Blood-to-Brain Glucose Transport, Cerebral Glucose Metabolism, and Cerebral Blood Flow Are Not Increased After Hypoglycemia

Транспорт глюкозы из крови в мозг, мозговой метаболизм глюкозы и мозговой кровоток не повышаются после гипогликемии
William J. Powers, Carmine G. Fanelli, Scott A. Segel, Carmen S. Dence, Joanne Markham, Tom O. Videen, Deanna S. Paramore, Philip E. Cryer
2001-08-01

antecedent hypoglycemiablood-to-brain glucose transportcerebral blood flowcerebral glucose metabolismpositron emission tomography
Recent antecedent hypoglycemia has been found to shift glycemic thresholds for autonomic (including adrenomedullary epinephrine), symptomatic, and other responses to subsequent hypoglycemia to lower plasma glucose concentrations. This change in threshold is the basis of the clinical syndromes of hypoglycemia unawareness and, in part, defective glucose counterregulation and the unifying concept of hypoglycemia-associated autonomic failure in type 1 diabetes. We tested in healthy young adults the hypothesis that recent antecedent hypoglycemia increases blood-to-brain glucose transport, a plausible mechanism of this phenomenon. Eight subjects were studied after euglycemia, and nine were studied after approximately 24 h of interprandial hypoglycemia ( approximately 55 mg/dl, approximately 3.0 mmol/l). The latter were shown to have reduced plasma epinephrine (P = 0.009), neurogenic symptoms (P = 0.009), and other responses to subsequent hypoglycemia. Global bihemispheric blood-to-brain glucose transport and cerebral glucose metabolism were calculated from rate constants derived from blood and brain time-activity curves-the latter determined by positron emission tomography (PET)-after intravenous injection of [1-(11)C]glucose at clamped plasma glucose concentrations of 65 mg/dl (3.6 mmol/l). For these calculations, a model was used that includes a fourth rate constant to account for egress of [(11)C] metabolites. Cerebral blood flow was measured with intravenous [(15)O]water using PET. After euglycemia and after hypoglycemia, rates of blood-to-brain glucose transport (24.6 +/- 2.3 and 22.4 +/- 2.4 micromol. 100 g(-1). min(-1), respectively), cerebral glucose metabolism (16.8 +/- 0.9 and 15.9 +/- 0.9 micromol. 100 g(-1). min(-1), respectively) and cerebral blood flow (56.8 +/- 3.9 and 53.3 +/- 4.4 ml. 100 g(-1). min(-1), respectively) were virtually identical. These data do not support the hypothesis that recent antecedent hypoglycemia increases blood-to-brain glucose transport during subsequent hypoglycemia. They do not exclude regional increments in blood-to-brain glucose transport. Alternatively, the fundamental alteration might lie beyond the blood-brain barrier.
1
Global bihemispheric blood-to-brain glucose transport after antecedent hypoglycemia (22.4 ± 2.4 μmol·100 g⁻¹·min⁻¹) was not increased compared with after euglycemia (24.6 ± 2.3 μmol·100 g⁻¹·min⁻¹).
2
Global cerebral blood flow after antecedent hypoglycemia (53.3 ± 4.4 ml·100 g⁻¹·min⁻¹) was essentially unchanged versus euglycemia (56.8 ± 3.9 ml·100 g⁻¹·min⁻¹).
3
Global cerebral glucose metabolism after antecedent hypoglycemia (15.9 ± 0.9 μmol·100 g⁻¹·min⁻¹) was essentially unchanged versus euglycemia (16.8 ± 0.9 μmol·100 g⁻¹·min⁻¹).
4
Recent antecedent hypoglycemia (∼24 h at ~55 mg/dl) reduced plasma epinephrine and neurogenic symptom responses to subsequent hypoglycemia (P = 0.009).
5
The data do not support increased global blood-to-brain glucose transport after recent hypoglycemia, though regional increases or alterations beyond the blood–brain barrier remain possible.

Human brain (blood-to-brain glucose transport, cerebral glucose metabolism, and cerebral blood flow) in healthy young adults during hypoglycemia

Whether recent antecedent hypoglycemia alters rates of blood-to-brain glucose transport, cerebral glucose metabolism, and cerebral blood flow during subsequent hypoglycemia

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2001-08-01
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William J. Powers
Carmine G. Fanelli
Scott A. Segel
Carmen S. Dence
Joanne Markham
Tom O. Videen
Deanna S. Paramore
Philip E. Cryer
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