Quantitative assessment of cerebral glucose metabolic rates after blood-brain barrier disruption induced by focused ultrasound using FDG-MicroPET.
Authors: Yang FY, Chang WY, Chen JC, Lee LC, Hung YS
The goal of this study was to evaluate the pharmacokinetics of (18)F-2-fluoro-2-deoxy-d-glucose ((18)F-FDG) and the expression of glucose transporter 1 (GLUT1) protein after blood-brain barrier (BBB) disruption of normal rat brains by focused ultrasound (FUS). After delivery of an intravenous bolus of ~37 MBq (1 mCi) (18)F-FDG, dynamic positron emission tomography scans were performed on rats with normal brains and those whose BBBs had been disrupted by FUS. Arterial blood sampling was collected throughout the scanning procedure. A 2-tissue compartmental model was used to estimate (18)F-FDG kinetic parameters in brain tissues. The rate constants Ki, K1, and k3 were assumed to characterize the uptake, transport, and hexokinase activity, respectively, of (18)F-FDG. The uptake of (18)F-FDG in brains significantly decreased immediately after the blood-brain barrier was disrupted. At the same time, the derived values of Ki, K1, and k3 for the sonicated brains were significantly lower than those for the control brains. In agreement with the reduction in glucose, Western blot analyses confirmed that focused ultrasound exposure significantly reduced the expression of GLUT1 protein in the brains. Furthermore, the effect of focused ultrasound on glucose uptake was transient and reversible 24h after sonication. Our results indicate that focused ultrasound may inhibit GLUT1 expression to decrease the glucose uptake in brain tissue during the period of BBB disruption.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To quantitatively assess cerebral glucose metabolism following focused ultrasound–induced blood–brain barrier disruption using FDG-MicroPET.
Animal model / Human subject
rat, Sprague-Dawley, 8–10 weeks, male
Targeted brain region(s)
Striatum
Outcomes and Safety
Summary of Outcomes
FUS-mediated BBB opening induced a transient, localized reduction in cerebral glucose metabolism (rCMRglc) that recovered to baseline within 24 hours.
Duration of biological effect
24 h
Safety-related matter
The reduction in glucose metabolism was reversible and not associated with permanent neuronal damage or long-term metabolic deficits
Brain Region
Ultrasound Parameters
Ultrasound instrument
single-element focused ultrasound transducer
FUS Frequency
1.0 MHz
FUS Pressure
0.7 MPa
Pulse duration
10 ms
Duration of a single FUS session
30 s
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