Tenocyte proliferation and migration promoted by rat bone marrow mesenchymal stem cell-derived conditioned medium. 2018

Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
Key Laboratory of Biorheological Science and Technology, College of Bioengineering, Ministry of Education, Chongqing University, Chongqing, 400044, China.

OBJECTIVE To investigate the impact of secreted factors of rat bone marrow mesenchymal stem cells (MSCs) on the proliferation and migration of tenocytes and provide evidence for the development of MSC-based therapeutic methods of tendon injury. RESULTS Rat bone marrow mesenchymal stem cell-derived conditioned medium (MSC-CM) promoted the proliferation of tenocytes within 24 h and decreased the percentage of tenocytes in G1 phase. MSC-CM activated the extracellular signal-regulated kinase1/2 (ERK1/2) signal molecules, while the ERK1/2 inhibitor PD98059 abrogated the MSC-CM-induced proliferation of tenocytes, decreased the fraction of tenocytes in the G1 phase and elevated p-ERK1/2 expression. Furthermore, MSC-CM promoted the migration of tenocytes within 6 h, enhanced the formation of filamentous actin (F-actin) and increased the cellular and nuclear stiffness of tenocytes. CONCLUSIONS MSC-CM promotes tenocyte proliferation by changing cell cycle distribution via the ERK1/2 signaling pathway. MSC-CM-induced tenocyte migration was accompanied by cytoskeletal polymerization and increases in cellular and nuclear stiffness.

