Literature DB >> 24190076

Analysis of αSMA-labeled progenitor cell commitment identifies notch signaling as an important pathway in fracture healing.

Brya G Matthews1, Danka Grcevic, Liping Wang, Yusuke Hagiwara, Hrvoje Roguljic, Pujan Joshi, Dong-Guk Shin, Douglas J Adams, Ivo Kalajzic.   

Abstract

Fracture healing is a regenerative process that involves coordinated responses of many cell types, but characterization of the roles of specific cell populations in this process has been limited. We have identified alpha smooth muscle actin (αSMA) as a marker of a population of mesenchymal progenitor cells in the periosteum that contributes to osteochondral elements during fracture healing. Using a lineage tracing approach, we labeled αSMA-expressing cells, and characterized changes in the periosteal population during the early stages of fracture healing by histology, flow cytometry, and gene expression profiling. In response to fracture, the αSMA-labeled population expanded and began to differentiate toward the osteogenic and chondrogenic lineages. The frequency of mesenchymal progenitor cell markers such as Sca1 and PDGFRα increased after fracture. By 6 days after fracture, genes involved in matrix production and remodeling were elevated. In contrast, genes associated with muscle contraction and Notch signaling were downregulated after fracture. We confirmed that activating Notch signaling in αSMA-labeled cells inhibited differentiation into osteogenic and adipogenic lineages in vitro and ectopic bone formation in vivo. By characterizing changes in a selected αSMA-labeled progenitor cell population during fracture callus formation, we have shown that modulation of Notch signaling may determine osteogenic potential of αSMA-expressing progenitor cells during bone healing.
© 2014 American Society for Bone and Mineral Research.

Entities:  

Keywords:  ALPHA SMOOTH MUSCLE ACTIN; FRACTURE HEALING; LINEAGE TRACING; NOTCH SIGNALING; PERIOSTEUM

Mesh:

Substances:

Year:  2014        PMID: 24190076      PMCID: PMC4864015          DOI: 10.1002/jbmr.2140

Source DB:  PubMed          Journal:  J Bone Miner Res        ISSN: 0884-0431            Impact factor:   6.741


  57 in total

1.  Effective bone engineering with periosteum-derived cells.

Authors:  H Agata; I Asahina; Y Yamazaki; M Uchida; Y Shinohara; M J Honda; H Kagami; M Ueda
Journal:  J Dent Res       Date:  2007-01       Impact factor: 6.116

2.  Dimorphic effects of Notch signaling in bone homeostasis.

Authors:  Feyza Engin; Zhenqiang Yao; Tao Yang; Guang Zhou; Terry Bertin; Ming Ming Jiang; Yuqing Chen; Lisa Wang; Hui Zheng; Richard E Sutton; Brendan F Boyce; Brendan Lee
Journal:  Nat Med       Date:  2008-02-24       Impact factor: 53.440

3.  Use of an alpha-smooth muscle actin GFP reporter to identify an osteoprogenitor population.

Authors:  Zana Kalajzic; Haitao Li; Li-Ping Wang; Xi Jiang; Katie Lamothe; Douglas J Adams; Hector L Aguila; David W Rowe; Ivo Kalajzic
Journal:  Bone       Date:  2008-05-10       Impact factor: 4.398

4.  Osteal macrophages promote in vivo intramembranous bone healing in a mouse tibial injury model.

Authors:  Kylie A Alexander; Ming K Chang; Erin R Maylin; Thomas Kohler; Ralph Müller; Andy C Wu; Nico Van Rooijen; Matthew J Sweet; David A Hume; Liza J Raggatt; Allison R Pettit
Journal:  J Bone Miner Res       Date:  2011-07       Impact factor: 6.741

5.  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

6.  Comparison of human stem cells derived from various mesenchymal tissues: superiority of synovium as a cell source.

Authors:  Yusuke Sakaguchi; Ichiro Sekiya; Kazuyoshi Yagishita; Takeshi Muneta
Journal:  Arthritis Rheum       Date:  2005-08

7.  Gene expression during fracture healing in rats comparing intramedullary fixation to plate fixation by DNA microarray.

