Effect of Acoustic Pressure on Temozolomide-Loaded Oleic Acid-Based Liposomes and Its Safety to Brain Tissue.
Authors: Dalinina VD, Shashkovskaya VS, Khaskhanova IM, Travnikova DY, Chmelyuk NS, Korzhenevskiy DA, Belousov VV, Abakumova TO
<b>Background:</b> Glioblastoma (GBM) is a highly aggressive primary brain tumor with limited therapeutic options, particularly due to the limited blood-brain barrier (BBB) permeability. Nanoparticle-based drug delivery systems, such as liposomes, can prolong drugs' circulation time and enhance their accumulation within brain tumors, thereby improving therapeutic outcomes. Controlled drug release further contributes to high local drug concentrations while minimizing systemic toxicity. Oleic acid (OA), a monounsaturated fatty acid, is commonly used to enhance drug loading and increase lipid membrane fluidity. In this study, we developed liposomal formulations with optimized temozolomide (TMZ)'s loading and analyze its response to focused ultrasound (FUS). <b>Methods</b>: We synthetized OA-based liposomes with different lipid composition, performed physicochemical characterization (DLS, TEM) and analyzed the TMZ loading efficiency. Different FUS parameters were tested for effective OA-based liposomes destruction. Safety of selected parameters was evaluated in vivo by MRI, histological staining and RT-PCR of pro-inflammatory cytokines. <b>Results</b>: All the formulations exhibited comparable hydrodynamic diameters; however, OA-containing liposomes demonstrated a significantly higher TMZ encapsulation efficiency and enhanced cytotoxicity in U87 glioma cells. Moreover, it was shown that OA-liposomes were disrupted at lower acoustic pressures (5 MPa), while conventional liposomes required higher thresholds (>8 MPa). A safety analysis of FUS parameters indicated that pressures exceeding 11 MPa induced brain edema, necrotic lesions and elevated cytokine levels within 72 h post-treatment. <b>Conclusions</b>: These results suggest that OA-based liposomes possess favorable characteristics, with an increased sonosensitivity for the site-specific delivery of TMZ, offering a promising strategy for glioma treatment.
Introduction
Purpose
Drug delivery WITHOUT BBB opening
Study Objective
To develop and characterize oleic acid–based liposomal temozolomide formulations with improved drug loading and to evaluate their focused ultrasound–triggered release and safety for targeted glioblastoma delivery.
Animal model / Human subject
Homo sapiens (U87 glioma cell line); age: not reported; sex: not reported
Disease model
Glioblastoma (glioma)
MRI or image guidance method
MRI
Targeted brain region(s)
Glioma
Target coordinates
Not provided
Cargo name and characteristics
Temozolomide (TMZ) — a small-molecule alkylating chemotherapeutic agent encapsulated in oleic acid (OA)-based liposomal nanoparticles; OA-containing liposomes showed increased TMZ loading/encapsulation efficiency and enhanced sonosensitivity for focused ultrasound-triggered release.
Route of administration
intravenous
Outcomes and Safety
Summary of Outcomes
OA-based liposomes showed higher TMZ encapsulation and increased cytotoxicity in U87 glioma cells and were disrupted at lower FUS pressures (effective at ~5 MPa), whereas conventional liposomes required >8 MPa and pressures >11 MPa caused brain edema, necrosis and elevated cytokines.
Duration of biological effect
72 h
Safety-related matter
In vivo safety analysis reported that focused ultrasound pressures exceeding 11 MPa induced brain edema, necrotic lesions, and elevated pro-inflammatory cytokine levels within 72 hours post-treatment. OA-containing liposomes were disrupted at lower pressures (5 MPa) compared with conventional liposomes (>8 MPa), suggesting lower required acoustic energy for release.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Thermo Scientific, Waltham, MA, USA
FUS Frequency
1 and 5 Hz
FUS Intensity
not provided
FUS Pressure
5.11, 5.83, 7.30, 8.03, 9.13, 10, 10.59 and 11 MPa
FUS Mode
pulsed
Pulse duration
not provided
Duration of a single FUS session
60 seconds
Focal Characteristics
8 mm
Treatment frequency
single
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