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Engineering in vitro human neural tissue analogs by 3D bioprinting and electrostimulation
Author(s) -
Danielle Warren,
Eva TomaskovicCrook,
Gordon G. Wallace,
Jeremy M. Crook
Publication year - 2021
Publication title -
apl bioengineering
Language(s) - English
Resource type - Journals
ISSN - 2473-2877
DOI - 10.1063/5.0032196
Subject(s) - synaptogenesis , 3d bioprinting , induced pluripotent stem cell , neural stem cell , neuroscience , tissue engineering , in vitro , human induced pluripotent stem cells , neural development , stem cell , biology , neural tissue engineering , microbiology and biotechnology , biomedical engineering , embryonic stem cell , medicine , biochemistry , gene
There is a fundamental need for clinically relevant, reproducible, and standardized in vitro human neural tissue models, not least of all to study heterogenic and complex human-specific neurological (such as neuropsychiatric) disorders. Construction of three-dimensional (3D) bioprinted neural tissues from native human-derived stem cells (e.g., neural stem cells) and human pluripotent stem cells (e.g., induced pluripotent) in particular is appreciably impacting research and conceivably clinical translation. Given the ability to artificially and favorably regulate a cell's survival and behavior by manipulating its biophysical environment, careful consideration of the printing technique, supporting biomaterial and specific exogenously delivered stimuli, is both required and advantageous. By doing so, there exists an opportunity, more than ever before, to engineer advanced and precise tissue analogs that closely recapitulate the morphological and functional elements of natural tissues (healthy or diseased). Importantly, the application of electrical stimulation as a method of enhancing printed tissue development in vitro , including neuritogenesis, synaptogenesis, and cellular maturation, has the added advantage of modeling both traditional and new stimulation platforms, toward improved understanding of efficacy and innovative electroceutical development and application.

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