Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes

Growing evidence indicates important roles for astrocytes in neurodevelopment and diseases. However, astrocytes and their roles in these processes remain poorly understood. Despite recent progress in reprogramming somatic cells into different types of neural cells, reprogramming to astrocytes has la...

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Main Authors: E Tian, Guoqiang Sun, Guihua Sun, Jianfei Chao, Peng Ye, Charles Warden, Arthur D. Riggs, Yanhong Shi
Format: Article
Language:English
Published: Elsevier 2016-07-01
Series:Cell Reports
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211124716307963
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spelling doaj-80d2945396f4480fb41d01a2b3d8f7ec2020-11-25T01:39:04ZengElsevierCell Reports2211-12472016-07-0116378179210.1016/j.celrep.2016.06.042Small-Molecule-Based Lineage Reprogramming Creates Functional AstrocytesE Tian0Guoqiang Sun1Guihua Sun2Jianfei Chao3Peng Ye4Charles Warden5Arthur D. Riggs6Yanhong Shi7Division of Stem Cell Biology Research, Department of Developmental and Stem Cell Biology, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADivision of Stem Cell Biology Research, Department of Developmental and Stem Cell Biology, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADiabetes and Metabolism Research Institute, City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADivision of Stem Cell Biology Research, Department of Developmental and Stem Cell Biology, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADivision of Stem Cell Biology Research, Department of Developmental and Stem Cell Biology, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USAIntegrative Genomics Core, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADiabetes and Metabolism Research Institute, City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USADivision of Stem Cell Biology Research, Department of Developmental and Stem Cell Biology, Beckman Research Institute of City of Hope, 1500 E. Duarte Road, Duarte, CA 91010, USAGrowing evidence indicates important roles for astrocytes in neurodevelopment and diseases. However, astrocytes and their roles in these processes remain poorly understood. Despite recent progress in reprogramming somatic cells into different types of neural cells, reprogramming to astrocytes has lagged. Here, we show that functional astrocytes can be generated from mammalian fibroblasts using only small molecules. Induced mouse astrocytes resemble primary astrocytes in astrocytic gene expression and epigenomic status and exhibit functional properties in promoting neuronal maturation, glutamate uptake, and calcium signaling. Moreover, these cells can recapitulate the Alexander disease phenotype of protein aggregation when expressing Gfap with a disease-causing mutation. The same compounds can also reprogram human fibroblasts into astroglial progenitor cells that can further mature into functional astrocytes. These chemically induced astrocytes may provide cellular models to uncover roles of astrocytes in normal neurodevelopment and pathogenesis of neurological diseases.http://www.sciencedirect.com/science/article/pii/S2211124716307963direct conversionchemical reprogramminginduced astrocytessmall moleculesAlexander disease
collection DOAJ
language English
format Article
sources DOAJ
author E Tian
Guoqiang Sun
Guihua Sun
Jianfei Chao
Peng Ye
Charles Warden
Arthur D. Riggs
Yanhong Shi
spellingShingle E Tian
Guoqiang Sun
Guihua Sun
Jianfei Chao
Peng Ye
Charles Warden
Arthur D. Riggs
Yanhong Shi
Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
Cell Reports
direct conversion
chemical reprogramming
induced astrocytes
small molecules
Alexander disease
author_facet E Tian
Guoqiang Sun
Guihua Sun
Jianfei Chao
Peng Ye
Charles Warden
Arthur D. Riggs
Yanhong Shi
author_sort E Tian
title Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
title_short Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
title_full Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
title_fullStr Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
title_full_unstemmed Small-Molecule-Based Lineage Reprogramming Creates Functional Astrocytes
title_sort small-molecule-based lineage reprogramming creates functional astrocytes
publisher Elsevier
series Cell Reports
issn 2211-1247
publishDate 2016-07-01
description Growing evidence indicates important roles for astrocytes in neurodevelopment and diseases. However, astrocytes and their roles in these processes remain poorly understood. Despite recent progress in reprogramming somatic cells into different types of neural cells, reprogramming to astrocytes has lagged. Here, we show that functional astrocytes can be generated from mammalian fibroblasts using only small molecules. Induced mouse astrocytes resemble primary astrocytes in astrocytic gene expression and epigenomic status and exhibit functional properties in promoting neuronal maturation, glutamate uptake, and calcium signaling. Moreover, these cells can recapitulate the Alexander disease phenotype of protein aggregation when expressing Gfap with a disease-causing mutation. The same compounds can also reprogram human fibroblasts into astroglial progenitor cells that can further mature into functional astrocytes. These chemically induced astrocytes may provide cellular models to uncover roles of astrocytes in normal neurodevelopment and pathogenesis of neurological diseases.
topic direct conversion
chemical reprogramming
induced astrocytes
small molecules
Alexander disease
url http://www.sciencedirect.com/science/article/pii/S2211124716307963
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