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Goding, J.

Publications and source records attributed to Goding, J..

2 recordsLinked to original sources

Neuromodulation of a peripheral nerve using fully polymeric cuff electrodes: Understanding predictability of selective stimulation

Peripheral nerve stimulation (PNS) offers therapeutic benefits across numerous clinical applications but suffers from limitations in high resolution spatial selectivity, especially in mixed nerves. This study presents a fully polymeric, transverse, multipolar nerve cuff made from a conductive elastomer (CE), designed for selective activation of individual fascicles. Fabricated with laser-based manufacturing techniques, the CE nerve cuff offers mechanical conformity and high charge injection capacity. Ex vivo experiments on the rat sciatic nerve demonstrate reliable compound action potential recordings and fascicular selectivity (SI > 0.65). The non-metal electrodes enable microCT-aided 3D reconstruction of nerve-electrode geometries without imaging artefacts, informing anatomically accurate simulations via the ASCENT pipeline. While in silico simulations predict some selective fascicular activation, discrepancies were observed between predicted and experimental selectivity magnitudes and electrode positions, particularly for the sural and tibial fascicles. The model was more sensitive to neuroanatomical variation than the experimental data, indicating limitations in current perineurium and CE electrode modelling assumptions. This work validates CE-based cuffs as viable alternatives to metallic devices for selective fascicular peripheral nerve activation and highlights the potential of imaging-informed simulations to optimize nerve interface design. Future improvements in electrode and nerve tissue modelling are needed to enhance in silico prediction accuracy and further advance spatially selective PNS technologies.

bioengineering↗

Astrocyte-Guided Maturation of Neural Constructs in a Modular Biosynthetic Hydrogel for Biohybrid Neurotechnologies

Bionic implants are increasingly used to restore neural function yet achieving a chronically stable neural interface remains challenging. Biohybrid neurotechnologies aim to overcome this limitation by integrating living tissue components that can promote long-term performance and functional integration with the nervous system. However, existing biomaterial coatings often lack the physiological complexity, cellular heterogeneity, and neurotrophic support required to sustain neural network formation. Here, we present a modular strategy which leverages astrocyte-guided mechanisms of neural network development. A biosynthetic hydrogel was developed using norbornene-functionalized poly(vinyl alcohol) and gelatin (PVA-GEL), crosslinked via visible light-triggered thiol-ene chemistry, to yield bioactive and highly tuneable scaffolds. A systematic characterization varying gelatin content and polymer weight enabled the identification an optimal formulation to promote astrocytic growth, while maintaining mechanical stability and degradation profiles that are compatible with brain implants. Co-encapsulation with neural progenitors promoted neuronal differentiation, neurite outgrowth, and the formation of synaptically competent networks. The construct developed into functional interfaces when in contact with brain tissue ex vivo, highlighting its potential as a biohybrid electrode coating. This work lays the foundation for the development of biologically guided biohybrid interfaces, towards seamless integration with the nervous system.

bioengineering↗