Ultrasonic Modulation of Astrocytic and Neuronal Calcium Dynamics in Mouse Cortex
Yong, Y.; Jiang, H.; Qiao, C.; Liu, Z.; Zhou, X.; Zhou, Y.; Li, F.
Show abstract
BackgroundAstrocytes are abundant in the brain and their calcium signaling is reported to have an important effect on neuronal activity in both physiological and pathological conditions. Low-frequency focused ultrasound (FUS) has recently emerged as a powerful noninvasive neuromodulation approach, yet its impact on astrocyte calcium dynamics in different brain states in vivo is poorly understood. ObjectiveThis study aimed to elucidate the effects of non-thermal FUS on astrocyte calcium dynamic with in vivo cellular-resolution and cell-type-specific recording and identify whether the influences of FUS on cortical astrocytes and neurons are distinctive and state dependent. MethodsHere we combined a customized 0.521MHz FUS transducer with two-photon microscopy, allowing simultaneous single-cell resoultion imaging and FUS stimulation at intensities of 0.91 or 1.5 W/cm2 to examine astrocyte and neuronal calcium responses in somatosensory cortex of both awake and lightly anesthetized mice. Functional clustering analysis was performed to identify calcium response activated or inhibited subpopulations. ResultsIn awake mice, FUS significantly enhanced the amplitude, frequency, and temporal integral of astrocyte calcium transients, while suppressing neuronal calcium activity and reducing the proportion of activated neuronal subpopulations. In contrast, lightly anesthetized mice displayed a blunted yet increased astrocyte response and negligible neuronal modulation under FUS, suggesting that baseline suppression from anesthesia partially masks FUS effects. ConclusionsOur study demonstrated that FUS elicited distinctive, state-dependent effects on cortical astrocytes and neurons, highlighting astrocytes as previously underappreciated targets of ultrasound neuromodulation. These findings will pave the way for FUS-based therapies targeting astrocyte-neuron interactions in conditions involving abnormal brain excitability. HighlightsO_LILow duty cycle low frequency focused ultrasound induced negligible heat effects. C_LIO_LIUltrasound markedly enhanced astrocyte calcium transients in awake mice. C_LIO_LIUltrasound suppressed neuronal calcium activity in awake mice. C_LIO_LIThe effects of ultrasound on both cell types were reduced under light anesthesia. C_LI
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Sonogenetics for noninvasive and cellular-level neuromodulation in rodent brain 97%
- High resolution ultrasonic neural modulation observedvia in vivo two-photon calcium imaging 97%
- Selective manipulation of excitatory and inhibitory neurons in top-down and bottom-up visual pathways using ultrasound stimulation 96%
Similar papers in this journal
Similar papers in this journal
- Effects of focused ultrasound in a "clean" mouse model of ultrasonic neuromodulation 97%
- Cortical mapping of the sensory response reveals strong brain-state dependence of the late component 94%
- Two-photon voltage imaging of spontaneous activity from multiple neurons reveals network activity in brain tissue 93%
Similar papers in this journal
- High-throughput two-photon volumetric brain imaging in freely moving mice 94%
- Low-intensity pulsed ultrasound stimulation (LIPUS) modulates microglial activation following intracortical microelectrode implantation. 94%
- Role of Thalamus in Human Conscious Perception Revealed by Low-Intensity Focused Ultrasound Neuromodulation 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.