Cargando…

Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development

Human stem cell-derived models of development and neurodegenerative diseases are challenged by cellular immaturity in vitro. Microengineered organ-on-chip (or Organ-Chip) systems are designed to emulate microvolume cytoarchitecture and enable co-culture of distinct cell types. Brain microvascular en...

Descripción completa

Detalles Bibliográficos
Autores principales: Sances, Samuel, Ho, Ritchie, Vatine, Gad, West, Dylan, Laperle, Alex, Meyer, Amanda, Godoy, Marlesa, Kay, Paul S., Mandefro, Berhan, Hatata, Seigo, Hinojosa, Chris, Wen, Norman, Sareen, Dhruv, Hamilton, Geraldine A., Svendsen, Clive N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5998748/
https://www.ncbi.nlm.nih.gov/pubmed/29576540
http://dx.doi.org/10.1016/j.stemcr.2018.02.012
_version_ 1783331289882951680
author Sances, Samuel
Ho, Ritchie
Vatine, Gad
West, Dylan
Laperle, Alex
Meyer, Amanda
Godoy, Marlesa
Kay, Paul S.
Mandefro, Berhan
Hatata, Seigo
Hinojosa, Chris
Wen, Norman
Sareen, Dhruv
Hamilton, Geraldine A.
Svendsen, Clive N.
author_facet Sances, Samuel
Ho, Ritchie
Vatine, Gad
West, Dylan
Laperle, Alex
Meyer, Amanda
Godoy, Marlesa
Kay, Paul S.
Mandefro, Berhan
Hatata, Seigo
Hinojosa, Chris
Wen, Norman
Sareen, Dhruv
Hamilton, Geraldine A.
Svendsen, Clive N.
author_sort Sances, Samuel
collection PubMed
description Human stem cell-derived models of development and neurodegenerative diseases are challenged by cellular immaturity in vitro. Microengineered organ-on-chip (or Organ-Chip) systems are designed to emulate microvolume cytoarchitecture and enable co-culture of distinct cell types. Brain microvascular endothelial cells (BMECs) share common signaling pathways with neurons early in development, but their contribution to human neuronal maturation is largely unknown. To study this interaction and influence of microculture, we derived both spinal motor neurons and BMECs from human induced pluripotent stem cells and observed increased calcium transient function and Chip-specific gene expression in Organ-Chips compared with 96-well plates. Seeding BMECs in the Organ-Chip led to vascular-neural interaction and specific gene activation that further enhanced neuronal function and in vivo-like signatures. The results show that the vascular system has specific maturation effects on spinal cord neural tissue, and the use of Organ-Chips can move stem cell models closer to an in vivo condition.
format Online
Article
Text
id pubmed-5998748
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-59987482018-06-14 Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development Sances, Samuel Ho, Ritchie Vatine, Gad West, Dylan Laperle, Alex Meyer, Amanda Godoy, Marlesa Kay, Paul S. Mandefro, Berhan Hatata, Seigo Hinojosa, Chris Wen, Norman Sareen, Dhruv Hamilton, Geraldine A. Svendsen, Clive N. Stem Cell Reports Article Human stem cell-derived models of development and neurodegenerative diseases are challenged by cellular immaturity in vitro. Microengineered organ-on-chip (or Organ-Chip) systems are designed to emulate microvolume cytoarchitecture and enable co-culture of distinct cell types. Brain microvascular endothelial cells (BMECs) share common signaling pathways with neurons early in development, but their contribution to human neuronal maturation is largely unknown. To study this interaction and influence of microculture, we derived both spinal motor neurons and BMECs from human induced pluripotent stem cells and observed increased calcium transient function and Chip-specific gene expression in Organ-Chips compared with 96-well plates. Seeding BMECs in the Organ-Chip led to vascular-neural interaction and specific gene activation that further enhanced neuronal function and in vivo-like signatures. The results show that the vascular system has specific maturation effects on spinal cord neural tissue, and the use of Organ-Chips can move stem cell models closer to an in vivo condition. Elsevier 2018-03-22 /pmc/articles/PMC5998748/ /pubmed/29576540 http://dx.doi.org/10.1016/j.stemcr.2018.02.012 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Sances, Samuel
Ho, Ritchie
Vatine, Gad
West, Dylan
Laperle, Alex
Meyer, Amanda
Godoy, Marlesa
Kay, Paul S.
Mandefro, Berhan
Hatata, Seigo
Hinojosa, Chris
Wen, Norman
Sareen, Dhruv
Hamilton, Geraldine A.
Svendsen, Clive N.
Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title_full Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title_fullStr Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title_full_unstemmed Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title_short Human iPSC-Derived Endothelial Cells and Microengineered Organ-Chip Enhance Neuronal Development
title_sort human ipsc-derived endothelial cells and microengineered organ-chip enhance neuronal development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5998748/
https://www.ncbi.nlm.nih.gov/pubmed/29576540
http://dx.doi.org/10.1016/j.stemcr.2018.02.012
work_keys_str_mv AT sancessamuel humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT horitchie humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT vatinegad humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT westdylan humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT laperlealex humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT meyeramanda humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT godoymarlesa humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT kaypauls humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT mandefroberhan humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT hatataseigo humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT hinojosachris humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT wennorman humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT sareendhruv humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT hamiltongeraldinea humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment
AT svendsencliven humanipscderivedendothelialcellsandmicroengineeredorganchipenhanceneuronaldevelopment