4.7 Article

Tilted mammalian cell colony propagation dynamics on patterned substrates

期刊

CHAOS SOLITONS & FRACTALS
卷 146, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chaos.2021.110841

关键词

Patterned substrate; Biological interface; Tilted interfaces; A549 cells; Colony dynamics; Surface roughness; Universality classes; Non-linear contribution

资金

  1. Consejo Nacional de Investigaciones Cientificas y Tecnicas (CONICET, Argentina) [PIP 0602]
  2. Agencia Nacional de Promocion Cientifica y Tecnologica (ANPCyT, Argentina) [PICT-163/08, PICT-2010-2554, PICT-20130905]
  3. Austrian Institute of Technology GmbH (AIT-CONICET Partner Group: Exploratory Research for Advanced Technologies in Supramolecular Materials Science) [4947/11, 3911]
  4. Universidad Nacional de La Plata (UNLP)
  5. Spanish Ministry of Economics [MAT201788752-R2017]

向作者/读者索取更多资源

The study showed that the flux of cells at the cell colony border region is controlled by ridge-patterned substrates, and the cell colony displacement velocity is influenced by the orientation of the ridges with respect to the colony contour. Adjusting the tilt angle s can alter the morphological characteristics and velocity of the cell colony front.
The flux of cells at the cell colony border region is expected to be controlled by ridge-patterned substrates, and the cell colony displacement velocity influenced by the orientation of the ridges with respect to the colony contour. In this work patterns with regularly separated ridges are employed to fabricate tilted initially quasi-linear colony fronts with different tilt angles s . For ridges with periods in the 3.3 - 5.2 mu m range, the morphological characteristics of the colony pattern, individual cell displacement velocities and the flux of cells at the cell colony border region depend on s . The increase in the average cell colony front displacement velocity obtained by varying the slope of the tilted front by changing s in the range 0 < s < 65 degrees shows a behaviour consistent with the standard KPZ equation, pointing to the key role of the non-linear term in the spreading of cell colonies. Furthermore, the coefficients associated with the KPZ equation are estimated from experimental data and used in the numerical integration of the equation for reproducing experimental results. This work can contribute the mechanistic basis to the design of strategies to enhance or prevent cell colonization. (c) 2021 Elsevier Ltd. All rights reserved.

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