Literature DB >> 21168910

The maintenance of pluripotency following laser direct-write of mouse embryonic stem cells.

Nurazhani Abdul Raof1, Nathan R Schiele, Yubing Xie, Douglas B Chrisey, David T Corr.   

Abstract

The ability to precisely pattern embryonic stem (ES) cells in vitro into predefined arrays/geometries may allow for the recreation of a stem cell niche for better understanding of how cellular microenvironmental factors govern stem cell maintenance and differentiation. In this study, a new gelatin-based laser direct-write (LDW) technique was utilized to deposit mouse ES cells into defined arrays of spots, while maintaining stem cell pluripotency. Results obtained from these studies showed that ES cells were successfully printed into specific patterns and remained viable. Furthermore, ES cells retained the expression of Oct4 in nuclei after LDW, indicating that the laser energy did not affect their maintenance of an undifferentiated state. The differentiation potential of mouse ES cells after LDW was confirmed by their ability to form embryoid bodies (EBs) and to spontaneously become cell lineages representing all three germ layers, revealed by the expression of marker proteins of nestin (ectoderm), Myf-5 (mesoderm) and PDX-1 (endoderm), after 7 days of cultivation. Gelatin-based LDW provides a new avenue for stem cell patterning, with precision and control of the cellular microenvironment.
Copyright © 2010 Elsevier Ltd. All rights reserved.

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Year:  2010        PMID: 21168910      PMCID: PMC3021635          DOI: 10.1016/j.biomaterials.2010.11.015

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  67 in total

1.  Patterned deposition of cells and proteins onto surfaces by using three-dimensional microfluidic systems.

Authors:  D T Chiu; N L Jeon; S Huang; R S Kane; C J Wargo; I S Choi; D E Ingber; G M Whitesides
Journal:  Proc Natl Acad Sci U S A       Date:  2000-03-14       Impact factor: 11.205

2.  Laser-guided direct writing of living cells.

Authors:  D J Odde; M J Renn
Journal:  Biotechnol Bioeng       Date:  2000-02-05       Impact factor: 4.530

3.  Cell and organ printing 1: protein and cell printers.

Authors:  W Cris Wilson; Thomas Boland
Journal:  Anat Rec A Discov Mol Cell Evol Biol       Date:  2003-06

Review 4.  Biomaterials approach to expand and direct differentiation of stem cells.

Authors:  Chou Chai; Kam W Leong
Journal:  Mol Ther       Date:  2007-01-30       Impact factor: 11.454

Review 5.  Engineering the stem cell microenvironment.

Authors:  Christian M Metallo; Jeffrey C Mohr; Christopher J Detzel; Juan J de Pablo; Bernard J Van Wie; Sean P Palecek
Journal:  Biotechnol Prog       Date:  2007 Jan-Feb

6.  Stem cells and drug discovery: the beginning of a new era?

Authors:  Lee L Rubin
Journal:  Cell       Date:  2008-02-22       Impact factor: 41.582

7.  Assembly of three-dimensional polymeric constructs containing cells/biomolecules using carbon dioxide.

Authors:  Yong Yang; Yubing Xie; Xihai Kang; L James Lee; Douglas A Kniss
Journal:  J Am Chem Soc       Date:  2006-11-01       Impact factor: 15.419

8.  Germ-line transmission of genes introduced into cultured pluripotential cells by retroviral vector.

Authors:  E Robertson; A Bradley; M Kuehn; M Evans
Journal:  Nature       Date:  1986 Oct 2-8       Impact factor: 49.962

Review 9.  Designing materials to direct stem-cell fate.

Authors:  Matthias P Lutolf; Penney M Gilbert; Helen M Blau
Journal:  Nature       Date:  2009-11-26       Impact factor: 49.962

10.  Human adult marrow cells support prolonged expansion of human embryonic stem cells in culture.

Authors:  Linzhao Cheng; Holly Hammond; Zhaohui Ye; Xiangcan Zhan; Gautam Dravid
Journal:  Stem Cells       Date:  2003       Impact factor: 6.277

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  14 in total

1.  In Vitro Microscale Models for Embryogenesis.

Authors:  Jennifer Rico-Varela; Dominic Ho; Leo Q Wan
Journal:  Adv Biosyst       Date:  2018-05-07

2.  Laser printing of three-dimensional multicellular arrays for studies of cell-cell and cell-environment interactions.

Authors:  Martin Gruene; Michael Pflaum; Christian Hess; Stefanos Diamantouros; Sabrina Schlie; Andrea Deiwick; Lothar Koch; Mathias Wilhelmi; Stefan Jockenhoevel; Axel Haverich; Boris Chichkov
Journal:  Tissue Eng Part C Methods       Date:  2011-06-29       Impact factor: 3.056

3.  Laser-based 3D bioprinting for spatial and size control of tumor spheroids and embryoid bodies.

Authors:  David M Kingsley; Cassandra L Roberge; Alena Rudkouskaya; Denzel E Faulkner; Margarida Barroso; Xavier Intes; David T Corr
Journal:  Acta Biomater       Date:  2019-02-15       Impact factor: 8.947

4.  Biomimetic three-dimensional microenvironment for controlling stem cell fate.

Authors:  Hu Zhang; Sheng Dai; Jingxiu Bi; Kuo-Kang Liu
Journal:  Interface Focus       Date:  2011-07-27       Impact factor: 3.906

Review 5.  3D bioprinting of vascular conduits for pediatric congenital heart repairs.

Authors:  Wenhan Lee; Yi Hong; Guohao Dai
Journal:  Transl Res       Date:  2019-04-11       Impact factor: 7.012

6.  Single-step laser-based fabrication and patterning of cell-encapsulated alginate microbeads.

Authors:  D M Kingsley; A D Dias; D B Chrisey; D T Corr
Journal:  Biofabrication       Date:  2013-11-06       Impact factor: 9.954

Review 7.  Bioprinting for stem cell research.

Authors:  Savas Tasoglu; Utkan Demirci
Journal:  Trends Biotechnol       Date:  2012-12-19       Impact factor: 19.536

8.  Generating size-controlled embryoid bodies using laser direct-write.

Authors:  A D Dias; A M Unser; Y Xie; D B Chrisey; D T Corr
Journal:  Biofabrication       Date:  2014-04-03       Impact factor: 9.954

Review 9.  Bioengineering platforms for cell therapeutics derived from pluripotent and direct reprogramming.

Authors:  Yoonhee Jin; Seung-Woo Cho
Journal:  APL Bioeng       Date:  2021-07-06

10.  Three-Dimensional Stem Cell Bioprinting.

Authors:  Joshuah Gagan; Carolyn Fraze; David A Stout
Journal:  Cell Stem Cells Regen Med       Date:  2016-05-12
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