Anisometric Microstructures to Determine Minimal Critical Physical Cues Required for Neurite Alignment
In nerve regeneration, scaffolds play an important role in providing an artificial extracellular matrix with architectural, mechanical, and biochemical cues to bridge the site of injury. Directed nerve growth is a crucial aspect of nerve repair, often introduced by engineered scaffolds imparting lin...
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Veröffentlicht in: | Advanced healthcare materials 2021-10, Vol.10 (20), p.e2100874-n/a |
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Sprache: | eng |
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Zusammenfassung: | In nerve regeneration, scaffolds play an important role in providing an artificial extracellular matrix with architectural, mechanical, and biochemical cues to bridge the site of injury. Directed nerve growth is a crucial aspect of nerve repair, often introduced by engineered scaffolds imparting linear tracks. The influence of physical cues, determined by well‐defined architectures, has been mainly studied for implantable scaffolds and is usually limited to continuous guiding features. In this report, the potential of short anisometric microelements in inducing aligned neurite extension, their dimensions, and the role of vertical and horizontal distances between them, is investigated. This provides crucial information to create efficient injectable 3D materials with discontinuous, in situ magnetically oriented microstructures, like the Anisogel. By designing and fabricating periodic, anisometric, discreet guidance cues in a high‐throughput 2D in vitro platform using two‐photon lithography techniques, the authors are able to decipher the minimal guidance cues required for directed nerve growth along the major axis of the microelements. These features determine whether axons grow unidirectionally or cross paths via the open spaces between the elements, which is vital for the design of injectable Anisogels for enhanced nerve repair.
High‐throughput fabrication of discrete, anisometric microstructures with anisometric inter‐element distances to determine the minimal critical physical cues required for neurite alignment. The topographical cell culture platform is produced by two‐photon laser polymerization to study the effect of interrupted physical guidance on oriented extension of primary nerve cells from embryonic chick dorsal root ganglia. |
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ISSN: | 2192-2640 2192-2659 2192-2659 |
DOI: | 10.1002/adhm.202100874 |