Modulating and monitoring the functionality of corticostriatal circuits using an electrostimulable microfluidic device

Sukmin Han, Seokyoung Bang, Hong Nam Kim, Nakwon Choi, Sung Hyun Kim

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

The central nervous system is organized into different neural circuits, each with particular functions and properties. Studying neural circuits is essential to understanding brain function and neuronal diseases. Microfluidic systems are widely used for reconstructing and studying neural circuits but still need improvement to allow modulation and monitoring of the physiological properties of circuits. In this study, we constructed an improved microfluidic device that supports the electrical modulation of neural circuits and proper reassembly. We demonstrated that our microfluidic device provides a platform for electrically modulating and monitoring the physiological function of neural circuits with genetic indicators for synaptic functionality in corticostriatal (CStr) circuits. In particular, our microfluidic device measures activity-driven Ca2+ dynamics using Ca2+ indicators (synaptophysin-GCaMP6f and Fluo5F-AM), as well as activity-driven synaptic transmission and retrieval using vGlut-pHluorin. Overall, our findings indicate that the improved microfluidic platform described here is an invaluable tool for studying the physiological properties of specific neural circuits.

Original languageEnglish
Article number13
JournalMolecular Brain
Volume16
Issue number1
DOIs
StatePublished - Dec 2023

Keywords

  • Action potential
  • Ca dynamics
  • Corticostriatal (CStr) circuit
  • Microfluidic device
  • Synapse
  • Synaptic transmission

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