Literature DB >> 24890974

Modulation of mesenchymal stromal cell characteristics by microcarrier culture in bioreactors.

Julia Hupfeld1, Ingo H Gorr, Christian Schwald, Nicola Beaucamp, Kornelius Wiechmann, Karin Kuentzer, Ralf Huss, Bernhard Rieger, Markus Neubauer, Heike Wegmeyer.   

Abstract

Mesenchymal stromal cells (MSCs) are promising candidates for cell therapy. Their therapeutic use requires extensive expansion to obtain a sufficiently high number of cells for clinical applications. State-of-the-art expansion systems, that is, primarily culture flask-based systems, are limited regarding scale-up, automation, and reproducibility. To overcome this bottleneck, microcarrier (MC)-based expansion processes have been developed. For the first time, MSCs from the perinatal sources umbilical cord (UC) and amniotic membrane (AM) were expanded on MCs. This study focuses on the comparison of flask- and Cytodex 1 MC-expanded MSCs by evaluating the influence of the expansion process on biological MSC characteristics. Furthermore, we tested the hypothesis to obtain more homogeneous MSC preparations by expanding cells on MCs in controlled large-scale bioreactors. MSCs were extensively characterized determining morphology, cell growth, surface marker expression, and functional properties such as differentiation capacity, secretion of paracrine factors, and gene expression. Based on their gene expression profile MSCs from different donors and sources clearly clustered in distinct groups solely depending on the expansion process-MC or flask culture. MC- and flask-expanded MSCs significantly differed from each other regarding surface markers and both paracrine factors and gene expression profiles. Furthermore, based on gene expression analysis, MC cultivation of MSCs in controlled bioreactor systems resulted in less heterogeneity between cells from different donors. In conclusion, MC-based MSC expansion in controlled bioreactors has the potential to reliably produce MSCs with altered characteristics and functions as compared to flask-expanded MSCs. These findings may be useful for the generation of MSCs with tailored properties for clinical applications.
© 2014 Wiley Periodicals, Inc.

Entities:  

Keywords:  bioreactor; dextran; gene expression; mesenchymal stromal cell; microcarrier

Mesh:

Year:  2014        PMID: 24890974     DOI: 10.1002/bit.25281

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  16 in total

Review 1.  Mesenchymal Stem Cell-derived Extracellular Vesicles: Toward Cell-free Therapeutic Applications.

Authors:  Sweta Rani; Aideen E Ryan; Matthew D Griffin; Thomas Ritter
Journal:  Mol Ther       Date:  2015-03-19       Impact factor: 11.454

Review 2.  Therapeutic potential of mesenchymal stem/stromal cell-derived secretome and vesicles for lung injury and disease.

Authors:  Airan Liu; Xiwen Zhang; Hongli He; Li Zhou; Yoshifumi Naito; Shinji Sugita; Jae-Woo Lee
Journal:  Expert Opin Biol Ther       Date:  2019-11-18       Impact factor: 4.388

Review 3.  Mesenchymal stem cell derived secretome and extracellular vesicles for acute lung injury and other inflammatory lung diseases.

Authors:  Antoine Monsel; Ying-Gang Zhu; Varun Gudapati; Hyungsun Lim; Jae W Lee
Journal:  Expert Opin Biol Ther       Date:  2016-04-12       Impact factor: 4.388

Review 4.  Regenerative Approaches for the Treatment of Large Bone Defects.

Authors:  Alexander Stahl; Yunzhi Peter Yang
Journal:  Tissue Eng Part B Rev       Date:  2020-12-03       Impact factor: 6.389

5.  Development of a novel feeding regime for large scale production of human umbilical cord mesenchymal stem/stromal cells.

Authors:  Yichen Dai; Xiaolin Cui; Ge Zhang; Ali Mohsin; Huiming Xu; Yingping Zhuang; Meijin Guo
Journal:  Cytotechnology       Date:  2022-03-10       Impact factor: 2.040

6.  Production of Mesenchymal Progenitor Cell-Derived Extracellular Vesicles in Suspension Bioreactors for Use in Articular Cartilage Repair.

Authors:  Jolene Phelps; Catherine Leonard; Sophia Shah; Roman Krawetz; David A Hart; Neil A Duncan; Arindom Sen
Journal:  Stem Cells Transl Med       Date:  2022-03-03       Impact factor: 7.655

7.  Agitation in a Microcarrier-based Spinner Flask Bioreactor Modulates Homeostasis of Human Mesenchymal Stem Cells.

Authors:  Richard Jeske; Shaquille Lewis; Ang-Chen Tsai; Kevin Sanders; Chang Liu; Xuegang Yuan; Yan Li
Journal:  Biochem Eng J       Date:  2021-01-27       Impact factor: 3.978

8.  Modulation of the Mesenchymal Stem Cell Secretome Using Computer-Controlled Bioreactors: Impact on Neuronal Cell Proliferation, Survival and Differentiation.

Authors:  Fábio G Teixeira; Krishna M Panchalingam; Rita Assunção-Silva; Sofia C Serra; Bárbara Mendes-Pinheiro; Patrícia Patrício; Sunghoon Jung; Sandra I Anjo; Bruno Manadas; Luísa Pinto; Nuno Sousa; Leo A Behie; António J Salgado
Journal:  Sci Rep       Date:  2016-06-15       Impact factor: 4.379

Review 9.  Bioprocessing strategies for the large-scale production of human mesenchymal stem cells: a review.

Authors:  Krishna M Panchalingam; Sunghoon Jung; Lawrence Rosenberg; Leo A Behie
Journal:  Stem Cell Res Ther       Date:  2015-11-23       Impact factor: 6.832

10.  Systematic microcarrier screening and agitated culture conditions improves human mesenchymal stem cell yield in bioreactors.

Authors:  Qasim A Rafiq; Karen Coopman; Alvin W Nienow; Christopher J Hewitt
Journal:  Biotechnol J       Date:  2016-02-29       Impact factor: 4.677

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