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Modulation in Action Potentials of Rat Hippocampal Neurons Measured on Multi-Channel Electrodes During Ultrasound Stimulation

다채널 전극을 이용한 초음파 자극 시 쥐 해마 신경 세포의 활동 전위 검출

  • Han, H.S. (Department of Biomedical Engineering, Kyung Hee University) ;
  • Jeon, H.J. (Department of Biomedical Engineering, Kyung Hee University) ;
  • Hwang, S.Y. (Department of Electronics Engineering, College of Engineering, Ewha Womans University) ;
  • Lee, Y.N. (Department of Electronics Engineering, College of Engineering, Ewha Womans University) ;
  • Byun, K.M. (Department of Biomedical Engineering, Kyung Hee University) ;
  • Jun, S.B. (Department of Electronics Engineering, College of Engineering, Ewha Womans University) ;
  • Kim, T.S. (Department of Biomedical Engineering, Kyung Hee University)
  • 한희석 (경희대학교 생체의공학과) ;
  • 전현재 (경희대학교 생체의공학과) ;
  • 황서영 (이화여자대학교 전자공학과) ;
  • 이예나 (이화여자대학교 전자공학과) ;
  • 변경민 (경희대학교 생체의공학과) ;
  • 전상범 (이화여자대학교 전자공학과) ;
  • 김태성 (경희대학교 생체의공학과)
  • Received : 2013.07.18
  • Accepted : 2013.11.29
  • Published : 2013.12.31

Abstract

It is known that ultrasound affects action potentials in neurons, but the underlying principles of ultrasonic neural stimulation are not clearly elucidated yet. In this study, we measured the action potentials of rat hippocampal neurons cultured on multi-electrode arrays during ultrasound stimulation. From most of electrodes, it was observed that the ultrasound stimulation increased the frequencies of action potentials (i.e., spikes) during ultrasound stimulation.

Keywords

References

  1. N. Lipsman, M.L. Schwartz, Y. Huang, L. Lee, T. Sankar, M. Chapman, K. Hynynen, and A.M. Lozano, "MR-guided focused ultrasound thalamotomy for essential tremor: a proof-of-concept study," Lancet Neurol, vol. 12, no. 5, pp. 462-468, 2013. https://doi.org/10.1016/S1474-4422(13)70048-6
  2. S. Harmeroff, M. Trakas, C. Duffield, E. Annabi, M.B. Gerace, P. Boyle, A. Lucas, Q. Amos, A. Buadu, and J.J. Badal, "Transcranial Ultrasound (TUS) effect on mental states: A pilot study," Brain Stimulation, vol. 6, no. 3, pp. 409-415, 2013. https://doi.org/10.1016/j.brs.2012.05.002
  3. W.J. Tyler, "Noninvasive Neuromodulation with Ultrasound? A Continuum Mechanics Hypothesis," Neuroscientist, vol. 17, no. 1, pp. 25-36, 2011. https://doi.org/10.1177/1073858409348066
  4. M.L. Khraiche, W.B. Phillips, N. Jackson, and J. Muthuswamy, "Ultrasound Induced Increase in Excitability of Single Neurons," in Proc. 30th Annual International IEEE EMBS Conference, Vancouver, Canada, August, 2008, pp. 4246-4249.
  5. R. Muratore, J.K. Lamanna, M.R. Lamprecht, and B. Morrison III, "Bioeffects of Low Dose Ultrasound on Neuronal Cell Function," in Proc. 38th Ultrasonic Industry Association Symposium, Vancouver, BC Canada, March, 2009, pp. 1-3.
  6. R. Muratore, J.K. Lamanna, M.R. Lamprecht, and B. Morrison III, "Hippocampal culture stimulus with 4-megahertz ultrasound," in Proc. 11th International Symposium on Therapeutic Ultrasound, New York, USA, April, 2011, pp. 254-258.
  7. P.H. Tsui, S.H. Wang, and C.C. Huang, "In vitro effects of ultrasound with different energies on the conduction properties of neural tissue," Ultrasonics, vol. 43, no. 3, pp. 560-565, 2005. https://doi.org/10.1016/j.ultras.2004.12.003
  8. F. Ahmadi, L.V. McLoutghlin, S. Chauhan, and G.T. Haar, "Bio-effects and safety of low-intensity, low-frequency ultrasonic exposure," Prog Biophys Mol Biol, vol. 108, no. 3, pp. 119-138, 2012. https://doi.org/10.1016/j.pbiomolbio.2012.01.004
  9. Y. Tufail, A. Matyushov, N. Baldwin, M.L. Tauchmann, A. Yoshihiro, S.I. H. Tilery, and W.J. Tyler, "Transcranial Pulsed Ultrasound Stimulates intatact Brain Circuits," J. Neuron, vol. 66, no. 3, pp. 681-694, 2010. https://doi.org/10.1016/j.neuron.2010.05.008
  10. R.L. King, J.R. Brown, W.T. Newsome, and B. Pauly, "Effective Parameters for Ultrasound-Induced In Vivo Neurostimulation," Ultrasound Med Biol., vol. 39, no. 2, pp. 312-331, 2013. https://doi.org/10.1016/j.ultrasmedbio.2012.09.009
  11. M. Afadzi, S.P. Strand, E.A. Nilssen, S.E. Masoy, T.F. Johansen, R. Hansen, B.A. Angelsen, C.D.L. Davies, "Mechanisms of the Ultrasound-Mediated Intracellular Delivery of Liposomes and Dextrans," Transactions on Ultrasonics Ferroelectr, and Frequency Control, vol. 60, no. 1, pp. 21-33, 2013.
  12. M. Babakhanian, R.E. Fan, A.P. Mulgaonkar, R. Singh, M.O. Culjat, S.M. Danesh, L. Toro, W. Grundfest, and W.P. Melega, "In-vitro cell system for studying molecular mechanisms of action associated with low intensity focused ultrasound," In: SPIE BiOS, International Society for Optics and Photonics, pp. 82140S-82140S-6, 2012.
  13. N.I. Vykhodtseva, and V.I. Koroleva, "Steady Potential changes and spreading depression in Rat brains produced by focused ultrasound," in Proc. 5th International Symposium on Therapeutic Ultrasound, Boston, USA, October, 2005, pp. 59-63.
  14. A. Novellino, and J.-M. Zaldivar "Recurrence quantification analysis of spontaneous electrophysiological activity during development: characterization of in vitro neuronal networks cultured on multi electrode array chips", Advances in Artificial Intelligence, vol. 2010, no. 3, 2010.
  15. H.L. Chan, M.A. Lin, T. Wu, S.T. Lee, Y.T. Tsai, and P.K. Chao, "Detection of Neuronal Spikes using an Adaptive Threshold based on the max-min spread Sorting Method," J. Neuroscience Methods, vol. 172, pp. 112-121, 2008. https://doi.org/10.1016/j.jneumeth.2008.04.014