Literature DB >> 26475975

New approaches for direct conversion of patient fibroblasts into neural cells.

Suhasni Gopalakrishnan1, Pooja Hor1, Justin K Ichida1.   

Abstract

Recent landmark studies have demonstrated the production of disease-relevant human cell types by two different methods; differentiation of stem cells using external morphogens or lineage conversion using genetic factors. Directed differentiation changes embryonic stem cells (ESCs) or induced pluripotent stem cells (iPSCs) into a desired cell type by providing developmental cues in an in vitro environment. Direct reprogramming is achieved by the introduction of exogenous lineage specific transcription factors to convert any somatic cell type into another, thereby bypassing an intermediate pluripotent stage. A variety of somatic cell types such as blood, keratinocytes and fibroblasts can be used to derive iPSC cells. However, the process is time consuming,laborious, expensive and gives rise to cells with reported epigenetic heterogeneity even amongst different iPSC lines from same patient which could propagate phenotypic variability. A major concern with the use of pluripotent cells as starting material for cell replacement therapy is their incomplete differentiation and their propensity to form tumors following transplantation. In comparison, transcription factor mediated reprogramming offers a direct route to target cell types. This could allow for rapid comparison of large cohorts of patient and control samples at a given time for disease modeling. Additionally, transcription factors that drive maturation may yield more functionally mature cells than directed differentiation. Several studies have demonstrated the feasibility of generating of cell types such as cardiomyocytes, hepatocytes, and neurons from fibroblasts. Here, we will discuss recent advances and key challenges regarding direct reprogramming of somatic cell types into diverse neural cells. This article is part of a Special Issue entitled SI: Exploiting human neurons. Published by Elsevier B.V.

Entities:  

Keywords:  Direct conversion; Disease modeling; Induced neuron; Lineage conversion; Neurological disease; Reprogramming

Mesh:

Year:  2015        PMID: 26475975      PMCID: PMC4834061          DOI: 10.1016/j.brainres.2015.10.012

Source DB:  PubMed          Journal:  Brain Res        ISSN: 0006-8993            Impact factor:   3.252


  91 in total

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Authors:  Robert Krencik; Su-Chun Zhang
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Review 2.  Direct reprogramming of adult somatic cells into other lineages: past evidence and future perspectives.

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Journal:  Cell Transplant       Date:  2012-10-03       Impact factor: 4.064

3.  Immunogenicity of induced pluripotent stem cells.

Authors:  Tongbiao Zhao; Zhen-Ning Zhang; Zhili Rong; Yang Xu
Journal:  Nature       Date:  2011-05-13       Impact factor: 49.962

4.  Direct neural conversion from human fibroblasts using self-regulating and nonintegrating viral vectors.

Authors:  Shong Lau; Daniella Rylander Ottosson; Johan Jakobsson; Malin Parmar
Journal:  Cell Rep       Date:  2014-12-04       Impact factor: 9.423

5.  In vivo direct reprogramming of reactive glial cells into functional neurons after brain injury and in an Alzheimer's disease model.

Authors:  Ziyuan Guo; Lei Zhang; Zheng Wu; Yuchen Chen; Fan Wang; Gong Chen
Journal:  Cell Stem Cell       Date:  2013-12-19       Impact factor: 24.633

6.  Functional properties of neurons derived from in vitro reprogrammed postnatal astroglia.

Authors:  Benedikt Berninger; Marcos R Costa; Ursula Koch; Timm Schroeder; Bernd Sutor; Benedikt Grothe; Magdalena Götz
Journal:  J Neurosci       Date:  2007-08-08       Impact factor: 6.167

7.  Ectopic expression of neurogenin 2 alone is sufficient to induce differentiation of embryonic stem cells into mature neurons.

Authors:  Eva C Thoma; Erhard Wischmeyer; Nils Offen; Katja Maurus; Anna-Leena Sirén; Manfred Schartl; Toni U Wagner
Journal:  PLoS One       Date:  2012-06-13       Impact factor: 3.240

8.  Dissecting engineered cell types and enhancing cell fate conversion via CellNet.

Authors:  Samantha A Morris; Patrick Cahan; Hu Li; Anna M Zhao; Adrianna K San Roman; Ramesh A Shivdasani; James J Collins; George Q Daley
Journal:  Cell       Date:  2014-08-14       Impact factor: 41.582

9.  CellNet: network biology applied to stem cell engineering.

Authors:  Patrick Cahan; Hu Li; Samantha A Morris; Edroaldo Lummertz da Rocha; George Q Daley; James J Collins
Journal:  Cell       Date:  2014-08-14       Impact factor: 41.582

