Article / European Biophysics JournalArticle / European Biophysics JournalArticle / European Biophysics JournalArticle / European Biophysics Journal
  • RESEARCH CENTERS
  • CORE FACILITIES
    • Advanced Microscopy
    • Cell Culture
    • Molecular Cell Biology
    • Proteomics
    • Drug Discovery
    • Bioinformatics
    • Biomaterials
    • Electrophysiology and Behavior
    • Cognitive Neuroscience
    • Animal House
  • PEOPLE
    • Administration
    • Group Leader
    • Transition Scientist
    • Early Career Researchers
    • Students
  • EVENTS
    • Event Calendar
    • Critical Mind
    • SABITALKS
    • InFocus
    • CROSSTALKS
    • MODAS WS
    • SABITA Podcast
    • Social
  • ABOUT US
    • Our Mission
    • Gender Equality Policy
  • RESEARCH CENTERS
  • CORE FACILITIES
    • Advanced Microscopy
    • Cell Culture
    • Molecular Cell Biology
    • Proteomics
    • Drug Discovery
    • Bioinformatics
    • Biomaterials
    • Electrophysiology and Behavior
    • Cognitive Neuroscience
    • Animal House
  • PEOPLE
    • Administration
    • Group Leader
    • Transition Scientist
    • Early Career Researchers
    • Students
  • EVENTS
    • Event Calendar
    • Critical Mind
    • SABITALKS
    • InFocus
    • CROSSTALKS
    • MODAS WS
    • SABITA Podcast
    • Social
  • ABOUT US
    • Our Mission
    • Gender Equality Policy

Article / European Biophysics Journal

An Improved Platform for Cultured Neuronal Network Electrophysiology: Multichannel Optogenetics Integrated with MEAs

F. Kemal Bayat, M. İkbal Alp, Sevginur Bostan, H. Özcan Gülçür, Gürkan Öztürk, Albert Güveniş

Abstract

Cultured neuronal networks (CNNs) are powerful tools for studying how neuronal representation and adaptation emerge in networks of controlled populations of neurons. To ensure the interaction of a CNN and an artificial setting, reliable operation in both open and closed loops should be provided. In this study, we integrated optogenetic stimulation with microelectrode array (MEA) recordings using a digital micromirror device and developed an improved research tool with a 64-channel interface for neuronal network control and data acquisition. We determined the ideal stimulation parameters including light intensity, frequency, and duty cycle for our configuration. This resulted in robust and reproducible neuronal responses. We also demonstrated both open and closed loop configurations in the new platform involving multiple bidirectional channels. Unlike previous approaches that combined optogenetic stimulation and MEA recordings, we did not use binary grid patterns, but assigned an adjustable-size, non-binary optical spot to each electrode. This approach allowed simultaneous use of multiple input–output channels and facilitated adaptation of the stimulation parameters. Hence, we advanced a 64-channel interface in that each channel can be controlled individually in both directions simultaneously without any interference or interrupts. The presented setup meets the requirements of research in neuronal plasticity, network encoding and representation, closed-loop control of firing rate and synchronization. Researchers who develop closed-loop control techniques and adaptive stimulation strategies for network activity will benefit much from this novel setup.

Click here for article
Share

SOCIAL MEDIA

SHORTCUT LINKS

 

  • Contact
  • Corporate Identity
  • Referrence Guide
  • Request Forms
  • Sabita 360°
  • Sabita Society
  • Social

OUR MISSION

Translation of Scientific Findings From Bench to Bedside

  • Read More
  • © 2025 Medipol University | SABITA Research Institute for Health Sciences and Technologies
    [contact-form-7 id="50" title="Contact form 1"]