Synthetic 3D PEG-Anisogel Tailored with Fibronectin Fragments Induce Aligned Nerve Extension

Abstract

An enzymatically cross-linked polyethylene glycol (PEG)-based hydrogel was engineered to promote and align nerve cells in a three-dimensional manner. To render the injectable, otherwise bioinert, PEG-based material supportive for cell growth, its mechanical and biochemical properties were optimized. A recombinant fibronectin fragment (FNIII9*-10/12-14) was coupled to the PEG backbone during gelation to provide cell adhesive and growth factor binding domains in close vicinity. Compared to full-length fibronectin, FNIII9*-10/12-14 supports nerve growth at similar concentrations. In a 3D environment, only the ultrasoft 1 w/v% PEG hydrogels with a storage modulus of ∼10 Pa promoted neuronal growth. This gel was used to establish the first fully synthetic, injectable Anisogel by the addition of magnetically aligned microelements, such as rod-shaped microgels or short fibers. The Anisogel led to linear neurite extension and represents a large step in the direction of clinical translation with the opportunity to treat acute spinal cord injuries.

Description
Keywords
Adhesives, Cell proliferation, Gelation, Polyethylenes, 3-D environments, Biochemical properties, Crosslinked polyethylene, Fibronectin fragments, Neurite extension, Neuronal growth, Spinal cord injuries (SCI), Neurons, fibronectin, macrogol, recombinant protein, biomaterial, fibronectin, macrogol, cell adhesion, cell proliferation, conjugation, hydrogel, nerve growth, neurite outgrowth, spinal cord injury, structure analysis, drug effect, growth, development and aging, nerve cell, Spinal Cord Injuries, Polyethylene Glycols, Biocompatible Materials, Cell Proliferation, Fibronectins
Citation
Licht, C., Rose, J. C., Anarkoli, A. O., Blondel, D., Roccio, M., Haraszti, T., et al. (2019). Synthetic 3D PEG-Anisogel Tailored with Fibronectin Fragments Induce Aligned Nerve Extension. 20(11). https://doi.org//10.1021/acs.biomac.9b00891
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License
CC BY-NC-ND 4.0 Unported