Literature DB >> 25411477

Bone marrow regeneration promoted by biophysically sorted osteoprogenitors from mesenchymal stromal cells.

Zhiyong Poon1, Wong Cheng Lee1, Guofeng Guan1, Lin Myint Nyan1, Chwee Teck Lim1, Jongyoon Han1, Krystyn J Van Vliet2.   

Abstract

Human tissue repair deficiencies can be supplemented through strategies to isolate, expand in vitro, and reimplant regenerative cells that supplant damaged cells or stimulate endogenous repair mechanisms. Bone marrow-derived mesenchymal stromal cells (MSCs), a subset of which is described as mesenchymal stem cells, are leading candidates for cell-mediated bone repair and wound healing, with hundreds of ongoing clinical trials worldwide. An outstanding key challenge for successful clinical translation of MSCs is the capacity to produce large quantities of cells in vitro with uniform and relevant therapeutic properties. By leveraging biophysical traits of MSC subpopulations and label-free microfluidic cell sorting, we hypothesized and experimentally verified that MSCs of large diameter within expanded MSC cultures were osteoprogenitors that exhibited significantly greater efficacy over other MSC subpopulations in bone marrow repair. Systemic administration of osteoprogenitor MSCs significantly improved survival rates (>80%) as compared with other MSC subpopulations (0%) for preclinical murine bone marrow injury models. Osteoprogenitor MSCs also exerted potent therapeutic effects as "cell factories" that secreted high levels of regenerative factors such as interleukin-6 (IL-6), interleukin-8 (IL-8), vascular endothelial growth factor A, bone morphogenetic protein 2, epidermal growth factor, fibroblast growth factor 1, and angiopoietin-1; this resulted in increased cell proliferation, vessel formation, and reduced apoptosis in bone marrow. This MSC subpopulation mediated rescue of damaged marrow tissue via restoration of the hematopoiesis-supporting stroma, as well as subsequent hematopoiesis. Together, the capabilities described herein for label-freeisolation of regenerative osteoprogenitor MSCs can markedly improve the efficacy of MSC-based therapies. ©AlphaMed Press.

Entities:  

Keywords:  Adult stem cells; Bone marrow; Mesenchymal stem cells; Tissue regeneration

Mesh:

Year:  2014        PMID: 25411477      PMCID: PMC4275011          DOI: 10.5966/sctm.2014-0154

Source DB:  PubMed          Journal:  Stem Cells Transl Med        ISSN: 2157-6564            Impact factor:   6.940


  40 in total

1.  The promotion of chondrogenesis, osteogenesis, and adipogenesis of human mesenchymal stem cells by multiple growth factors incorporated into nanosphere-coated microspheres.

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Journal:  Biomaterials       Date:  2010-09-28       Impact factor: 12.479

2.  The myelopoietic supportive capacity of mesenchymal stromal cells is uncoupled from multipotency and is influenced by lineage determination and interference with glycosylation.

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Journal:  Stem Cells       Date:  2008-06-12       Impact factor: 6.277

3.  Endogenous bone marrow MSCs are dynamic, fate-restricted participants in bone maintenance and regeneration.

Authors:  Dongsu Park; Joel A Spencer; Bong Ihn Koh; Tatsuya Kobayashi; Joji Fujisaki; Thomas L Clemens; Charles P Lin; Henry M Kronenberg; David T Scadden
Journal:  Cell Stem Cell       Date:  2012-03-02       Impact factor: 24.633

Review 4.  Harnessing the mesenchymal stem cell secretome for the treatment of cardiovascular disease.

Authors:  Sudhir H Ranganath; Oren Levy; Maneesha S Inamdar; Jeffrey M Karp
Journal:  Cell Stem Cell       Date:  2012-03-02       Impact factor: 24.633

5.  Osteoblasts promote engraftment of allogeneic hematopoietic stem cells.

Authors:  N S El-Badri; B Y Wang; R A Good
Journal:  Exp Hematol       Date:  1998-02       Impact factor: 3.084

6.  CXCL12 in early mesenchymal progenitors is required for haematopoietic stem-cell maintenance.

Authors:  Adam Greenbaum; Yen-Michael S Hsu; Ryan B Day; Laura G Schuettpelz; Matthew J Christopher; Joshua N Borgerding; Takashi Nagasawa; Daniel C Link
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7.  Human stromal (mesenchymal) stem cells from bone marrow, adipose tissue and skin exhibit differences in molecular phenotype and differentiation potential.

