• DocumentCode
    44770
  • Title

    An Astrocyte Neuromorphic Circuit That Influences Neuronal Phase Synchrony

  • Author

    Irizarry-Valle, Yilda ; Parker, Alice Cline

  • Author_Institution
    Ming Hsieh Dept. of Electr. Eng., Univ. of Southern California, Los Angeles, CA, USA
  • Volume
    9
  • Issue
    2
  • fYear
    2015
  • fDate
    Apr-15
  • Firstpage
    175
  • Lastpage
    187
  • Abstract
    Neuromorphic circuits are designed and simulated to emulate the role of astrocytes in phase synchronization of neuronal activity. We emulate, to a first order, the ability of slow inward currents (SICs) evoked by the astrocyte, acting on extrasynaptic N-methyl-D-aspartate receptors (NMDAR) of adjacent neurons, as a mechanism for phase synchronization. We run a simulation test incorporating two small networks of neurons interacting with astrocytic microdomains. These microdomains are designed using a resistive and capacitive ladder network and their interactions occur through pass transistors. Upon enough synaptic activity, the astrocytic microdomains interact with each other, generating SIC events on synapses of adjacent neurons. Since the amplitude of SICs is several orders of magnitude larger compared to synaptic currents, a SIC event drastically enhances the excitatory postsynaptic potential (EPSP) on adjacent neurons simultaneously. This causes neurons to fire synchronously in phase. Phase synchrony holds for a duration of time proportional to the time constant of the SIC decay. Once the SIC decay has completed, the neurons are able to go back to their natural phase difference, inducing desynchronization of their firing of spikes. This paper incorporates some biological aspects observed by recent experiments showing astrocytic influence on neuronal synchronization, and intends to offer a circuit view on the hypothesis of astrocytic role on synchronous activity that could potentially lead to the binding of neuronal information.
  • Keywords
    bio-inspired materials; biomedical electronics; biomedical engineering; cellular biophysics; neural nets; neurophysiology; proteins; synchronisation; EPSP; N-methyl-D-aspartate receptors; SIC ability; SIC amplitude; SIC decay; SIC event; adjacent neuron extrasynaptic NMDAR; adjacent neuron synapses; astrocyte neuromorphic circuit; astrocytic influence; capacitive ladder network; excitatory postsynaptic potential; neuron-astrocytic microdomain interaction; neuronal activity; neuronal information binding; neuronal phase synchrony; pass transistors; resistive ladder network; slow inward currents; spike firing; synaptic activity; synaptic currents; Calcium; Integrated circuit modeling; Neurons; Neurotransmitters; Synchronization; Transistors; Astrocytes; N-methyl-D-aspartate (NMDA) receptors; glial cells; neuro-glia interactions; neuromorphic; slow inward currents; synchronization;
  • fLanguage
    English
  • Journal_Title
    Biomedical Circuits and Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1932-4545
  • Type

    jour

  • DOI
    10.1109/TBCAS.2015.2417580
  • Filename
    7095618