Advances in Microfluidics-based Experimental Methods for Neuroscience Research
Overview
Chemistry
Affiliations
The application of microfluidics to neuroscience applications has always appealed to neuroscientists because of the capability to control the cellular microenvironment in both a spatial and temporal manner. Recently, there has been rapid development of biological micro-electro-mechanical systems (BioMEMS) for both fundamental and applied neuroscience research. In this review, we will discuss the applications of BioMEMS to various topics in the field of neuroscience. The purpose of this review is to summarise recent advances in the components and design of the BioMEMS devices, in vitro disease models, electrophysiology and neural stem cell research. We envision that microfluidics will play a key role in future neuroscience research, both fundamental and applied research.
A Microfluidic High-Capacity Screening Platform for Neurological Disorders.
Moll L, Pihl J, Karlsson M, Karila P, Svensson C ACS Chem Neurosci. 2023; 15(2):236-244.
PMID: 38150531 PMC: 10797611. DOI: 10.1021/acschemneuro.3c00409.
Brain stimulation-on-a-chip: a neuromodulation platform for brain slices.
Shaner S, Lu H, Lenz M, Garg S, Vlachos A, Asplund M Lab Chip. 2023; 23(23):4967-4985.
PMID: 37909911 PMC: 10661668. DOI: 10.1039/d3lc00492a.
Engineering a multicompartment in vitro model for dorsal root ganglia phenotypic assessment.
Caparaso S, Redwine A, Wachs R J Biomed Mater Res B Appl Biomater. 2023; 111(11):1903-1920.
PMID: 37326300 PMC: 10527728. DOI: 10.1002/jbm.b.35294.
Downregulation of SF3B2 protects CNS neurons in models of multiple sclerosis.
Jeong Y, Rajbhandari L, Kim B, Venkatesan A, Hoke A Ann Clin Transl Neurol. 2022; 10(2):246-265.
PMID: 36574260 PMC: 9930435. DOI: 10.1002/acn3.51717.
Modeling Neurodegenerative Diseases Using Compartmentalized Microfluidic Devices.
Miny L, Maisonneuve B, Quadrio I, Honegger T Front Bioeng Biotechnol. 2022; 10:919646.
PMID: 35813998 PMC: 9263267. DOI: 10.3389/fbioe.2022.919646.