Literature DB >> 25461688

3D in vitro modeling of the central nervous system.

Amy M Hopkins1, Elise DeSimone1, Karolina Chwalek1, David L Kaplan2.   

Abstract

There are currently more than 600 diseases characterized as affecting the central nervous system (CNS) which inflict neural damage. Unfortunately, few of these conditions have effective treatments available. Although significant efforts have been put into developing new therapeutics, drugs which were promising in the developmental phase have high attrition rates in late stage clinical trials. These failures could be circumvented if current 2D in vitro and in vivo models were improved. 3D, tissue-engineered in vitro systems can address this need and enhance clinical translation through two approaches: (1) bottom-up, and (2) top-down (developmental/regenerative) strategies to reproduce the structure and function of human tissues. Critical challenges remain including biomaterials capable of matching the mechanical properties and extracellular matrix (ECM) composition of neural tissues, compartmentalized scaffolds that support heterogeneous tissue architectures reflective of brain organization and structure, and robust functional assays for in vitro tissue validation. The unique design parameters defined by the complex physiology of the CNS for construction and validation of 3D in vitro neural systems are reviewed here.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D in vitro model; Blood–brain barrier; Central nervous systems; Tissue engineering

Mesh:

Substances:

Year:  2014        PMID: 25461688      PMCID: PMC4324093          DOI: 10.1016/j.pneurobio.2014.11.003

Source DB:  PubMed          Journal:  Prog Neurobiol        ISSN: 0301-0082            Impact factor:   11.685


  319 in total

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Journal:  Adv Drug Deliv Rev       Date:  1999-04-05       Impact factor: 15.470

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Authors:  Luca Cucullo; Mark S McAllister; Kelly Kight; Ljiljana Krizanac-Bengez; Matteo Marroni; Marc R Mayberg; Kathe A Stanness; Damir Janigro
Journal:  Brain Res       Date:  2002-10-04       Impact factor: 3.252

Review 3.  Tissue cells feel and respond to the stiffness of their substrate.

Authors:  Dennis E Discher; Paul Janmey; Yu-Li Wang
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Review 4.  Astrocyte control of synaptic transmission and neurovascular coupling.

Authors:  Philip G Haydon; Giorgio Carmignoto
Journal:  Physiol Rev       Date:  2006-07       Impact factor: 37.312

5.  The enhancement of cell adherence and inducement of neurite outgrowth of dorsal root ganglia co-cultured with hyaluronic acid hydrogels modified with Nogo-66 receptor antagonist in vitro.

Authors:  S Hou; W Tian; Q Xu; F Cui; J Zhang; Q Lu; C Zhao
Journal:  Neuroscience       Date:  2005-11-17       Impact factor: 3.590

6.  Isolation and culture of adult rat hippocampal neurons.

Authors:  G J Brewer
Journal:  J Neurosci Methods       Date:  1997-02       Impact factor: 2.390

Review 7.  Calcium channels and short-term synaptic plasticity.

Authors:  William A Catterall; Karina Leal; Evanthia Nanou
Journal:  J Biol Chem       Date:  2013-02-11       Impact factor: 5.157

8.  Identification of genes differentially expressed by nerve growth factor- and neurotrophin-3-dependent sensory neurons.

Authors:  R H Friedel; H Schnürch; J Stubbusch; Y A Barde
Journal:  Proc Natl Acad Sci U S A       Date:  1997-11-11       Impact factor: 11.205

9.  RVG-peptide-linked trimethylated chitosan for delivery of siRNA to the brain.

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Journal:  Biomacromolecules       Date:  2014-02-27       Impact factor: 6.988

10.  Extracellular matrix signature identifies breast cancer subgroups with different clinical outcome.

Authors:  A Bergamaschi; E Tagliabue; T Sørlie; B Naume; T Triulzi; R Orlandi; H G Russnes; J M Nesland; R Tammi; P Auvinen; V-M Kosma; S Ménard; A-L Børresen-Dale
Journal:  J Pathol       Date:  2008-02       Impact factor: 7.996

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  58 in total

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Authors:  Daeha Joung; Vincent Truong; Colin C Neitzke; Shuang-Zhuang Guo; Patrick J Walsh; Joseph R Monat; Fanben Meng; Sung Hyun Park; James R Dutton; Ann M Parr; Michael C McAlpine
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2.  Three-Dimensional Neural Spheroid Culture: An In Vitro Model for Cortical Studies.

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Journal:  Tissue Eng Part C Methods       Date:  2015-10-06       Impact factor: 3.056

3.  Response of neuroglia to hypoxia-induced oxidative stress using enzymatically crosslinked hydrogels.

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4.  In vitro bioengineered model of cortical brain tissue.

Authors:  Karolina Chwalek; Min D Tang-Schomer; Fiorenzo G Omenetto; David L Kaplan
Journal:  Nat Protoc       Date:  2015-08-13       Impact factor: 13.491

5.  Assessing functional connectivity across 3D tissue engineered axonal tracts using calcium fluorescence imaging.

Authors:  Anjali Vijay Dhobale; Dayo O Adewole; Andy Ho Wing Chan; Toma Marinov; Mijail D Serruya; Reuben H Kraft; D Kacy Cullen
Journal:  J Neural Eng       Date:  2018-06-01       Impact factor: 5.379

Review 6.  Three-Dimensional Models of the Human Brain Development and Diseases.

Authors:  Mehdi Jorfi; Carla D'Avanzo; Doo Yeon Kim; Daniel Irimia
Journal:  Adv Healthc Mater       Date:  2017-08-28       Impact factor: 9.933

7.  3-D multi-electrode arrays detect early spontaneous electrophysiological activity in 3-D neuronal-astrocytic co-cultures.

Authors:  Varadraj N Vernekar; Michelle C LaPlaca
Journal:  Biomed Eng Lett       Date:  2020-07-31

8.  3D Printed Neural Regeneration Devices.

Authors:  Daeha Joung; Nicolas S Lavoie; Shuang-Zhuang Guo; Sung Hyun Park; Ann M Parr; Michael C McAlpine
Journal:  Adv Funct Mater       Date:  2019-11-08       Impact factor: 18.808

9.  Improved 3D Hydrogel Cultures of Primary Glial Cells for In Vitro Modelling of Neuroinflammation.

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10.  A Long-Living Bioengineered Neural Tissue Platform to Study Neurodegeneration.

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Journal:  Macromol Biosci       Date:  2020-02-17       Impact factor: 4.979

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