UI MeSH Term Description Entries
D002465 Cell Movement The movement of cells from one location to another. Distinguish from CYTOKINESIS which is the process of dividing the CYTOPLASM of a cell. Cell Migration,Locomotion, Cell,Migration, Cell,Motility, Cell,Movement, Cell,Cell Locomotion,Cell Motility,Cell Movements,Movements, Cell
D003599 Cytoskeleton The network of filaments, tubules, and interconnecting filamentous bridges which give shape, structure, and organization to the cytoplasm. Cytoplasmic Filaments,Cytoskeletal Filaments,Microtrabecular Lattice,Cytoplasmic Filament,Cytoskeletal Filament,Cytoskeletons,Filament, Cytoplasmic,Filament, Cytoskeletal,Filaments, Cytoplasmic,Filaments, Cytoskeletal,Lattice, Microtrabecular,Lattices, Microtrabecular,Microtrabecular Lattices
D000070916 Tenocytes Elongated FIBROBLASTS and fibrocytes that lie between the collagen fibers and form the TENDON proper. Tenocyte
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D015398 Signal Transduction The intracellular transfer of information (biological activation/inhibition) through a signal pathway. In each signal transduction system, an activation/inhibition signal from a biologically active molecule (hormone, neurotransmitter) is mediated via the coupling of a receptor/enzyme to a second messenger system or to an ion channel. Signal transduction plays an important role in activating cellular functions, cell differentiation, and cell proliferation. Examples of signal transduction systems are the GAMMA-AMINOBUTYRIC ACID-postsynaptic receptor-calcium ion channel system, the receptor-mediated T-cell activation pathway, and the receptor-mediated activation of phospholipases. Those coupled to membrane depolarization or intracellular release of calcium include the receptor-mediated activation of cytotoxic functions in granulocytes and the synaptic potentiation of protein kinase activation. Some signal transduction pathways may be part of larger signal transduction pathways; for example, protein kinase activation is part of the platelet activation signal pathway. Cell Signaling,Receptor-Mediated Signal Transduction,Signal Pathways,Receptor Mediated Signal Transduction,Signal Transduction Pathways,Signal Transduction Systems,Pathway, Signal,Pathway, Signal Transduction,Pathways, Signal,Pathways, Signal Transduction,Receptor-Mediated Signal Transductions,Signal Pathway,Signal Transduction Pathway,Signal Transduction System,Signal Transduction, Receptor-Mediated,Signal Transductions,Signal Transductions, Receptor-Mediated,System, Signal Transduction,Systems, Signal Transduction,Transduction, Signal,Transductions, Signal
D017077 Culture Media, Conditioned Culture media containing biologically active components obtained from previously cultured cells or tissues that have released into the media substances affecting certain cell functions (e.g., growth, lysis). Conditioned Culture Media,Conditioned Culture Medium,Conditioned Media,Conditioned Medium,Culture Medium, Conditioned,Media, Conditioned,Medium, Conditioned
D049109 Cell Proliferation All of the processes involved in increasing CELL NUMBER including CELL DIVISION. Cell Growth in Number,Cellular Proliferation,Cell Multiplication,Cell Number Growth,Growth, Cell Number,Multiplication, Cell,Number Growth, Cell,Proliferation, Cell,Proliferation, Cellular
D051381 Rats The common name for the genus Rattus. Rattus,Rats, Laboratory,Rats, Norway,Rattus norvegicus,Laboratory Rat,Laboratory Rats,Norway Rat,Norway Rats,Rat,Rat, Laboratory,Rat, Norway,norvegicus, Rattus
D059630 Mesenchymal Stem Cells Mesenchymal stem cells, also referred to as multipotent stromal cells or mesenchymal stromal cells are multipotent, non-hematopoietic adult stem cells that are present in multiple tissues, including BONE MARROW; ADIPOSE TISSUE; and WHARTON JELLY. Mesenchymal stem cells can differentiate into mesodermal lineages, such as adipocytic, osteocytic and chondrocytic. Adipose Tissue-Derived Mesenchymal Stem Cell,Adipose Tissue-Derived Mesenchymal Stromal Cell,Adipose-Derived Mesenchymal Stem Cell,Bone Marrow Mesenchymal Stem Cell,Mesenchymal Stromal Cell,Mesenchymal Stromal Cells,Multipotent Bone Marrow Stromal Cell,Multipotent Mesenchymal Stromal Cell,Adipose Tissue-Derived Mesenchymal Stem Cells,Adipose Tissue-Derived Mesenchymal Stromal Cells,Adipose-Derived Mesenchymal Stem Cells,Adipose-Derived Mesenchymal Stromal Cells,Bone Marrow Mesenchymal Stem Cells,Bone Marrow Stromal Cell,Bone Marrow Stromal Cells,Bone Marrow Stromal Cells, Multipotent,Bone Marrow Stromal Stem Cells,Mesenchymal Progenitor Cell,Mesenchymal Progenitor Cells,Mesenchymal Stem Cell,Mesenchymal Stem Cells, Adipose-Derived,Mesenchymal Stromal Cells, Multipotent,Multipotent Bone Marrow Stromal Cells,Multipotent Mesenchymal Stromal Cells,Stem Cells, Mesenchymal,Wharton Jelly Cells,Wharton's Jelly Cells,Adipose Derived Mesenchymal Stem Cell,Adipose Derived Mesenchymal Stem Cells,Adipose Derived Mesenchymal Stromal Cells,Adipose Tissue Derived Mesenchymal Stem Cell,Adipose Tissue Derived Mesenchymal Stem Cells,Adipose Tissue Derived Mesenchymal Stromal Cell,Adipose Tissue Derived Mesenchymal Stromal Cells,Mesenchymal Stem Cells, Adipose Derived,Progenitor Cell, Mesenchymal,Progenitor Cells, Mesenchymal,Stem Cell, Mesenchymal,Stromal Cell, Mesenchymal,Stromal Cells, Mesenchymal,Wharton's Jelly Cell,Whartons Jelly Cells

Related Publications

Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
January 2013, PloS one,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
January 2024, Folia histochemica et cytobiologica,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
August 2016, Molecular medicine reports,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
January 2023, Clinics (Sao Paulo, Brazil),
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
June 2017, The journal of hand surgery Asian-Pacific volume,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
January 2013, Journal of biomaterials applications,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
May 2020, Journal of cellular physiology,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
November 2023, Alternative therapies in health and medicine,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
October 2017, Journal of tissue engineering and regenerative medicine,
Qiufang Chen, and Qingfei Liang, and Weixia Zhuang, and Jun Zhou, and Bingyu Zhang, and Pu Xu, and Yang Ju, and Yasuyuki Morita, and Qing Luo, and Guanbin Song
August 2019, Neural regeneration research,
Copied contents to your clipboard!