Adrenergic blockade prevented the reduction in epinephrine (351 vs 214 pg/mL) and norepinephrine (252 vs 226 pg/mL; P<0.0001) responses to subsequent hypoglycemia observed with saline.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: