Pitt Shield

Brain Delivery of Curcumin Through Low-Intensity Ultrasound-Induced Blood-Brain Barrier Opening via Lipid-PLGA Nanobubbles.

Authors: Yan Y, Chen Y, Liu Z, Cai F, Niu W, Song L, Liang H, Su Z, Yu B, Yan F

Parkinson's disease (PD) is a progressive neurodegenerative disorder. Owing to the presence of blood-brain barrier (BBB), conventional pharmaceutical agents are difficult to the diseased nuclei and exert their action to inhibit or delay the progress of PD. Recent literatures have demonstrated that curcumin shows the great potential to treat PD. However, its applications are still difficult in vivo due to its poor druggability and low bioavailability through the BBB. Melt-crystallization methods were used to improve the solubility of curcumin, and curcumin-loaded lipid-PLGA nanobubbles (Cur-NBs) were fabricated through encapsulating the curcumin into the cavity of lipid-PLGA nanobubbles. The bubble size, zeta potentials, ultrasound imaging capability and drug encapsulation efficiency of the Cur-NBs were characterized by a series of analytical methods. Low-intensity focused ultrasound (LIFU) combined with Cur-NB was used to open the BBB to facilitate curcumin delivery into the deep brain of PD mice, followed by behavioral evaluation for the treatment efficacy. The solubility of curcumin was improved by melt-crystallization methods, with 2627-fold higher than pure curcumin. The resulting Cur-NBs have a nanoscale size about 400 nm and show excellent contrast imaging performance. Curcumin drugs encapsulated into Cur-NBs could be effectively released when Cur-NBs were irradiated by LIFU at the optimized acoustic pressure, achieving 30% cumulative release rate within 6 h. Importantly, Cur-NBs combined with LIFU can open the BBB and locally deliver the curcumin into the deep-seated brain nuclei, significantly enhancing efficacy of curcumin in the Parkinson C57BL/6J mice model in comparison with only Cur-NBs and LIFU groups. In this work, we greatly improved the solubility of curcumin and developed Cur-NBs for brain delivery of curcumin against PD through combining with LIFU-mediating BBB. Cur-NBs provide a platform for these potential drugs which are difficult to cross the BBB to treat PD disease or other central nervous system (CNS) diseases.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To develop curcumin-loaded lipid-PLGA nanobubbles and use low-intensity focused ultrasound to transiently open the blood–brain barrier for localized delivery of curcumin to treat Parkinson’s disease in a mouse model.
Animal model / Human subject Mouse (Mus musculus), C57BL/6J; age None; sex None
Disease model Parkinson's disease
Cargo name and characteristics Curcumin (small molecule): hydrophobic polyphenolic compound with poor intrinsic bioavailability; solubility improved ~2627-fold via melt‑crystallization; delivered in an encapsulated formulation and released upon low‑intensity focused ultrasound (LIFU) triggering (~30% cumulative release within 6 h); therapeutic cargo for Parkinson’s disease brain delivery.

Outcomes and Safety

Summary of Outcomes Curcumin-loaded lipid-PLGA nanobubbles (Cur-NBs) combined with low-intensity focused ultrasound (LIFU) opened the BBB, delivered curcumin to deep brain nuclei and significantly improved motor behavior in Parkinsonian C57BL/6J mice (better rotarod and pole-climbing performance) versus Cur-NBs or LIFU alone. Ultrasound conditions tested were acoustic negative pressures of 0, 0.31, 0.38 and 0.45 MPa, with 0.38 MPa identified as the optimized pressure for drug release and BBB opening (0.45 MPa produced more extensive bubble destruction).
Duration of biological effect 6 h
Safety-related matter Hemolysis testing showed excellent biocompatibility of Cur-NBs even at 1600 μg/mL, and LIFU parameters were optimized to induce stable (safer) cavitation while avoiding inertial cavitation that can cause capillary damage; no adverse effects or tissue damage were reported in the study.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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