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Ultrasound-Triggered In Situ Photon Emission for Noninvasive Optogenetics.

Authors: Wang W, Wu X, Kevin Tang KW, Pyatnitskiy I, Taniguchi R, Lin P, Zhou R, Capocyan SLC, Hong G, Wang H

Optogenetics has revolutionized neuroscience understanding by allowing spatiotemporal control over cell-type specific neurons in neural circuits. However, the sluggish development of noninvasive photon delivery in the brain has limited the clinical application of optogenetics. Focused ultrasound (FUS)-derived mechanoluminescence has emerged as a promising tool for in situ photon emission, but there is not yet a biocompatible liquid-phase mechanoluminescence system for spatiotemporal optogenetics. To achieve noninvasive optogenetics with a high temporal resolution and desirable biocompatibility, we have developed liposome (Lipo@IR780/L012) nanoparticles for FUS-triggered mechanoluminescence in brain photon delivery. Synchronized and stable blue light emission was generated in solution under FUS irradiation due to the cascade reactions in liposomes. In vitro tests revealed that Lipo@IR780/L012 could be triggered by FUS for light emission at different stimulation frequencies, resulting in activation of opsin-expressing spiking HEK cells under the FUS irradiation. In vivo optogenetic stimulation further demonstrated that motor cortex neurons could be noninvasively and reversibly activated under the repetitive FUS irradiation after intravenous injection of lipid nanoparticles to achieve limb movements.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To develop biocompatible liposome nanoparticles (Lipo@IR780/L012) that enable focused ultrasound-triggered mechanoluminescence for noninvasive, high-temporal-resolution optogenetic stimulation of the brain.
Animal model / Human subject Human (HEK cells; strain: HEK, not further specified), age: not stated, sex: not stated; In vivo animals used for motor cortex/limb movement experiments: species/strain/age/sex None
Disease model Healthy
Targeted brain region(s) Motor Cortex
Cargo name and characteristics Lipo@IR780/L012 liposome nanoparticles — lipid-based nanoparticles encapsulating the NIR dye IR780 and the chemiluminescent/luminol analog L-012 that produce focused-ultrasound (FUS)-triggered blue mechanoluminescence for in situ photon delivery (nanoparticle)
Route of administration intravenous

Outcomes and Safety

Summary of Outcomes Lipo@IR780/L012 liposomes produced synchronized blue mechanoluminescence under focused ultrasound, activating opsin-expressing spiking HEK cells in vitro and noninvasively and reversibly stimulating motor cortex neurons in vivo to evoke limb movements after intravenous injection; these effects were achieved with repetitive FUS irradiation and across different stimulation frequencies.
Safety-related matter Authors state the liposome (Lipo@IR780/L012) system offers desirable biocompatibility as a biocompatible liquid-phase mechanoluminescence approach; no adverse effects or safety concerns are reported in the provided excerpt.

Brain Region

Ultrasound Parameters

FUS Mode pulsed
Focal Characteristics focal depth: None; focal length: None; aperture size: None
Treatment frequency Multiple sessions

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