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Transcranial focused ultrasound stimulation is a promising therapeutic modality for human brain disorders because of its noninvasiveness, long penetration depth, and versatile spatial control capability through beamforming and beam steering. However, the skull presents a major hurdle for successful applications of ultrasound stimulation. Specifically, skull-induced focal aberration limits the capability for accurate and versatile targeting of brain subregions. In addition, there lacks a fully functional preclinical neuromodulation system suitable to conduct behavioral studies. Here, we report a miniature ultrasound system for neuromodulation applications that is capable of highly accurate multiregion targeting based on acoustic holography. Our work includes the design and implementation of an acoustic lens for targeting brain regions with compensation for skull aberration through time-reversal recording and a phase conjugation mirror. Moreover, we utilize MEMS and 3D-printing technology to implement a 0.75-g lightweight neuromodulation system and present in vivo characterization of the packaged system in freely moving mice. This preclinical system is capable of accurately targeting the desired individual or multitude of brain regions, which will enable versatile and explorative behavior studies using ultrasound neuromodulation to facilitate widespread clinical adoption.
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http://dx.doi.org/10.1038/s41378-023-00513-3 | DOI Listing |
J Neurophysiol
September 2025
Defitech Chair of Clinical Neuroengineering, Neuro X Institute (INX), École Polytechnique Fédérale de Lausanne (EPFL), Campus Biotech, Geneva, Switzerland.
Complex neural activity of the motor cortex is posited to serve as the foundation for a large repertoire of activation patterns crucial for executing movements. As transcranial magnetic stimulation (TMS) predominantly activates monosynaptic fast-conducting corticospinal projections, which are involved in dexterous movement control, complexity of neural outputs elicited by TMS may reflect an underlying repertoire of activation patterns crucial for executing dexterous movements. We proposed to quantify dimensionality of multi-muscle motor-evoked potentials (MEPs) through dimensionality reduction as an integrated measure to reflect complexity of neural outputs elicited by TMS.
View Article and Find Full Text PDFExp Clin Psychopharmacol
September 2025
Department of Neuroscience, Rockefeller Neuroscience Institute, West Virginia University School of Medicine.
Nearly 2 million people had a diagnosis of methamphetamine use disorder (MUD) in 2023 and overdose deaths involving psychostimulants are increasing. Given that there are no currently approved U.S.
View Article and Find Full Text PDFMagn Reson Med
September 2025
Department of Diagnostic Radiology and Nuclear Medicine, University of Maryland School of Medicine, Baltimore, Maryland, USA.
Purpose: Inconsistencies in focused ultrasound (FUS) transducer positioning and skull-induced aberrations can reduce the targeting accuracy and cause inconsistencies in the intensity delivered during FUS neuromodulation procedures. This study aimed to evaluate the use of MR-acoustic radiation force imaging (MR-ARFI) in improving the targeting accuracy and assessing the variation in the pressure delivered during FUS procedures.
Methods: An MR-guided FUS system was used to bilaterally target the nucleus accumbens region of Sprague-Dawley rats.
Magn Reson Med
September 2025
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio, USA.
Purpose: To improve single-shot spiral MR-Acoustic Radiation Force Imaging (MR-ARFI)'s robustness to dynamic phase errors and evaluate it in non-human primates (NHPs) with a low-f-number transducer.
Methods: A single-shot spiral MR-ARFI pulse sequence with 2 mm in-plane resolution and alternating displacement phase contrast was implemented to visualize the focus generated by a 128-element ultrasound transducer in the NHP brain. A model-based displacement map calculation was implemented to remove dynamic phase errors.
Brain Stimul
August 2025
Department of Neurology, Comprehensive Stroke Center, University of California Los Angeles (UCLA), USA.