10.  Probing sporadic and familial Alzheimer's disease using induced pluripotent stem cells.

Authors:  Mason A Israel; Shauna H Yuan; Cedric Bardy; Sol M Reyna; Yangling Mu; Cheryl Herrera; Michael P Hefferan; Sebastiaan Van Gorp; Kristopher L Nazor; Francesca S Boscolo; Christian T Carson; Louise C Laurent; Martin Marsala; Fred H Gage; Anne M Remes; Edward H Koo; Lawrence S B Goldstein
Journal:  Nature       Date:  2012-01-25       Impact factor: 49.962

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  9 in total

1.  Generation of inner ear hair cells by direct lineage conversion of primary somatic cells.

Authors:  Louise Menendez; Talon Trecek; Suhasni Gopalakrishnan; Litao Tao; Alexander L Markowitz; Haoze V Yu; Xizi Wang; Juan Llamas; Chichou Huang; James Lee; Radha Kalluri; Justin Ichida; Neil Segil
Journal:  Elife       Date:  2020-06-30       Impact factor: 8.140

2.  Comparative genomic analysis of embryonic, lineage-converted and stem cell-derived motor neurons.

Authors:  Justin K Ichida; Kim A Staats; Brandi N Davis-Dusenbery; Kendell Clement; Kate E Galloway; Kimberly N Babos; Yingxiao Shi; Esther Y Son; Evangelos Kiskinis; Nicholas Atwater; Hongcang Gu; Andreas Gnirke; Alexander Meissner; Kevin Eggan
Journal:  Development       Date:  2018-11-21       Impact factor: 6.868

Review 3.  Current Advances and Limitations in Modeling ALS/FTD in a Dish Using Induced Pluripotent Stem Cells.

Authors:  Wenting Guo; Laura Fumagalli; Robert Prior; Ludo Van Den Bosch
Journal:  Front Neurosci       Date:  2017-12-13       Impact factor: 4.677

4.  Network Reconstruction Reveals that Valproic Acid Activates Neurogenic Transcriptional Programs in Adult Brain Following Traumatic Injury.

Authors:  Gerald A Higgins; Patrick Georgoff; Vahagn Nikolian; Ari Allyn-Feuer; Brian Pauls; Richard Higgins; Brian D Athey; Hasan E Alam
Journal:  Pharm Res       Date:  2017-03-07       Impact factor: 4.200

5.  Reprogramming of mouse fibroblasts into neural lineage cells using biomaterials.

Authors:  Fahsai Kantawong; Chanidapa Saksiriwisitkul; Chanakan Riyapa; Suchalinee Limpakdee; Phenphichar Wanachantararak; Thasaneeya Kuboki
Journal:  Bioimpacts       Date:  2018-01-10

6.  Expanding the Boundaries of RNA Sequencing as a Diagnostic Tool for Rare Mendelian Disease.

Authors:  Hernan D Gonorazky; Sergey Naumenko; Arun K Ramani; Viswateja Nelakuditi; Pouria Mashouri; Peiqui Wang; Dennis Kao; Krish Ohri; Senthuri Viththiyapaskaran; Mark A Tarnopolsky; Katherine D Mathews; Steven A Moore; Andres N Osorio; David Villanova; Dwi U Kemaladewi; Ronald D Cohn; Michael Brudno; James J Dowling
Journal:  Am J Hum Genet       Date:  2019-02-28       Impact factor: 11.025

7.  A quantitative model of cellular decision making in direct neuronal reprogramming.

Authors:  Adriaan Merlevede; Emilie M Legault; Viktor Drugge; Roger A Barker; Janelle Drouin-Ouellet; Victor Olariu
Journal:  Sci Rep       Date:  2021-01-15       Impact factor: 4.379

Review 8.  Generation of Leydig-like cells: approaches, characterization, and challenges.

Authors:  Zhao-Hui Li; Jun-Dong Lu; Shi-Jun Li; Hao-Lin Chen; Zhi-Jian Su
Journal:  Asian J Androl       Date:  2022 Jul-Aug       Impact factor: 3.054

Review 9.  Bioprinting Neural Systems to Model Central Nervous System Diseases.

Authors:  Boning Qiu; Nils Bessler; Kianti Figler; Maj-Britt Buchholz; Anne C Rios; Jos Malda; Riccardo Levato; Massimiliano Caiazzo
Journal:  Adv Funct Mater       Date:  2020-04-22       Impact factor: 18.808

  9 in total

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