Three-Dimensional Printing of the Epineurium for Peripheral Nerve Repair: A Comprehensive Review of Novel Scaffolds for Nerve Conduits
Abstract
1. Introduction
2. Methods
2.1. Systematic Review Methods
2.1.1. Eligibility Criteria
2.1.2. Information Sources
2.1.3. Systematic Review Search Strategy
2.1.4. Selection Process
2.1.5. Data Collection Process
2.1.6. Data Items & Outcomes
2.1.7. Statistical Analysis
2.1.8. Quality Assessment and Risk of Bias Tools
2.2. Literature Review Methods
2.2.1. Literature Review Search Strategy
2.2.2. Study Selection
2.2.3. Data Extraction and Synthesis
3. Results
3.1. Systematic Review Results
3.2. Literature Review Results
3.2.1. First Generation Nerve Guidance Conduits
3.2.2. Biomechanics and Biomaterials of 3DP NGC
3.2.3. Evolution of Nerve Guidance Conduits
3.2.4. Innovations and Future Direction
4. Discussion
4.1. Innovations Driving the Surge in 3DP Nerve Conduit Research
4.2. Successful Printing of Epineurium Layer, a Major Advancement
4.3. Nerve Growth Factor: A Promising Enhancer for Aligning Schwann Cells and Neurons
4.4. Challenges with the Development and Application of 3DP NGCs
4.5. Limitations and Future Directions
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Category | Consideration | Rationale | 3D-Printing/Manufacturing Notes |
|---|---|---|---|
| Conduit Design and Architecture | |||
| Clinical | Clinical Indication/Gap Length | Conduits are most reliable for small-to-moderate gaps; larger gaps often require grafting or augmented designs. | Stratify outcomes by defect length; ensure printed constructs are intended for the target gap range. |
| Geometry | Inner Diameter Matching | Match conduit inner diameter (ID) to nerve outer diameter (OD) to reduce mismatch, stump constriction, and dead space. | Use patient-/specimen-specific CAD; confirm ID after swelling and post-sterilization. |
| Mechanical | Wall Thickness/Anti-Collapse | Adequate hoop strength prevents lumen collapse and kinking while preserving flexibility for placement. | Tune wall thickness/infill to balance stiffness and flexibility; test under bending and compression. |
| Handling | Suture Retention/Handling | Suture retention strength and handling determine the feasibility of atraumatic microsurgical fixation. | Consider reinforcement/anisotropy to increase retention without excessive stiffness; report retention metrics. |
| Microarchitecture | Porosity And Permeability | Porosity must permit diffusion of nutrients/waste while limiting fibrous tissue invasion and maintaining guidance. | Programmed porosity gradients are feasible with AM; quantify porosity/permeability and relate to outcomes. |
| Microarchitecture | Intraluminal Microchannels/Multi-lumen | Aligned channels reduce axonal dispersion and provide contact guidance compared with hollow tubes. | Channel diameter/spacing should reflect printer resolution; validate channel patency post-fabrication. |
| Microarchitecture | Topographical Guidance (Grooves/Fibers) | Microscale anisotropy and surface features guide Schwann cell alignment and axonal extension. | Incorporate microgrooves via high-resolution printing or templating; quantify feature fidelity. |
| Intraluminal cues | Hydrogel/ECM Lumen Fillers | Fibrin/collagen matrices can stabilize the regeneration pathway and support cell migration within conduits. | Hybrid constructs (rigid shell + soft filler) can be enabled by multi-material printing/assembly. |
| Biochemical cues | Neurotrophic Factor Delivery | Sustained, localized delivery of NGF/GDNF can enhance neurite outgrowth and regeneration. | Design affinity-/carrier-based release and quantify kinetics after full manufacturing + sterilization workflow. |
| Cellular cues | Cell Seeding (Schwann Cells) | Support cells provide trophic and myelination cues, particularly valuable for longer gaps and complex injuries. | Bioprinting or post-seeding must preserve viability and phenotype; report cell retention/distribution. |
