Literature DB >> 23020854

Molecular roadblocks for cellular reprogramming.

Thomas Vierbuchen1, Marius Wernig.   

Abstract

During development, diverse cellular identities are established and maintained in the embryo. Although remarkably robust in vivo, cellular identities can be manipulated using experimental techniques. Lineage reprogramming is an emerging field at the intersection of developmental and stem cell biology in which a somatic cell is stably reprogrammed into a distinct cell type by forced expression of lineage-determining factors. Lineage reprogramming enables the direct conversion of readily available cells from patients (such as skin fibroblasts) into disease-relevant cell types (such as neurons and cardiomyocytes) or into induced pluripotent stem cells. Although remarkable progress has been made in developing novel reprogramming methods, the efficiency and fidelity of reprogramming need to be improved in order increase the experimental and translational utility of reprogrammed cells. Studying the mechanisms that prevent successful reprogramming should allow for improvements in reprogramming methods, which could have significant implications for regenerative medicine and the study of human disease. Furthermore, lineage reprogramming has the potential to become a powerful system for dissecting the mechanisms that underlie cell fate establishment and terminal differentiation processes. In this review, we will discuss how transcription factors interface with the genome and induce changes in cellular identity in the context of development and reprogramming.
Copyright © 2012 Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 23020854      PMCID: PMC3809030          DOI: 10.1016/j.molcel.2012.09.008

Source DB:  PubMed          Journal:  Mol Cell        ISSN: 1097-2765            Impact factor:   17.970


  110 in total

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3.  Epigenetic memory of an active gene state depends on histone H3.3 incorporation into chromatin in the absence of transcription.

Authors:  Ray Kit Ng; J B Gurdon
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4.  Nuclear reprogramming in heterokaryons is rapid, extensive, and bidirectional.

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Journal:  FASEB J       Date:  2009-01-13       Impact factor: 5.191

5.  Directly reprogrammed fibroblasts show global epigenetic remodeling and widespread tissue contribution.

Authors:  Nimet Maherali; Rupa Sridharan; Wei Xie; Jochen Utikal; Sarah Eminli; Katrin Arnold; Matthias Stadtfeld; Robin Yachechko; Jason Tchieu; Rudolf Jaenisch; Kathrin Plath; Konrad Hochedlinger
Journal:  Cell Stem Cell       Date:  2007-06-07       Impact factor: 24.633

6.  Highly efficient miRNA-mediated reprogramming of mouse and human somatic cells to pluripotency.

Authors:  Frederick Anokye-Danso; Chinmay M Trivedi; Denise Juhr; Mudit Gupta; Zheng Cui; Ying Tian; Yuzhen Zhang; Wenli Yang; Peter J Gruber; Jonathan A Epstein; Edward E Morrisey
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Review 7.  Technical challenges in using human induced pluripotent stem cells to model disease.

Authors:  Krishanu Saha; Rudolf Jaenisch
Journal:  Cell Stem Cell       Date:  2009-12-04       Impact factor: 24.633

8.  Induction of ectopic eyes by targeted expression of the eyeless gene in Drosophila.

Authors:  G Halder; P Callaerts; W J Gehring
Journal:  Science       Date:  1995-03-24       Impact factor: 47.728

9.  Direct cell reprogramming is a stochastic process amenable to acceleration.

Authors:  Jacob Hanna; Krishanu Saha; Bernardo Pando; Jeroen van Zon; Christopher J Lengner; Menno P Creyghton; Alexander van Oudenaarden; Rudolf Jaenisch
Journal:  Nature       Date:  2009-11-08       Impact factor: 49.962

10.  In vivo reprogramming of adult pancreatic exocrine cells to beta-cells.

Authors:  Qiao Zhou; Juliana Brown; Andrew Kanarek; Jayaraj Rajagopal; Douglas A Melton
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  83 in total

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2.  Continuous passages accelerate the reprogramming of mouse induced pluripotent stem cells.

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Journal:  Cell Reprogram       Date:  2014-01-04       Impact factor: 1.987

3.  The polycomb protein Ezh2 impacts on induced pluripotent stem cell generation.

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Journal:  Stem Cells Dev       Date:  2014-01-21       Impact factor: 3.272

4.  Pluripotent and somatic stem cells: from basic science to utilization in disease modeling and therapeutic application. Meeting report on the 7th International Meeting of the Stem Cell Network North Rhine Westphalia.

Authors:  Stefan Radtke; Peter A Horn
Journal:  Cell Reprogram       Date:  2013-09-10       Impact factor: 1.987

Review 5.  Fetal Hemoglobin Induction by Epigenetic Drugs.

Authors:  Donald Lavelle; James Douglas Engel; Yogen Saunthararajah
Journal:  Semin Hematol       Date:  2018-04-22       Impact factor: 3.851

6.  Functional roles of Nurr1, Pitx3, and Lmx1a in neurogenesis and phenotype specification of dopamine neurons during in vitro differentiation of embryonic stem cells.

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Journal:  Stem Cells Dev       Date:  2013-12-04       Impact factor: 3.272

7.  Transcription factor induction of human oligodendrocyte progenitor fate and differentiation.

Authors:  Jing Wang; Suyog U Pol; Alexa K Haberman; Chunming Wang; Melanie A O'Bara; Fraser J Sim
Journal:  Proc Natl Acad Sci U S A       Date:  2014-06-30       Impact factor: 11.205

Review 8.  Pluripotent stem cells in regenerative medicine: challenges and recent progress.

Authors:  Viviane Tabar; Lorenz Studer
Journal:  Nat Rev Genet       Date:  2014-02       Impact factor: 53.242

9.  Targeted Epigenetic Remodeling of Endogenous Loci by CRISPR/Cas9-Based Transcriptional Activators Directly Converts Fibroblasts to Neuronal Cells.

Authors:  Joshua B Black; Andrew F Adler; Hong-Gang Wang; Anthony M D'Ippolito; Hunter A Hutchinson; Timothy E Reddy; Geoffrey S Pitt; Kam W Leong; Charles A Gersbach
Journal:  Cell Stem Cell       Date:  2016-08-11       Impact factor: 24.633

Review 10.  Endodermal stem cell populations derived from pluripotent stem cells.

Authors:  Xin Cheng; Amita Tiyaboonchai; Paul Gadue
Journal:  Curr Opin Cell Biol       Date:  2013-02-26       Impact factor: 8.382

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