ArticleMaterials today. Bio2025
Filamented hydrogels as tunable conduits for guiding neurite outgrowth.
Article in Materials today. Bio, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
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Who cites it
9 citing papers in PubMed.
- Advances in In Vitro Vascularization of Engineered Tissues: From Microvessel Formation to Hepatic Tissue Integration.Regenerative therapy · 2026Article
- Unconventional bioprinting modalities for advanced tissue biofabrication.Biomaterials · 2026Review
- Liver Innervation in Health and Disease: Neuroimmune-Neurovascular Interface and Future Therapeutic Implications.Biomedicines · 2025Review
- Prolonged Cell Encapsulation and Gravity-independent Filamented Light Biofabrication of Muscle Constructs.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2025Article
- Rapid Deep Vat Printing Using Photoclickable Collagen-Based Bioresins.Advanced healthcare materials · 2025Article
- Filamented Light (FLight) Bioprinting of Mini-Muscles with Self-Renewal Potential.Advanced materials (Deerfield Beach, Fla.) · 2025Article
- Bioxolography Using Diphenyliodonium Chloride and N-Vinylpyrrolidone Enables Rapid High-Resolution Volumetric 3D Printing of Spatially Encoded Living Matter.Advanced materials (Deerfield Beach, Fla.) · 2025Article
- Advances in light-based process for cell-based 3D bioprinting applications.Materials today. Bio · 2025Article
- Structured Light Projection Using Image Guide Fibers for In Situ Photo-biofabrication.Advanced materials (Deerfield Beach, Fla.) · 2025Article
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Authors and funding
5 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Anisotropic scaffolds with unidirectionally aligned fibers present an optimal solution for nerve tissue engineering and graft repair. This study investigates the application of filamented light (FLight) biofabrication to create hydrogel matrices featuring highly aligned microfilaments, facilitating neurite guidance and outgrowth from encapsulated chicken dorsal root ganglion (DRG) cells. FLight employs optical modulation instability (OMI) to rapidly and safely (<5 s) fabricate hydrogel constructs with precise microfilament alignment. The tunability of FLight matrices was demonstrated by adjusting four key parameters: stiffness, porosity, growth factor release, and incorporation of biological cues. Matrix stiffness was fine-tuned by varying the projection light dose, yielding matrices with stiffness ranging from 0.6 to 5.7 kPa. Optimal neurite outgrowth occurred at a stiffness of 0.6 kPa, achieving an outgrowth of 2.5 mm over 4 days. Matrix porosity was modified using diffraction gratings in the optical setup. While significant differences in neurite outgrowth and alignment were observed between bulk and FLight gels, further increases in porosity from 40 % to 70 % enhanced cell migration and axon bundling without significantly affecting maximal outgrowth. The incorporation of protein microcrystals containing nerve growth factor (NGF) into the photoresin enabled sustained neurite outgrowth without the need for additional NGF in the media. Finally, laminin was added to the resin to enhance the bioactivity of the biomaterial, resulting in a further increase in maximum neurite outgrowth to 3.5 mm after 4 days of culture in softer matrices. Overall, the varied matrix properties achieved through FLight significantly enhance neurite outgrowth, highlighting the importance of adaptable scaffold characteristics for guiding neurite development. This demonstrates the potential of FLight as a versatile platform for creating ideal matrices for clinical applications in nerve repair and tissue engineering.
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