Focused ultrasound excites neurons via mechanosensitive calcium accumulation and ion channel amplification
Yoo, S.; Mittelstein, D. R.; Hurt, R. C.; Lacroix, J. J.; Shapiro, M. G.
Show abstract
Ultrasonic neuromodulation has the unique potential to provide non-invasive control of neural activity in deep brain regions with high spatial precision and without chemical or genetic modification. However, the biomolecular and cellular mechanisms by which focused ultrasound excites mammalian neurons have remained unclear, posing significant challenges for the use of this technology in research and potential clinical applications. Here, we show that focused ultrasound excites neurons through a primarily mechanical mechanism mediated by specific calcium-selective mechanosensitive ion channels. The activation of these channels results in a gradual build-up of calcium, which is amplified by calcium- and voltage-gated channels, generating a burst firing response. Cavitation, temperature changes, large-scale deformation, and synaptic transmission are not required for this excitation to occur. Pharmacological and genetic inhibition of specific ion channels leads to reduced responses to ultrasound, while over-expressing these channels results in stronger ultrasonic stimulation. These findings provide a critical missing explanation for the effect of ultrasound on neurons and facilitate the further development of ultrasonic neuromodulation and sonogenetics as unique tools for neuroscience research.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- TRPC6 is a mechanosensitive channel essential for ultrasound neuromodulation in mammalian brain 96%
- Ultrasound activates mechanosensitive TRAAK K+ channels directly through the lipid membrane 95%
- Cerebellar Purkinje cells can differentially modulate coherence between sensory and motor cortex depending on region and behavior 93%
Similar papers in this journal
- Sonogenetics for noninvasive and cellular-level neuromodulation in rodent brain 94%
- Transcranial ultrasound stimulation modulates neuronal membrane potentials across broad timescales in the awake mammalian brain 94%
- Selective manipulation of excitatory and inhibitory neurons in top-down and bottom-up visual pathways using ultrasound stimulation 94%
Similar papers in this journal
- Sonogenetic control of mammalian cells using exogenous Transient Receptor Potential A1 channels 95%
- Graded recruitment of pupil-linked neuromodulation by parametric stimulation of the vagus nerve 95%
- Phosphatidic acid is an endogenous negative regulator of PIEZO2 channels and mechanical sensitivity 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.