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Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons

Understanding neurological diseases requires tractable genetic systems. Engineered 3D neural tissues are an attractive choice, but how the cellular transcriptomic profiles in these tissues are affected by the encapsulating materials and are related to the human-brain transcriptome is not well unders...

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Autores principales: Tekin, Halil, Simmons, Sean, Cummings, Beryl, Gao, Linyi, Adiconis, Xian, Hession, Cynthia C., Ghoshal, Ayan, Dionne, Danielle, Choudhury, Sourav R., Yesilyurt, Volkan, Sanjana, Neville E., Shi, Xi, Lu, Congyi, Heidenreich, Matthias, Pan, Jen Q, Levin, Joshua Z., Zhang, Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6157920/
https://www.ncbi.nlm.nih.gov/pubmed/30271673
http://dx.doi.org/10.1038/s41551-018-0219-9
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author Tekin, Halil
Simmons, Sean
Cummings, Beryl
Gao, Linyi
Adiconis, Xian
Hession, Cynthia C.
Ghoshal, Ayan
Dionne, Danielle
Choudhury, Sourav R.
Yesilyurt, Volkan
Sanjana, Neville E.
Shi, Xi
Lu, Congyi
Heidenreich, Matthias
Pan, Jen Q
Levin, Joshua Z.
Zhang, Feng
author_facet Tekin, Halil
Simmons, Sean
Cummings, Beryl
Gao, Linyi
Adiconis, Xian
Hession, Cynthia C.
Ghoshal, Ayan
Dionne, Danielle
Choudhury, Sourav R.
Yesilyurt, Volkan
Sanjana, Neville E.
Shi, Xi
Lu, Congyi
Heidenreich, Matthias
Pan, Jen Q
Levin, Joshua Z.
Zhang, Feng
author_sort Tekin, Halil
collection PubMed
description Understanding neurological diseases requires tractable genetic systems. Engineered 3D neural tissues are an attractive choice, but how the cellular transcriptomic profiles in these tissues are affected by the encapsulating materials and are related to the human-brain transcriptome is not well understood. Here, we report the characterization of the effects of culturing conditions on the transcriptomic profiles of induced neuronal cells, as well as a method for the rapid generation of 3D co-cultures of neuronal and astrocytic cells from the same pool of human embryonic stem cells. By comparing the gene-expression profiles of neuronal cells in culture conditions relevant to the developing human brain, we found that modifying the degree of crosslinking of composite hydrogels can tune expression patterns so they correlate with those of specific brain regions and developmental stages. Moreover, by using single-cell sequencing, we show that our engineered tissues recapitulate transcriptional patterns of cell types in the human brain. The analysis of culturing conditions will inform the development of 3D neural tissues for use as tractable models of brain diseases.
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spelling pubmed-61579202018-10-09 Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons Tekin, Halil Simmons, Sean Cummings, Beryl Gao, Linyi Adiconis, Xian Hession, Cynthia C. Ghoshal, Ayan Dionne, Danielle Choudhury, Sourav R. Yesilyurt, Volkan Sanjana, Neville E. Shi, Xi Lu, Congyi Heidenreich, Matthias Pan, Jen Q Levin, Joshua Z. Zhang, Feng Nat Biomed Eng Article Understanding neurological diseases requires tractable genetic systems. Engineered 3D neural tissues are an attractive choice, but how the cellular transcriptomic profiles in these tissues are affected by the encapsulating materials and are related to the human-brain transcriptome is not well understood. Here, we report the characterization of the effects of culturing conditions on the transcriptomic profiles of induced neuronal cells, as well as a method for the rapid generation of 3D co-cultures of neuronal and astrocytic cells from the same pool of human embryonic stem cells. By comparing the gene-expression profiles of neuronal cells in culture conditions relevant to the developing human brain, we found that modifying the degree of crosslinking of composite hydrogels can tune expression patterns so they correlate with those of specific brain regions and developmental stages. Moreover, by using single-cell sequencing, we show that our engineered tissues recapitulate transcriptional patterns of cell types in the human brain. The analysis of culturing conditions will inform the development of 3D neural tissues for use as tractable models of brain diseases. 2018-04-09 2018-07 /pmc/articles/PMC6157920/ /pubmed/30271673 http://dx.doi.org/10.1038/s41551-018-0219-9 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Tekin, Halil
Simmons, Sean
Cummings, Beryl
Gao, Linyi
Adiconis, Xian
Hession, Cynthia C.
Ghoshal, Ayan
Dionne, Danielle
Choudhury, Sourav R.
Yesilyurt, Volkan
Sanjana, Neville E.
Shi, Xi
Lu, Congyi
Heidenreich, Matthias
Pan, Jen Q
Levin, Joshua Z.
Zhang, Feng
Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title_full Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title_fullStr Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title_full_unstemmed Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title_short Effects of 3D culturing conditions on the transcriptomic profile of stem-cell-derived neurons
title_sort effects of 3d culturing conditions on the transcriptomic profile of stem-cell-derived neurons
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6157920/
https://www.ncbi.nlm.nih.gov/pubmed/30271673
http://dx.doi.org/10.1038/s41551-018-0219-9
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