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BBB opening by low pulsed electric fields, depicted by delayed-contrast MRI, enables efficient delivery of therapeutic doxorubicin doses into mice brains.

Authors: Cooper I, Last D, Ravid O, Rand D, Matsree E, Omesi L, Shemesh C, Liberman M, Zach L, Furman O, Daniels D, Liraz-Zaltsman S, Mardor Y, Sharabi S

Pharmacological treatment of CNS diseases is limited due to the presence of the blood-brain barrier (BBB). Recent years showed significant advancement in the field of CNS drug delivery enablers, with technologies such as MR-guided focused ultrasound reaching clinical trials. This have inspired researchers in the field to invent novel brain barriers opening (BBo) technologies that are required to be simple, fast, safe and efficient. One such technology, recently developed by us, is BDF (Barrier Disrupting Fields), based on low pulsed electric fields (L-PEFs) for opening the BBB in a controlled, safe, reversible and non-invasive manner. Here, we conducted an in vivo study to show that BDF is a feasible technology for delivering Doxorubicin (Doxo) into mice brain. Means for depicting BBBo levels were developed and applied for monitoring the treatment and predicting response. Overall, the goals of the presented study were to demonstrate the feasibility for delivering therapeutic Doxo doses into naïve and tumor-bearing mice brains and applying delayed-contrast MRI (DCM) for monitoring the levels of BBBo. L-PEFs were applied using plate electrodes placed on the intact skull of naïve mice. L-PEFs/Sham mice were scanned immediately after the procedure by DCM ("MRI experiment"), or injected with Doxo and Trypan blue followed by delayed (4 h) perfusion and brain extraction ("Doxo experiment"). Doxo concentrations were measured in brain samples using confocal microscopy and compared to IC<sub>50</sub> of Doxo in glioma cell lines in vitro. In order to map BBBo extent throughout the brain, pixel by pixel MR image analysis was performed using the DCM data. Finally, the efficacy of L-PEFs in combination with Doxo was tested in nude mice bearing intracranial human glioma tumors. Significant amount of Doxo was found in cortical regions of all L-PEFs-treated mice brains (0.50 ± 0.06 µg Doxo/gr brain) while in Sham brains, Doxo concentrations were below or on the verge of detection limit (0.03 ± 0.02 µg Doxo/gr brain). This concentration was x97 higher than IC<sub>50</sub> of Doxo calculated in gl261 mouse glioma cells and x8 higher than IC<sub>50</sub> of Doxo calculated in U87 human glioma cells. DCM analysis revealed significant BBBo levels in the cortical regions of L-PEFs-treated mice; the average volume of BBBo in the L-PEFs-treated mice was x29 higher than in the Sham group. The calculated BBBo levels dropped exponentially as a function of BBBo threshold, similarly to the electric fields distribution in the brain. Finally, combining non-invasive L-PEFs with Doxo significantly decreased brain tumors growth rates in nude mice. Our results demonstrate significant BBBo levels induced by extra-cranial L-PEFs, enabling efficient delivery of therapeutic Doxo doses into the brain and reducing tumor growth. As BBBo was undetectable by standard contrast-enhanced MRI, DCM was applied to generate maps depicting the BBBo levels throughout the brain. These findings suggest that BDF is a promising technology for efficient drug delivery into the brain with important implications for future treatment of brain cancer and additional CNS diseases.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To demonstrate that non-invasive low pulsed electric fields (BDF) can transiently open the blood–brain barrier to deliver therapeutic doses of doxorubicin into naïve and tumor-bearing mouse brains and to monitor BBBo using delayed-contrast MRI.
Animal model / Human subject Mouse (Mus musculus), Hsd strain, 9 weeks old, male
Disease model glioma (glioblastoma / intracranial brain tumor)
Target coordinates AP +1 mm, ML 2 mm lateral, DV 2 mm depth
Cargo name and characteristics Doxorubicin hydrochloride — small-molecule anthracycline chemotherapeutic (MW ≈ 579.98 Da), administered IV at 6 mg/kg; Trypan blue — small-molecule vital dye used IV (100 mg/kg) to mark disrupted brain regions for tissue extraction; Gd-DOTA (Dotarem) — gadolinium-based small-molecule MRI contrast agent (chelate), administered IV or IP at 0.016–0.125 mmol/kg for delayed-contrast MRI
Route of administration Intravenous (tail vein catheter)

Outcomes and Safety

Summary of Outcomes Non‑invasive extracranial low pulsed electric fields (L-PEFs) transiently opened the BBB, enabling delivery of therapeutic doxorubicin into mouse cortex (~0.50 µg/g, ~690 nM), increasing BBBo volume ~29-fold versus sham and significantly slowing intracranial glioma growth when combined with doxorubicin. Effective L-PEFs settings reported were 200 V, 100 pulses, 50 µs pulse duration at 4 Hz (naïve mice) and 300 V, 30 pulses (tumor efficacy study).
Duration of biological effect 2 days
Safety-related matter The authors describe L-PEFs/BDF as a controlled, safe, reversible and non‑invasive BBBo method and note that prior work showed L-PEFs induced no inflammation or edema; no adverse effects are reported in the present in vivo studies.

Brain Region

Visualization unavailable

Ultrasound Parameters

Pulse duration 0.05 ms
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency Single session

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