Ultrasound neuromodulation of cultured hippocampal neurons

Levy R, Deer TR, Henderson J. Intracranial neurostimulation for pain control: a review. Pain Phys. 2010;13(2):157–65.

Google Scholar 

Yu X, Nagai J, Khakh BS. Improved tools to study astrocytes. Nat Rev Neurosci. 2020;21(3):121–38.

Article  Google Scholar 

Gunaydin LA, et al. Ultrafast optogenetic control. Nat Neurosci. 2010;13(3):387–92.

Article  Google Scholar 

Boyden ES, et al. Millisecond-timescale, genetically targeted optical control of neural activity. Nat Neurosci. 2005;8(9):1263–8.

Article  Google Scholar 

Eom K, et al. Synergistic combination of near-infrared irradiation and targeted gold nanoheaters for enhanced photothermal neural stimulation. Biomed Opt Express. 2016;7(4):1614–25.

Article  Google Scholar 

Tyler WJ. Noninvasive neuromodulation with ultrasound? A continuum mechanics hypothesis. Neuroscientist. 2010;17(1):25–36.

Article  Google Scholar 

George MS, Lisanby SH, Sackeim HA. Transcranial magnetic stimulation: applications in neuropsychiatry. Arch Gen Psychiatry. 1999;56(4):300–11.

Article  Google Scholar 

Nitsche MA, et al. Treatment of depression with transcranial direct current stimulation (tDCS): a review. Exp Neurol. 2009;219(1):14–9.

Article  Google Scholar 

Bystritsky A, Korb AS. A review of low-intensity transcranial focused ultrasound for clinical applications. Curr Behav Neurosci Rep. 2015;2(2):60–6.

Article  Google Scholar 

Rezayat E, Toostani IG. A review on brain stimulation using low intensity focused ultrasound. Basic Clin Neurosci. 2015;7(3):187–94.

Google Scholar 

Baek H, Pahk KJ, Kim H. A review of low-intensity focused ultrasound for neuromodulation. Biomed Eng Lett. 2016;7(2):135–42.

Article  Google Scholar 

Khraiche ML, et al. Ultrasound induced increase in excitability of single neurons. Conf Proc IEEE Eng Med Biol Soc. 2008;2008:4246–9. https://doi.org/10.1109/IEMBS.2008.4650147.

Article  Google Scholar 

Tyler WJ, et al. Remote excitation of neuronal circuits using low-intensity, low-frequency ultrasound. PLoS ONE. 2008;3(10):e3511.

Article  Google Scholar 

Muratore, R. et al.: Bioeffects of low dose ultrasound on neuronal cell function. In 2009 38th Annual Symposium of the Ultrasonic Industry Association (UIA). 2009.

Tufail Y, et al. Ultrasonic neuromodulation by brain stimulation with transcranial ultrasound. Nat Protoc. 2011;6(9):1453–70.

Article  Google Scholar 

Kim H, et al. Focused ultrasound-mediated non-invasive brain stimulation: examination of sonication parameters. Brain Stimul. 2014;7(5):748–56.

Article  Google Scholar 

Lee W, et al. Creation of various skin sensations using pulsed focused ultrasound: Evidence for functional neuromodulation. Int J Imag Syst Technol. 2014;24(2):167–74.

Article  Google Scholar 

Beaudoin GM 3rd, et al. Culturing pyramidal neurons from the early postnatal mouse hippocampus and cortex. Nat Protoc. 2012;7(9):1741–54.

Article  Google Scholar 

Yao J, Qi J, Chen G. Actin-dependent activation of presynaptic silent synapses contributes to long-term synaptic plasticity in developing hippocampal neurons. J Neurosci. 2006;26(31):8137–47.

Article  Google Scholar 

Li X, et al. Long-term recording on multi-electrode array reveals degraded inhibitory connection in neuronal network development. Biosens Bioelectron. 2007;22(7):1538–43.

Article  Google Scholar 

Geissler M, Faissner A. A new indirect co-culture set up of mouse hippocampal neurons and cortical astrocytes on microelectrode arrays. J Neurosci Methods. 2012;204(2):262–72.

Article  Google Scholar 

Xiang G, et al. Microelectrode array-based system for neuropharmacological applications with cortical neurons cultured in vitro. Biosens Bioelectron. 2007;22(11):2478–84.

Article  Google Scholar 

Ahn S, et al. Study on the mechanisms of seizure-like events suppression effect by electrical stimulation using a microelectrode array. NeuroReport. 2017;28(9):471–8.

Article  Google Scholar 

Gross GW, et al. The use of neuronal networks on multielectrode arrays as biosensors. Biosens Bioelectron. 1995;10(6–7):553–67.

Article  Google Scholar 

Hochman DW, et al. Extracellular chloride and the maintenance of spontaneous epileptiform activity in rat hippocampal slices. J Neurophysiol. 1999;81(1):49–59.

Article  Google Scholar 

King RL, et al. Effective parameters for ultrasound-induced in vivo neurostimulation. Ultrasound Med Biol. 2013;39(2):312–31.

Article  Google Scholar 

Tyler WJ, Lani SW, Hwang GM. Ultrasonic modulation of neural circuit activity. Curr Opin Neurobiol. 2018;50:222–31.

Article  Google Scholar 

ter Haar G. Therapeutic applications of ultrasound. Prog Biophys Mol Biol. 2007;93(1–3):111–29.

Article  Google Scholar 

Kubanek J. Neuromodulation with transcranial focused ultrasound. Neurosurg Focus. 2018;44(2):E14–E14.

Article  Google Scholar 

Kubanek J, et al. Ultrasound elicits behavioral responses through mechanical effects on neurons and ion channels in a simple nervous system. J Neurosci. 2018;588:4969.

Google Scholar 

Plaksin M, Kimmel E, Shoham S. Cell-type-selective effects of intramembrane cavitation as a unifying theoretical framework for ultrasonic neuromodulation. eneuro. 2016;3:ENEURO.0136-15.2016.

Article  Google Scholar 

Wu YK, Fujishima K, Kengaku M. Differentiation of apical and basal dendrites in pyramidal cells and granule cells in dissociated hippocampal cultures. PLoS ONE. 2015;10(2):e0118482.

Article  Google Scholar 

Alreja A, Nemenman I, Rozell CJ. Constrained brain volume in an efficient coding model explains the fraction of excitatory and inhibitory neurons in sensory cortices. PLoS Comput Biol. 2022;18(1):e1009642.

Article  Google Scholar 

Xu J-C, et al. Cultured networks of excitatory projection neurons and inhibitory interneurons for studying human cortical neurotoxicity. Sci Transl Med. 2016;8(333):33348–33348.

Article  Google Scholar 

Comments (0)

No login
gif