Stable, Conductive, Adhesive Polymer Patterning Inside a Microfluidic Chamber for Endothelial Cell Alignment

Author:

Mancinelli Elena12ORCID,Taccola Silvia3ORCID,Slay Ellen14ORCID,Chau Chalmers Chi Cheng124,James Nizzy5ORCID,Johnson Benjamin5,Critchley Kevin25ORCID,Harris Russell3,Pensabene Virginia126ORCID

Affiliation:

1. School of Electronic and Electrical Engineering and Pollard Institute University of Leeds Leeds LS2 9JT UK

2. Bragg Centre for Materials Research University of Leeds Leeds LS2 9JT UK

3. Future Manufacturing Processes Research Group University of Leeds Leeds LS2 9JT UK

4. School of Molecular and Cellular Biology and Astbury Centre for Structural Molecular Biology University of Leeds Leeds LS2 9JT UK

5. School of Physics and Astronomy University of Leeds Leeds LS2 9JT UK

6. Faculty of Medicine and Health Leeds Institute of Medical Research at St James' University Hospital University of Leeds Leeds LS2 9JT UK

Abstract

AbstractEndothelial cells (ECs) line the inner walls of blood vessels, respond to shear stress by elongating in the direction of flow. Engineering aligned ECs in vitro is essential for modeling human vascular diseases and for drug testing. Current microfluidic approaches mainly rely on unidirectional laminar flow, uniform coating of surfaces to improve cellular adhesion or alteration of the surface topography. Challenges persist due to shear stress‐induced changes in cellular behavior, especially in complex multicellular environments and the time needed for the cells to align and polarize inside the microfluidic conduits. Generally, protein coating processes and physical treatments are also not compatible with the steps required for the assembly of microfluidic devices. This approach employs aerosol jet printing (AJP) to precisely pattern poly(3,4‐ethylenedioxythiophene) polystyrene sulphonate (PEDOT:PSS) within microfluidic chambers in a single step. It is shown that the PEDOT:PSS is biocompatible and facilitates EC adhesion, patterning, elongation, and alignment. Under capillary flow, the cells retain their pattern‐induced morphology over 7 d, confirming the efficacy of the approach in promoting cellular organization, eliminating the need for external pumps. Furthermore, it is demonstrated that the PEDOT:PSS pattern retains structural integrity and electrical stability following oxygen plasma treatment, required for assembling of fully enclosed microfluidic devices.

Funder

Engineering and Physical Sciences Research Council

Publisher

Wiley

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