The evaluation of zebrafish cardiovascular and behavioral functions through microfluidics

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作者
Satishkumar Subendran
Yi-Chieh Wang
Yueh-Hsun Lu
Chia-Yuan Chen
机构
[1] National Cheng Kung University,Department of Mechanical Engineering
[2] Taipei Medical University,Department of Radiology, Shuang
[3] Taipei Medical University,Ho Hospital
[4] National Yang-Ming University School of Medicine,Department of Radiology, School of Medicine, College of Medicine
来源
Scientific Reports | / 11卷
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摘要
This study proposed a new experimental approach for the vascular and phenotype evaluation of the non-anesthetized zebrafish with representative imaging orientations for heart, pectoral fin beating, and vasculature views by means of the designed microfluidic device through inducing the optomotor response and hydrodynamic pressure control. In order to provide the visual cues for better positioning of zebrafish, computer-animated moving grids were generated by an in-house control interface which was powered by the larval optomotor response, in conjunction with the pressure suction control. The presented platform provided a comprehensive evaluation of internal circulation and the linked external behaviors of zebrafish in response to the cardiovascular parameter changes. The insights from these imaging sections was extended to identify the linkage between the cardiac parameters and behavioral endpoints. In addition, selected chemicals such as ethanol and caffeine were employed for the treatment of zebrafish. The obtained findings can be applicable for future investigation in behavioral drug screening serving as the forefront in psychopharmacological and cognition research.
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[1]  
Eimon PM(2009)The use of in vivo zebrafish assays in drug toxicity screening Expert Opin. Drug Metab. Toxicol. 5 393-401
[2]  
Rubinstein AL(2012)On the edge: Pharmacological evidence for anxiety-related behavior in zebrafish larvae Behav. Brain Res. 228 99-106
[3]  
Richendrfer H(2015)A microfluidic system for studying the behavior of zebrafish larvae under acute hypoxia Lab Chip 15 857-866
[4]  
Pelkowski S(2011)An integrated microfluidic array system for evaluating toxicity and teratogenicity of drugs on embryonic zebrafish developmental dynamics Biomicrofluidics 5 024115-945
[5]  
Colwill R(2014)Microfluidics expands the zebrafish potentials in pharmaceutically relevant screening Adv. Healthcare Mater. 3 940-2839
[6]  
Creton R(2013)Magnetically actuated artificial cilia for optimum mixing performance in microfluidics Lab Chip 13 2834-548
[7]  
Erickstad M(2017)An artificial cilia-based micromixer towards the activation of zebrafish sperms Sens. Actuators B Chem. 244 541-16
[8]  
Hale LA(2017)Zebrafish models of human disease: Gaining insight into human disease at ZFIN ILAR J. 58 4-17
[9]  
Chalasani SH(2020)Zebrafish as a model for studying ovarian development: Recent advances from targeted gene knockout studies Mol. Cell. Endocrinol. 507 1900105-10
[10]  
Groisman A(2019)Identification of two novel small compounds that inhibit liver cancer formation in zebrafish and analysis of their conjugation to nanodiamonds to further reduce toxicity Adv. Therap. 2 1-217