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Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte

Direct lineage conversion offers a new strategy for tissue regeneration and disease modeling. Despite recent success in directly reprogramming fibroblasts into various cell types, the precise changes that occur as fibroblasts progressively convert to target cell fates remain unclear. The inherent he...

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Autores principales: Liu, Ziqing, Wang, Li, Welch, Joshua D., Ma, Hong, Zhou, Yang, Vaseghi, Haley Ruth, Yu, Shuo, Wall, Joseph Blake, Alimohamadi, Sahar, Zheng, Michael, Yin, Chaoying, Shen, Weining, Prins, Jan F., Liu, Jiandong, Qian, Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954984/
https://www.ncbi.nlm.nih.gov/pubmed/29072293
http://dx.doi.org/10.1038/nature24454
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author Liu, Ziqing
Wang, Li
Welch, Joshua D.
Ma, Hong
Zhou, Yang
Vaseghi, Haley Ruth
Yu, Shuo
Wall, Joseph Blake
Alimohamadi, Sahar
Zheng, Michael
Yin, Chaoying
Shen, Weining
Prins, Jan F.
Liu, Jiandong
Qian, Li
author_facet Liu, Ziqing
Wang, Li
Welch, Joshua D.
Ma, Hong
Zhou, Yang
Vaseghi, Haley Ruth
Yu, Shuo
Wall, Joseph Blake
Alimohamadi, Sahar
Zheng, Michael
Yin, Chaoying
Shen, Weining
Prins, Jan F.
Liu, Jiandong
Qian, Li
author_sort Liu, Ziqing
collection PubMed
description Direct lineage conversion offers a new strategy for tissue regeneration and disease modeling. Despite recent success in directly reprogramming fibroblasts into various cell types, the precise changes that occur as fibroblasts progressively convert to target cell fates remain unclear. The inherent heterogeneity and asynchronous nature of the reprogramming process renders it difficult to study using bulk genomic techniques. Here, to overcome this limitation, we applied single-cell RNA-seq to analyze global transcriptome changes at early stages of induced cardiomyocyte (iCM) reprogramming(1–4). Using unsupervised dimensionality reduction and clustering algorithms, we identified molecularly distinct subpopulations of cells along reprogramming. We also constructed routes of iCM formation, and delineated the relationship between cell proliferation and iCM induction. Further analysis of global gene expression changes during reprogramming revealed an unexpected down-regulation of factors involved in mRNA processing and splicing. Detailed functional analysis of the top candidate splicing factor Ptbp1 revealed that it is a critical barrier to the acquisition of CM-specific splicing patterns in fibroblasts. Concomitantly, Ptbp1 depletion promoted cardiac transcriptome acquisition and increased iCM reprogramming efficiency. Additional quantitative analysis of our dataset revealed a strong correlation between the expression of each reprogramming factor and the progress of individual cells through the reprogramming process, and led to the discovery of novel surface markers for enrichment of iCMs. In summary, our single cell transcriptomics approaches enabled us to reconstruct the reprogramming trajectory and to uncover heretofore unrecognized intermediate cell populations, gene pathways and regulators involved in iCM induction.
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spelling pubmed-59549842018-05-16 Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte Liu, Ziqing Wang, Li Welch, Joshua D. Ma, Hong Zhou, Yang Vaseghi, Haley Ruth Yu, Shuo Wall, Joseph Blake Alimohamadi, Sahar Zheng, Michael Yin, Chaoying Shen, Weining Prins, Jan F. Liu, Jiandong Qian, Li Nature Article Direct lineage conversion offers a new strategy for tissue regeneration and disease modeling. Despite recent success in directly reprogramming fibroblasts into various cell types, the precise changes that occur as fibroblasts progressively convert to target cell fates remain unclear. The inherent heterogeneity and asynchronous nature of the reprogramming process renders it difficult to study using bulk genomic techniques. Here, to overcome this limitation, we applied single-cell RNA-seq to analyze global transcriptome changes at early stages of induced cardiomyocyte (iCM) reprogramming(1–4). Using unsupervised dimensionality reduction and clustering algorithms, we identified molecularly distinct subpopulations of cells along reprogramming. We also constructed routes of iCM formation, and delineated the relationship between cell proliferation and iCM induction. Further analysis of global gene expression changes during reprogramming revealed an unexpected down-regulation of factors involved in mRNA processing and splicing. Detailed functional analysis of the top candidate splicing factor Ptbp1 revealed that it is a critical barrier to the acquisition of CM-specific splicing patterns in fibroblasts. Concomitantly, Ptbp1 depletion promoted cardiac transcriptome acquisition and increased iCM reprogramming efficiency. Additional quantitative analysis of our dataset revealed a strong correlation between the expression of each reprogramming factor and the progress of individual cells through the reprogramming process, and led to the discovery of novel surface markers for enrichment of iCMs. In summary, our single cell transcriptomics approaches enabled us to reconstruct the reprogramming trajectory and to uncover heretofore unrecognized intermediate cell populations, gene pathways and regulators involved in iCM induction. 2017-10-25 2017-11-02 /pmc/articles/PMC5954984/ /pubmed/29072293 http://dx.doi.org/10.1038/nature24454 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 Reprints and permissions information is available at www.nature.com/reprints.
spellingShingle Article
Liu, Ziqing
Wang, Li
Welch, Joshua D.
Ma, Hong
Zhou, Yang
Vaseghi, Haley Ruth
Yu, Shuo
Wall, Joseph Blake
Alimohamadi, Sahar
Zheng, Michael
Yin, Chaoying
Shen, Weining
Prins, Jan F.
Liu, Jiandong
Qian, Li
Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title_full Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title_fullStr Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title_full_unstemmed Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title_short Single Cell Transcriptomics Reconstructs Fate Conversion from Fibroblast to Cardiomyocyte
title_sort single cell transcriptomics reconstructs fate conversion from fibroblast to cardiomyocyte
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954984/
https://www.ncbi.nlm.nih.gov/pubmed/29072293
http://dx.doi.org/10.1038/nature24454
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