Authors:  Daniel E Heiner; Martha H Meyer; Steven L Frick; James F Kellam; James Fiechtl; Ralph A Meyer
Journal:  J Orthop Trauma       Date:  2006-01       Impact factor: 2.512

8.  Endothelial and perivascular cells maintain haematopoietic stem cells.

Authors:  Lei Ding; Thomas L Saunders; Grigori Enikolopov; Sean J Morrison
Journal:  Nature       Date:  2012-01-25       Impact factor: 49.962

9.  Myogenic progenitors contribute to open but not closed fracture repair.

Authors:  Renjing Liu; Oliver Birke; Alyson Morse; Lauren Peacock; Kathy Mikulec; David G Little; Aaron Schindeler
Journal:  BMC Musculoskelet Disord       Date:  2011-12-22       Impact factor: 2.362

10.  Involvement of notch signaling in wound healing.

Authors:  Srinivasulu Chigurupati; Thiruma V Arumugam; Tae Gen Son; Justin D Lathia; Shafaq Jameel; Mohamed R Mughal; Sung-Chun Tang; Dong-Gyu Jo; Simonetta Camandola; Marialuisa Giunta; Irina Rakova; Nazli McDonnell; Lucio Miele; Mark P Mattson; Suresh Poosala
Journal:  PLoS One       Date:  2007-11-14       Impact factor: 3.240

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  67 in total

1.  Osteogenic potential of alpha smooth muscle actin expressing muscle resident progenitor cells.

Authors:  Brya G Matthews; Elena Torreggiani; Emilie Roeder; Igor Matic; Danka Grcevic; Ivo Kalajzic
Journal:  Bone       Date:  2015-12-22       Impact factor: 4.398

Review 2.  Bone repair and stem cells.

Authors:  Noriaki Ono; Henry M Kronenberg
Journal:  Curr Opin Genet Dev       Date:  2016-07-09       Impact factor: 5.578

Review 3.  Overview of biological mechanisms and applications of three murine models of bone repair: closed fracture with intramedullary fixation, distraction osteogenesis, and marrow ablation by reaming.

Authors:  Beth Bragdon; Kyle Lybrand; Louis Gerstenfeld
Journal:  Curr Protoc Mouse Biol       Date:  2015-03-02

4.  Amplifying Bone Marrow Progenitors Expressing α-Smooth Muscle Actin Produce Zonal Insertion Sites During Tendon-to-Bone Repair.

Authors:  Timur B Kamalitdinov; Keitaro Fujino; Snehal S Shetye; Xi Jiang; Yaping Ye; Ashley B Rodriguez; Andrew F Kuntz; Miltiadis H Zgonis; Nathaniel A Dyment
Journal:  J Orthop Res       Date:  2019-07-11       Impact factor: 3.494

Review 5.  The convergence of fracture repair and stem cells: interplay of genes, aging, environmental factors and disease.

Authors:  Michael Hadjiargyrou; Regis J O'Keefe
Journal:  J Bone Miner Res       Date:  2014-11       Impact factor: 6.741

Review 6.  Contextual Regulation of Skeletal Physiology by Notch Signaling.

Authors:  Daniel W Youngstrom; Kurt D Hankenson
Journal:  Curr Osteoporos Rep       Date:  2019-08       Impact factor: 5.096

7.  Role of Prx1-expressing skeletal cells and Prx1-expression in fracture repair.

Authors:  Alessandra Esposito; Lai Wang; Tieshi Li; Mariana Miranda; Anna Spagnoli
Journal:  Bone       Date:  2020-07-03       Impact factor: 4.398

8.  Regenerative biology of tendon: mechanisms for renewal and repair.

Authors:  Nathaniel A Dyment; Jenna L Galloway
Journal:  Curr Mol Biol Rep       Date:  2015-09

9.  YAP and TAZ Promote Periosteal Osteoblast Precursor Expansion and Differentiation for Fracture Repair.

Authors:  Christopher D Kegelman; Madhura P Nijsure; Yasaman Moharrer; Hope B Pearson; James H Dawahare; Kelsey M Jordan; Ling Qin; Joel D Boerckel
Journal:  J Bone Miner Res       Date:  2020-10-07       Impact factor: 6.741

10.  NOTCH signaling in skeletal progenitors is critical for fracture repair.

Authors:  Cuicui Wang; Jason A Inzana; Anthony J Mirando; Yinshi Ren; Zhaoyang Liu; Jie Shen; Regis J O'Keefe; Hani A Awad; Matthew J Hilton
Journal:  J Clin Invest       Date:  2016-03-07       Impact factor: 14.808

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