Self-renewal of embryonic stem cells through culture on nanopattern polydimethylsiloxane substrate.

Biomaterials

Department of Animal Biotechnology (BK21), Animal Resources Research Center and SMART-IABS, Konkuk University, Seoul 143-702, Republic of Korea.

Published: July 2012

AI Article Synopsis

  • Embryonic stem (ES) cells are vital for regenerative medicine due to their ability to proliferate and differentiate into various cell types, but current maintenance techniques often lead to mixed cell populations.
  • Research shows that using nanopatterned polydimethylsiloxane (PDMS) as a culture substrate significantly enhances the self-renewal of mouse ES (mES) cells compared to traditional plastic dishes, preventing unwanted differentiation.
  • The study identifies that nanopattern PDMS boosts key signaling pathways like STAT3 and Akt, which are crucial for self-renewal, while also inhibiting processes that lead to differentiation, showcasing its potential in producing consistent, undifferentiated mES cells at scale.

Article Abstract

Embryonic stem (ES) cells can undergo continual proliferation and differentiation into cells of all somatic cell lineages in vitro; they are an unlimited cell source for regenerative medicine. However, techniques for maintaining undifferentiated ES cells are often inefficient and result in heterogeneous cell populations. Here, we determined effects of nanopattern polydimethylsiloxane (PDMS) as a culture substrate in promoting the self-renewal of mouse ES (mES) cells, compared to commercial plastic culture dishes. After many passages, mES cells efficiently maintained their undifferentiated state on nanopattern PDMS, but randomly differentiated on commercial plastic culture dishes, as indicated by partially altered morphologies and decreases in alkaline phosphatase activity and stage-specific expression of embryonic antigen-1. Under nanopattern PDMS conditions, we found increased activities of STAT3 and Akt, important proteins involved in maintaining the self-renewal of mES cells. The substrate-cell interactions also enhanced leukemia inhibitory factor (LIF)-downstream signaling and inhibited spontaneous differentiation, concomitant with reduced focal adhesion kinase (FAK) signaling. This reduction in FAK signaling was shown to be important for promoting mES cell self-renewal. Thus, our data demonstrates that nanopattern PDMS contributes to maintaining the self-renewal of mES cells and may be applicable in the large-scale production of homogeneously undifferentiated mES cells.

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Source
http://dx.doi.org/10.1016/j.biomaterials.2012.04.011DOI Listing

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