3D bioprinted cell-laden GrooveNeuroTube: a multifunctional platform for<i>ex vivo</i>neural cell migration and growth studies.

Litowczenko, Jagoda; Richter, Yannick; Ismael, Hawrez; Popenda, Łukasz; Ostrowski, Adam; Fiedorowicz, Katarzyna; Rodrigez Cabello, Jose Carlos; Wychowaniec, Jacek K et al. · Biofabrication · 2025

basic_science · Level V

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Abstract

Extensive peripheral nerve injuries often lead to the loss of neurological function due to slow regeneration and limited recovery over large gaps. Current clinical interventions, such as nerve guidance conduits (NGCs), face challenges in creating biomimetic microenvironments that effectively support nerve repair. The developed<b><i>GrooveNeuroTube</i></b>is composed of hyaluronic acid methacrylate and gelatin methacrylate hydrogel, incorporating active agents (growth factors and antibacterial agents) encapsulated within an NGC conduit made of 3D-printed PCL grid fibers.<i>In vitro</i>studies showed that<b><i>GrooveNeuroTube</i></b>significantly promoted migration of dorsal root ganglion (DRG) neuronal cells, 3D bioprinted at the far ends of the conduit to imitate a proximal nerve injury as a novel<i>ex vivo</i>model. A long-term culture of up to 60 d was employed to better mimic<i>in vivo</i>conditions. This model tested the effects of pulsed electromagnetic field stimulation on neural tissue development. After 60 d,<b><i>GrooveNeuroTube</i></b>showed a 32% cell migration increase compared to the growth-factor-group and 105% compared to the no-growth-factor condition. These results confirm that the<b><i>GrooveNeuroTube</i></b>system can effectively support sustained neural cell migration and maturation over extended periods, proving a new technology for testing peripheral nerve injury<i>ex vivo</i>.

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