Optimising aerosol jet printing of collagen inks for enhanced piezoelectricity and controlled surface potential

Author:

Nair MalavikaORCID,Inwald Ella,Ives LiamORCID,See Kirsten R M,Kar-Narayan SohiniORCID

Abstract

Abstract Collagen is a highly versatile protein used in tissue engineering constructs and as a model piezoelectric biomaterial. The piezoelectricity of collagen can be enhanced through the alignment of collagen domains and fibres, although most fabrication techniques used to form dense collagenous constructs do not allow for significant collagen alignment. The use of aerosol jet printing (AJP) mitigates the limitations of using soluble collagen inks for bioprinting or extrusion-based 3D printing, particularly if microfibrillar collagen suspensions are used as a cost-effective and scalable ink source. In this work, Type I and Type II microfibrillar collagen from different anatomical sources were successfully deposited using AJP with two different atomisation methods, namely pneumatic-AJP (p-AJP) and ultrasonic-AJP (u-AJP). The printing parameters were optimised for their piezoelectric amplitude and surface potential. Fourier transform infrared spectra of the films revealed that ultrasonic atomisation did not cause notable denaturation of collagen, although the process resulted in the fractionation and preferential deposition of the oligomeric and gelatinous components within the slurry. The printed collagen samples displayed a piezoelectric response that was four times higher than the values obtained from drop-cast collagen films, and their surface potential was found to be positively correlated to the roughness of the films which can be controlled through the mode of atomisation. These results indicate the ability to enhance and control the piezoelectricity and surface potential using p-AJP and u-AJP, which offers a promising physical modulation technique to tailor cell adhesion, proliferation or differentiation for collagen-based tissue engineering constructs.

Funder

Royal Society of Chemistry

Peter and Carol Thrower Fund

EPSRC Doctoral Training Partnership

EPSRC Centre of Advanced Materials for Integrated Systems

Emmanuel College Research Fellowship

H2020 European Research Council

Publisher

IOP Publishing

Subject

Condensed Matter Physics,General Materials Science,Atomic and Molecular Physics, and Optics

Reference55 articles.

1. Natural polymer-based hydrogels as scaffolds for tissue engineering;Singh,2016

2. Hierarchical structure and nanomechanics of collagen microfibrils from the atomistic scale up;Gautieri;Nano Lett.,2011

3. The collagens of articular cartilage;Eyre,1991

4. Piezoelectric effects in collagen;Fukada;Jpn. J. Appl. Phys.,1964

5. Piezoelectric tensor of collagen fibrils determined at the nanoscale;Denning;ACS Biomater. Sci. Eng.,2017

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