» Articles » PMID: 32018004

Cortical Hemodynamic Responses Induced by Low-intensity Transcranial Ultrasound Stimulation of Mouse Cortex

Overview
Journal Neuroimage
Specialty Radiology
Date 2020 Feb 5
PMID 32018004
Citations 34
Authors
Affiliations
Soon will be listed here.
Abstract

Ultrasound-mediated neuromodulation is emerging as a key technology for targeted noninvasive brain stimulation, but key insights into its effects and dose-response characteristics are still missing. The purpose of this study is to systematically evaluate the effect of low-intensity transcranial ultrasound stimulation (TUS) on complementary aspects of cerebral hemodynamic. We simultaneously record the EMG signal, local field potential (LFP) and cortical blood flow (CBF) using electrophysiological recording and laser speckle contrast imaging under ultrasound stimulation to simultaneously monitor motor responses, neural activities and hemodynamic changes during the application of low-intensity TUS in mouse motor cortex, using excitation pulses which caused whisker and tail movement. Our experimental results demonstrate interdependent TUS-induced motor, neural activity and hemodynamic responses that peak approximately 0.55s, 1.05s and 2.5s after TUS onset, respectively, and show a linear coupling relationship between their respective varying response amplitudes to repeated stimuli. We also found monotonic dose-response parametric relations of the CBF peak value increase as a function of stimulation intensity and duration, while stimulus duty-cycle had only a weak effect on peak responses. These findings demonstrate that TUS induces a change in cortical hemodynamics and LSCI provide a high temporal resolution view of these changes.

Citing Articles

Integrated Ultrasound Neuromodulation and Optical Neuroimaging in Awake Mice using a Transparent Ultrasound Transducer Cranial Window.

Mirg S, Samanta K, Chen H, Jiang J, Turner K, Salehi F bioRxiv. 2025; .

PMID: 40060492 PMC: 11888234. DOI: 10.1101/2025.02.19.638722.


Multimodal imaging of murine cerebrovascular dynamics induced by transcranial pulse stimulation.

Karakatsani M, Nozdriukhin D, Tiemann S, Yoshihara H, Storz R, Belau M Alzheimers Dement. 2025; 21(2):e14511.

PMID: 39807706 PMC: 11848200. DOI: 10.1002/alz.14511.


Label free, capillary-scale blood flow mapping in vivo reveals that low-intensity focused ultrasound evokes persistent dilation in cortical microvasculature.

Shen Y, Jethe J, Reid A, Hehir J, Amaral M, Ren C Commun Biol. 2025; 8(1):12.

PMID: 39762513 PMC: 11704147. DOI: 10.1038/s42003-024-07356-2.


Advances in non-invasive brain stimulation: enhancing sports performance function and insights into exercise science.

Qi S, Yu J, Li L, Dong C, Ji Z, Cao L Front Hum Neurosci. 2024; 18:1477111.

PMID: 39677404 PMC: 11638246. DOI: 10.3389/fnhum.2024.1477111.


Therapeutic ultrasound: an innovative approach for targeting neurological disorders affecting the basal ganglia.

Singh A, Reynolds J Front Neuroanat. 2024; 18:1469250.

PMID: 39417047 PMC: 11480080. DOI: 10.3389/fnana.2024.1469250.