| Bio-functionalization | Immuno-modulation/Fibrosis Control | Minimize chronic inflammation and perineural scarring; favor pro-regenerative immune responses. | Surface functionalization and bioactive coatings can be printed or post-modified; include immune/fibrosis endpoints. |
| Bioelectrical | Electro-conductivity/Electrical Stimulation | Conductive conduits and/or electrical stimulation can accelerate axonal regeneration and functional recovery in models. | Conductive fillers can alter printability and degradation; control conductivity spatially and temporally. |
| Material and Engineering Considerations | |||
| Biocompatibility | Biocompatibility | Materials must be non-cytotoxic and support Schwann cell adhesion; residual solvents/photoinitiators can be problematic. | For SLA/DLP, optimize washing/post-curing and verify extractables; report cytotoxicity per ISO-relevant assays when possible. |
| Mechanical | Mechanical Compliance Matching | Match stiffness to native nerve to reduce stress shielding and micromotion-associated fibrosis. | Tune modulus via polymer selection, infill, and microarchitecture; report compressive/bending properties. |
| Degradation | Degradation Profile | Degradation should maintain lumen patency through early healing and resorb as function recovers. | Porosity/crystallinity (affected by printing) and polymer chemistry influences degradation; track mass loss and mechanical retention over time. |
| Barrier function | Barrier To External Cell Invasion | Prevent infiltration of fibroblasts and scar tissue while allowing diffusion across the wall. | Use multilayer constructs (dense outer + porous inner) enabled by multi-material printing/assembly. |
| Translational | Sterilizability/Regulatory Compatibility | Materials and architectures must tolerate sterilization without deformation or loss of properties. | Test steam/EtO/VHP/gamma effects on dimensions, mechanics, and surface chemistry for each print material. |
| Additive Manufacturing and Process Considerations | |||
| Process | Printing Modality Selection | Printing process governs resolution, achievable porosity, and compatible biomaterials (thermoplastics vs. hydrogels/resins). | FDM/DIW enable robust thermoplastics; SLA/DLP offer higher resolution; bioprinting supports cell-laden inks. |
| Quality Control | Dimensional Accuracy/Validation | Dimensional fidelity is essential for nerve size matching and channel patency. | Use µCT/optical metrology to quantify deviations pre/post sterilization and after swelling. |
| Bioink/material | Rheology/Printability | Viscosity, shear-thinning, and gelation kinetics govern strut fidelity and (for bioprinting) cell survival. | Report rheology, nozzle diameter, extrusion pressure, and temperature; link to feature resolution and cell viability. |
| Chemistry | Crosslinking/Curing | Crosslinking must provide stability while maintaining cytocompatibility and minimizing toxic residues. | Optimize photoinitiator type/concentration and UV dose; implement validated wash/post-cure protocols. |
| Post-processing | Post-Processing/Sterilization Effects | Post-processing can change surface chemistry/mechanics; sterilization can introduce shrinkage or warping. | Characterize mechanical properties and cytocompatibility after the complete workflow (print, post-cure, sterilize). |
| Quality systems | Reproducibility/Batch-To-Batch Control | Translation requires reproducible architecture and properties across prints and batches. | Define acceptance criteria (porosity, modulus, ID) and include process controls and reporting standards. |
| Author, Year | 3DP Instrument and Manufacturer | Fabrication Technique | Base Material | Cells or Trophic Factors Used | Architecture | OHAT Rating | NIH QA | Model |
|---|---|---|---|---|---|---|---|---|
| Chen, 2020 [26] | EnvisionTec: 3D-Bioplotter Developer Series, 3DSMAN, NJ, USA | Prepared via microfluid chip | GC-MSs | PC12 & RSC96; NGF | Multiscale composite scaffold; Epineurium layer | Probably High | Good | In vitro |
