Title :
Cell Interactions at the Nanoscale: Piezoelectric Stimulation
Author :
Curtis, Adam S. G. ; Reid, Shawn ; Martin, I. ; Vaidyanathan, Ramachandran ; Smith, Carol-Anne ; Nikukar, Habib ; Dalby, Matthew J.
Author_Institution :
Centre for Cell Eng., Univ. of Glasgow, Glasgow, UK
Abstract :
Nanometric movements of the substrate on which endothelial cells are growing, driven by periodic sinusoidal vibration from 1 Hz to 50 Hz applied by piezo actuators, upregulate endothelin-1 and Kruppel-like factor 2 expression, and increase cell adhesion. These movements are in the z (vertical) axis and ranges from 5 to 50 nm and are similar in vertical extent to protrusions from the cells themselves already reported in the literature. White noise vibrations do not to produce these effects. Vibrational sweeps, if suitably confined within a narrow frequency range, produce similar stimulatory effects but not at wider sweeps. These effects suggest that coherent vibration is crucial for driving these cellular responses. In addition to this, the applied stimulations are observed to be close to or below the random seismic noise of the surroundings, which may suggest stochastic resonance is being employed. The stimulations also interact with the effects of nanometric patterning of the substrates on cell adhesion and Kruppel-like factor 2 and endothelin-1 expression thus linking cell reactions to nanotopographically patterned surfaces with those to mechanical stimulation.
Keywords :
adhesion; bioelectric potentials; biomechanics; cellular biophysics; molecular biophysics; nanobiotechnology; nanopatterning; piezoelectric actuators; piezoelectricity; proteins; stochastic processes; substrates; vibrations; white noise; Kruppel-like factor 2 expression; cell adhesion; cellular response; coherent vibration; endothelial cell growth; endothelin-1 expression; frequency 1 Hz to 50 Hz; mechanical stimulation; nanometric movement; nanometric patterning; nanoscale cell interactions; nanotopographically patterned surfaces; narrow frequency range; periodic sinusoidal vibration; piezoactuators; piezoelectric stimulation; random seismic noise; size 5 nm to 50 nm; stochastic resonance; substrate; vibrational sweeps; white noise vibrations; Cell adhesion; endothelial cd 133+ cells; gene expression; nanoscale mechanical stimulation; stochastic resonance; Animals; Cell Adhesion; Cell Line; Electric Stimulation; Endothelin-1; Kruppel-Like Transcription Factors; Mice; NF-kappa B; Nanostructures; Nanotechnology; Transducers;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2013.2257837