Authors:  May Al-Nbaheen; Radhakrishnan Vishnubalaji; Dalia Ali; Amel Bouslimi; Fawzi Al-Jassir; Matthias Megges; Alessandro Prigione; James Adjaye; Moustapha Kassem; Abdullah Aldahmash
Journal:  Stem Cell Rev Rep       Date:  2013-02       Impact factor: 5.739

8.  Characterization of spontaneous bone marrow recovery after sublethal total body irradiation: importance of the osteoblastic/adipocytic balance.

Authors:  Géraldine Poncin; Aurore Beaulieu; Chantal Humblet; Albert Thiry; Kimimitsu Oda; Jacques Boniver; Marie-Paule Defresne
Journal:  PLoS One       Date:  2012-02-17       Impact factor: 3.240

Review 9.  Mesenchymal stromal cells. Biology of adult mesenchymal stem cells: regulation of niche, self-renewal and differentiation.

Authors:  Catherine M Kolf; Elizabeth Cho; Rocky S Tuan
Journal:  Arthritis Res Ther       Date:  2007       Impact factor: 5.156

10.  Spiral microchannel with rectangular and trapezoidal cross-sections for size based particle separation.

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Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

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  13 in total

1.  Quality of Cartilage Repair from Marrow Stimulation Correlates with Cell Number, Clonogenic, Chondrogenic, and Matrix Production Potential of Underlying Bone Marrow Stromal Cells in a Rabbit Model.

Authors:  Garima Dwivedi; Anik Chevrier; Mohamad-Gabriel Alameh; Caroline D Hoemann; Michael D Buschmann
Journal:  Cartilage       Date:  2018-12-20       Impact factor: 4.634

Review 2.  Crosstalk between Stem and Progenitor Cellular Mediators with Special Emphasis on Vasculogenesis.

Authors:  Rokhsareh Rohban; Barbara Prietl; Thomas R Pieber
Journal:  Transfus Med Hemother       Date:  2017-06-06       Impact factor: 3.747

3.  Adaptation of a Simple Microfluidic Platform for High-Dimensional Quantitative Morphological Analysis of Human Mesenchymal Stromal Cells on Polystyrene-Based Substrates.

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Journal:  SLAS Technol       Date:  2017-08-21       Impact factor: 3.047

Review 4.  Surface acoustic wave (SAW) techniques in tissue engineering.

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5.  Functional heterogeneity of IFN-γ-licensed mesenchymal stromal cell immunosuppressive capacity on biomaterials.

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6.  Assessment of Enrichment of Human Mesenchymal Stem Cells Based on Plasma and Mitochondrial Membrane Potentials.

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7.  Microfluidic Cell Retention Device for Perfusion of Mammalian Suspension Culture.

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Journal:  Sci Rep       Date:  2017-07-27       Impact factor: 4.379

8.  Size and dielectric properties of skeletal stem cells change critically after enrichment and expansion from human bone marrow: consequences for microfluidic cell sorting.

Authors:  Miguel Xavier; María C de Andrés; Daniel Spencer; Richard O C Oreffo; Hywel Morgan
Journal:  J R Soc Interface       Date:  2017-08       Impact factor: 4.118

9.  Purifying stem cell-derived red blood cells: a high-throughput label-free downstream processing strategy based on microfluidic spiral inertial separation and membrane filtration.

Authors:  Ewa Guzniczak; Oliver Otto; Graeme Whyte; Tamir Chandra; Neil A Robertson; Nik Willoughby; Melanie Jimenez; Helen Bridle
Journal:  Biotechnol Bioeng       Date:  2020-03-15       Impact factor: 4.530

10.  Cell heterogeneity, rather than the cell storage solution, affects the behavior of mesenchymal stem cells in vitro and in vivo.

Authors:  Yong-Hong Wang; Ya-Chao Tao; Dong-Bo Wu; Meng-Lan Wang; Hong Tang; En-Qiang Chen
Journal:  Stem Cell Res Ther       Date:  2021-07-13       Impact factor: 6.832

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