Additive manufacturing of peripheral nerve conduits – Fabrication methods, design considerations and clinical challenges
Tài liệu tham khảo
Rea, P. Introduction to the nervous system; 2015.
Kolar, 2014, Peripheral nerve tissue engineering, Tissue Eng Using Ceram Polym, 468, 10.1533/9780857097163.3.468
Berthold, 2005, Microscopic anatomy of the peripheral nervous system, 35
Grinsell, 2014, Peripheral nerve reconstruction after injury: a review of clinical and experimental therapies, Biomed Res Int, 2014
Wieringa, 2018, Biomimetic architectures for peripheral nerve repair: a review of biofabrication strategies, Adv Healthc Mater, 7
Ciszewski, 1987, Diseases of the peripheral nerves, Vet Clin North Am Food Anim Pract, 3, 193, 10.1016/S0749-0720(15)31190-7
Katona, 2018, 145
Kaplan, 2015, The overwhelming use of rat models in nerve regeneration research may compromise designs of nerve guidance conduits for humans, J Mater Sci Mater Med, 26
Moattari, 2018, Comparison of neuroregeneration in central nervous system and peripheral nervous system, Otorhinolaryngol Neck Surg, 3
Alvites, 2020, Biomaterials and cellular systems at the forefront of peripheral nerve regeneration, Peripher Nerve Disord Treat, 10.5772/intechopen.87043
Hall, 2005, The response to injury in the peripheral nervous system, J Bone Jt Surg - Ser B, 87, 1309, 10.1302/0301-620X.87B10.16700
JAWEED, 1994, Peripheral nerve regeneration, Physiol Basis Rehabil Med, 543, 10.1016/B978-1-4831-7818-9.50027-7
Steed, 2011, Peripheral nerve response to injury, Atlas Oral Maxillofac Surg Clin North Am, 19, 1, 10.1016/j.cxom.2010.11.001
De Albornoz, 2011, Non-surgical therapies for peripheral nerve injury, Br Med Bull, 100, 73, 10.1093/bmb/ldr005
Qian, 2019, Advances in electrical and magnetic stimulation on nerve regeneration, Regen Med, 14, 969, 10.2217/rme-2018-0079
Parker, 2021, Nerve guidance conduit development for primary treatment of peripheral nerve transection injuries: a commercial perspective, Acta Biomater, 135, 64, 10.1016/j.actbio.2021.08.052
Peripheral nerve injuries market size & share report, 2030 https://www.grandviewresearch.com/industry-analysis/peripheral-nerve-injuries-market-report (accessed Sep 30, 2022).
Ray, 2010, Management of nerve gaps: autografts, allografts, nerve transfers, and end-to-side neurorrhaphy, Exp Neurol, 223, 77, 10.1016/j.expneurol.2009.03.031
Isaacs, 2014, Overcoming short gaps in peripheral nerve repair: conduits and human acellular nerve allograft, Hand, 9, 131, 10.1007/s11552-014-9601-6
Bittner, 2022, Typical and atypical properties of peripheral nerve allografts enable novel strategies to repair segmental-loss injuries, J Neuroinflammation, 19, 60, 10.1186/s12974-022-02395-0
Arif, 2022, Biopolymeric sustainable materials and their emerging applications, J Environ Chem Eng, 10, 10.1016/j.jece.2022.108159
Lucarini, 2022, Recent advances in hard-magnetic soft composites: synthesis, characterisation, computational modelling, and applications, Compos Struct, 279, 10.1016/j.compstruct.2021.114800
Coates, 2011, Tissue engineered constructs for peripheral nerve surgery, Bone, 23, 1
Lizarraga-Valderrama, 2021, Preclinical study of peripheral nerve regeneration using nerve guidance conduits based on polyhydroxyalkanaotes, Bioeng Transl Med, 6
Ko, 2017, Biodegradable bisvinyl sulfonemethyl-crosslinked gelatin conduit promotes regeneration after peripheral nerve injury in adult rats, Sci Reports 2017 71, 7, 1
Pierucci, A.; De Duek, E. A. R.; De Oliveira, A. L. R. Peripheral nerve regeneration through biodegradable conduits prepared using solvent evaporation. https://home.liebertpub.com/tea 2008, 14, 595–606.
Apelgren, 2019, Novel drug delivering conduit for peripheral nerve regeneration, Mater Today Proc, 27, 0
Yin, 2018, Freeze-cast porous chitosan conduit for peripheral nerve repair, MRS Adv, 3, 1677, 10.1557/adv.2018.194
Muheremu, 2017, Chitosan nerve conduits seeded with autologous bone marrow mononuclear cells for 30 mm goat peroneal nerve defect, Sci Reports 2017 71, 7, 1
Rao, F.; Yuan, Z.; Li, M.; et al. Expanded 3D nanofibre sponge scaffolds by gas-foaming technique enhance peripheral nerve regeneration. 2019, 47, 491–500.
Bian, 2009, Evaluation of poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) conduits for peripheral nerve regeneration, Biomaterials, 30, 217, 10.1016/j.biomaterials.2008.09.036
Niu, 2014, Scaffolds from block polyurethanes based on poly(ɛ-caprolactone) (pcl) and poly(ethylene glycol) (peg) for peripheral nerve regeneration, Biomaterials, 35, 4266, 10.1016/j.biomaterials.2014.02.013
Tan, 2012, