Engineering 3D Scaffold‐Free Nanoparticle‐Laden Stem Cell Constructs for Piezoelectric Enhancement of Human Neural Tissue Formation and Function

Author:

James Emma Claire12,Tomaskovic‐Crook Eva123ORCID,Crook Jeremy Micah1234ORCID

Affiliation:

1. ARC Centre of Excellence for Electromaterials Science Intelligent Polymer Research Institute AIIM Facility University of Wollongong Fairy Meadow NSW 2519 Australia

2. Arto Hardy Family Biomedical Innovation Hub Chris O'Brien Lifehouse Camperdown NSW 2050 Australia

3. School of Medical Sciences Faculty of Medicine and Health The University of Sydney Camperdown NSW 2006 Australia

4. Institute of Innovative Materials AIIM Facility Innovation Campus Faculty of Engineering and Information Systems University of Wollongong Fairy Meadow NSW 2519 Australia

Abstract

AbstractElectrical stimulation (ES) of cellular systems can be utilized for biotechnological applications and electroceuticals (bioelectric medicine). Neural cell stimulation especially has a long history in neuroscience research and is increasingly applied for clinical therapies. Application of ES via conventional electrodes requires external connectors and power sources, hindering scientific and therapeutic applications. Here engineering novel 3D scaffold‐free human neural stem cell constructs with integrated piezoelectric nanoparticles for enhanced neural tissue induction and function is described. Tetragonal barium titanate (BaTi03) nanoparticles are employed as piezoelectric stimulators prepared as cytocompatible dispersions, incorporated into 3D self‐organizing neural spheroids, and activated wirelessly by ultrasound. Ultrasound delivery (low frequency; 40 kHz) is optimized for cell survival, and nanoparticle activation enabled ES throughout the spheroids during differentiation, tissue formation, and maturation. The resultant human neural tissues represent the first example of direct tissue loading with piezoelectric particles for ensuing 3D ultrasound‐mediated piezoelectric enhancement of human neuronal induction from stem cells, including augmented neuritogenesis and synaptogenesis. It is anticipated that the platform described will facilitate advanced tissue engineering and in vitro modeling of human neural (and potentially non‐neural) tissues, with modeling including tissue development and pathology, and applicable to preclinical testing and prototyping of both electroceuticals and pharmaceuticals.

Funder

Australian Research Council

National Health and Medical Research Council

Australian National Fabrication Facility

Centre of Excellence for Electromaterials Science, Australian Research Council

Publisher

Wiley

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