| Lee, 2022 [27] | Dr. Invivo ROKIT, South Korea | Light-crosslinking | PLCL | NGF | Microgrooves; Non-Collapsible epineurium | Probably Low | Good | Rat |
| Li, 2021 [28] | EFL-MDW5800, Suzhou Intelligent Manufacturing Research Institute, SuZhou, China | MEW | PCL | NCSC | Multi-scale scaffold; superfine fibers *, inducing effects; endogenous tissue envelope | Definitely Low | Good | Rat |
| Rodriguez-Sanchez, 2025 [29] | FAB@CTI, Renato Archer Information Technology Center, São Paulo, Brazil | FFF | PCL-HFB | AdMSCs | Sputter-coated gold exterior | Probably High | Good | Rat |
| Fang, 2023 [30] | NR | Electrospinning; MEW | PCL, rGO, Collagen | PC12; RSC96 | Multi-scale (trilayered) with nanofibers and microfibers | Probably Low | Good | Rats |
| Fan, 2025 [31] | NR | E-jet; Electrospinning | PLGA | UMSCs; dECM; PC12, RSC96 | Bilayered; EVs with vertical & horizontal cross-lamination | Definitely Low | Good | Rats |
| Chang, 2025 [32] | Photonic Professional GT2 3D printer Nanoscribe, Karlsruhe, Germany | Lithography with photoinitiator | Acrylate resin with laminin | None | Bilayered; micro- and nano-fibers | Probably High | Fair | Rats |
| Kong, 2024 [33] | BioScaffolder 4.2, GeSim, Radeberg Germany | Phase separation; Cross-linking | PCL, Collagen, & SF | dnECM; mSCs; RSC96 | Trilayered; hydrophobic with 1 µm pores | Definitely Low | Good | Mice; Rat; Canine |
| Author, Year, (# of Samples) | Growth or Trophic Factors Embedded | Structural Integrity (Weeks) | SFI Recovery | g-Ratio | Durability (Days) | Cell Viability ** | Neurite Outgrowth Speed *** | Neurite Maximum Elongation (µm) |
|---|---|---|---|---|---|---|---|---|
| Chen, 2020, (9) [26] | NGF | 12 | N/A | NR | <3 | 96.9 ± 1.52% | Robust | 14.51 ± 6.86 |
| Lee, 2022, (3) [27] | NGF | 12 | NR | NR | <7 | 88.7 ± 0.7% | 26.8 ± 0.8 | 26.8 ± 0.8 |
| Li, 2021, (20) [28] | NCSC | 10 | −73.72 ± 1.398 | ~0.84 | 70 | Increased | NR | NR |
| Rodriguez-Sanchez, 2025 (5) [29] | AdMSCs | NR | −65.12 | NR | NR | NR | NR | NR |
| Fang, 2023 (12) [30] | No | 8 | −51.5 ± 8.6 | NR | 60 | NR | ~38% | 42.5 ± 12.8 |
| Fan, 2025 (6) [31] | UMSCs | 12 | ~−62 | ~0.60 | >7 | 65.6% | 33.28% | 134 |
| Chang, 2025 (6) [32] | No | 6 | −73.24 | ~0.72 | NR | NR | NR | NR |
| Kong, 2024 ‡ (5) [33] | No | 12 | ~−45 * | ~0.55 * | 84 * | NR | NR | NR |
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Adams, A.J.; Taritsa, I.C.; Shariati, K.; Dadzie, A.I.; Foppiani, J.A.; Escobar-Domingo, M.J.; Lee, D.; Hernandez-Alvarez, A.; Schuster, K.; Xun, H.; et al. Three-Dimensional Printing of the Epineurium for Peripheral Nerve Repair: A Comprehensive Review of Novel Scaffolds for Nerve Conduits. Biomimetics 2026, 11, 196. https://doi.org/10.3390/biomimetics11030196
Adams AJ, Taritsa IC, Shariati K, Dadzie AI, Foppiani JA, Escobar-Domingo MJ, Lee D, Hernandez-Alvarez A, Schuster K, Xun H, et al. Three-Dimensional Printing of the Epineurium for Peripheral Nerve Repair: A Comprehensive Review of Novel Scaffolds for Nerve Conduits. Biomimetics. 2026; 11(3):196. https://doi.org/10.3390/biomimetics11030196
Chicago/Turabian StyleAdams, Alynah J., Iulianna C. Taritsa, Kaavian Shariati, Aaron I. Dadzie, Jose A. Foppiani, Maria Jose Escobar-Domingo, Daniela Lee, Angelica Hernandez-Alvarez, Kirsten Schuster, Helen Xun, and et al. 2026. "Three-Dimensional Printing of the Epineurium for Peripheral Nerve Repair: A Comprehensive Review of Novel Scaffolds for Nerve Conduits" Biomimetics 11, no. 3: 196. https://doi.org/10.3390/biomimetics11030196
APA StyleAdams, A. J., Taritsa, I. C., Shariati, K., Dadzie, A. I., Foppiani, J. A., Escobar-Domingo, M. J., Lee, D., Hernandez-Alvarez, A., Schuster, K., Xun, H., & Lin, S. J. (2026). Three-Dimensional Printing of the Epineurium for Peripheral Nerve Repair: A Comprehensive Review of Novel Scaffolds for Nerve Conduits. Biomimetics, 11(3), 196. https://doi.org/10.3390/biomimetics11030196

