Zebrafish needle EMG: a new tool for high-throughput drug screens

Author:

Cho Sung-Joon1,Nam Tai-Seung2,Byun Donghak3,Choi Seok-Yong4,Kim Myeong-Kyu2,Kim Sohee13

Affiliation:

1. Department of Medical System Engineering, Gwangju Institute of Science and Technology, Gwangju, Korea;

2. Department of Neurology, Chonnam National University Medical School, Gwangju, Korea;

3. School of Mechatronics, Gwangju Institute of Science and Technology, Gwangju, Korea; and

4. Department of Biomedical Sciences, Chonnam National University Medical School, Gwangju, Korea

Abstract

Zebrafish models have recently been highlighted as a valuable tool in studying the molecular basis of neuromuscular diseases and developing new pharmacological treatments. Needle electromyography (EMG) is needed not only for validating transgenic zebrafish models with muscular dystrophies (MD), but also for assessing the efficacy of therapeutics. However, performing needle EMG on larval zebrafish has not been feasible due to the lack of proper EMG sensors and systems for such small animals. We introduce a new type of EMG needle electrode to measure intramuscular activities of larval zebrafish, together with a method to hold the animal in position during EMG, without anesthetization. The silicon-based needle electrode was found to be sufficiently strong and sharp to penetrate the skin and muscles of zebrafish larvae, and its shape and performance did not change after multiple insertions. With the use of the proposed needle electrode and measurement system, EMG was successfully performed on zebrafish at 30 days postfertilization (dpf) and at 5 dpf. Burst patterns and spike morphology of the recorded EMG signals were analyzed. The measured single spikes were triphasic with an initial positive deflection, which is typical for motor unit action potentials, with durations of ∼10 ms, whereas the muscle activity was silent during the anesthetized condition. These findings confirmed the capability of this system of detecting EMG signals from very small animals such as 5 dpf zebrafish. The developed EMG sensor and system are expected to become a helpful tool in validating zebrafish MD models and further developing therapeutics.

Funder

National Research Foundation of Korea (NRF)

Gwangju Institute of Science and Technology (GIST)

Chonnam National University Hospital

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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