Transcranial focused ultrasound-mediated unbinding of phenytoin from plasma proteins for suppression of chronic temporal lobe epilepsy in a rodent model.
Authors: Kim E, Kim HC, Van Reet J, Böhlke M, Yoo SS, Lee W
The efficacy of many anti-epileptic drugs, including phenytoin (PHT), is reduced by plasma protein binding (PPB) that sequesters therapeutically active drug molecules within the bloodstream. An increase in systemic dose elevates the risk of drug side effects, which demands an alternative technique to increase the unbound concentration of PHT in a region-specific manner. We present a low-intensity focused ultrasound (FUS) technique that locally enhances the efficacy of PHT by transiently disrupting its binding to albumin. We first identified the acoustic parameters that yielded the highest PHT unbinding from albumin among evaluated parameter sets using equilibrium dialysis. Then, rats with chronic mesial temporal lobe epilepsy (mTLE) received four sessions of PHT injection, each followed by 30 min of FUS delivered to the ictal region, across 2 weeks. Two additional groups of mTLE rats underwent the same procedure, but without receiving PHT or FUS. Assessment of electrographic seizure activities revealed that FUS accompanying administration of PHT effectively reduced the number and mean duration of ictal events compared to other conditions, without damaging brain tissue or the blood-brain barrier. Our results demonstrated that the FUS technique enhanced the anti-epileptic efficacy of PHT in a chronic mTLE rodent model by region-specific PPB disruption.
Introduction
Purpose
Drug delivery WITHOUT BBB opening
Study Objective
To determine whether low-intensity focused ultrasound can regionally disrupt phenytoin–albumin binding to increase unbound phenytoin in the brain and thereby enhance its anti-epileptic efficacy in a chronic mesial temporal lobe epilepsy rodent model.
Animal model / Human subject
Rattus norvegicus (Sprague–Dawley), age not specified (body weight ~270–280 g at KA injection; separate non-epileptic cohort 452 ± 11 g), sex: male
Disease model
mesial temporal lobe epilepsy (mTLE)
Targeted brain region(s)
Dentate gyrus
Target coordinates
AP -5.6 mm, ML +4.0 mm, DV 7.0 mm (to bregma; right dentate gyrus CA1/CA3)
Cargo name and characteristics
Phenytoin (PHT) — small‑molecule anti‑epileptic drug, highly plasma‑protein bound to albumin, MW ~252 Da; used in vitro at 15 µg/mL for equilibrium dialysis and administered intraperitoneally to rats at 75 mg/kg (Dilantin injectable). Kainic acid (KA) — small‑molecule excitotoxin used to create the mTLE model (intrahippocampal injection solution 1 µg/µL, 1 µL delivered at 1 µL/min).
Route of administration
Intraperitoneal injection (phenytoin); Intrahippocampal stereotactic injection (kainic acid)
Outcomes and Safety
Summary of Outcomes
FUS significantly enhanced seizure suppression by phenytoin, reducing ictal count and duration compared to drug alone.
Safety-related matter
Across multiple assessments (trypan blue BBB dye, scalp temperature, behavioral monitoring, and histology/IHC including H&E, VAF, GFAP, vimentin, CD11b, and caspase-3), the authors report no evidence of blood–brain barrier disruption, thermal elevation, cellular/vascular damage, or behavioral exacerbation attributable to FUS or PHT+FUS. They do note a marginal increase in ictal count with FUS-only treatment, but no accompanying tissue damage or other adverse safety findings were observed.
Brain Region
Ultrasound Parameters
Ultrasound instrument
In-house built miniature single-element focused ultrasound (FUS) transducer (26.5 mm diameter, 26.5 mm height; PZT ceramic disc 19.1 mm diameter, 600 kHz, APC International Ltd.); focused by a plano-concave polyetherimide acoustic lens (20 mm radius of curvature, Armset LLC).
FUS Frequency
600 kHz
FUS Intensity
5 W/cm2
FUS Pressure
0.38 MPa
FUS Mode
pulsed
Pulse duration
50 ms
Duration of a single FUS session
30 min
Focal Characteristics
Focal depth: 20 mm; Focal length: 22 mm; Aperture size: 19.1 mm
Treatment frequency
multiple sessions
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