Repository of Research and Investigative Information

Repository of Research and Investigative Information

Shahid Sadoughi University of Medical Sciences

Osteogenesis of mesenchymal stem cells by nanoscale mechanotransduction

(2013) Osteogenesis of mesenchymal stem cells by nanoscale mechanotransduction. ACS Nano. pp. 2758-2767.

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Official URL: https://www.scopus.com/inward/record.uri?eid=2-s2....

Abstract

It is likely that mesenchymal stem cells will find use in many autologous regenerative therapies. However, our ability to control cell stem growth and differentiation is presently limited, and this is a major hurdle to the clinical use of these multipotent cells especially when considering the desire not to use soluble factors or complex media formulations in culture. Also, the large number of cells required to be clinically useful is currently a hurdle to using materials-based (stiffness, chemistry, nanotopography, etc.) culture substrates. Here we give a first demonstration of using nanoscale sinusoidal mechanotransductive protocols (10-14 nm displacements at 1 kHz frequency), "nanokicking", to promote osteoblastogenesis in human mesenchymal stem cell cultures. On the basis of application of the reverse piezo effect, we use interferometry to develop the optimal stem cell stimulation conditions, allowing delivery of nanoscale cues across the entire surface of the Petri dishes used. A combination of immunofluorescence, PCR, and microarray has then been used to demonstrate osteoblastogenesis, and the arrays implicate RhoA as central to osteoblastic differentiation in agreement with materials-based strategies. We validate this with pharmacological inhibition of RhoA kinase. It is easy to envisage such stimulation protocols being up-scaled to form large-scale osteoblast bioreactors as standard cell culture plates and incubators are used in the protocol. © 2013 American Chemical Society.

Item Type: Article
Keywords: Human mesenchymal stem cells; Mechanotransduction; Mesenchymal stem cell; Nano scale; Osteoblastic differentiation; Osteogenesis; Pharmacological inhibition; Stimulation protocols, Cell culture; Stem cells, Nanotechnology, Rho kinase, article; bone development; cell culture; cell differentiation; cytology; equipment; human; mechanical stress; mechanotransduction; mesenchymal stroma cell; metabolism; nanotechnology; osteoblast; physiology; signal transduction; transducer, Cell Differentiation; Cells, Cultured; Humans; Mechanotransduction, Cellular; Mesenchymal Stromal Cells; Nanotechnology; Osteoblasts; Osteogenesis; rho-Associated Kinases; Signal Transduction; Stress, Mechanical; Transducers
Page Range: pp. 2758-2767
Journal or Publication Title: ACS Nano
Volume: 7
Number: 3
Depositing User: ms soheila Bazm
URI: http://eprints.ssu.ac.ir/id/eprint/8811

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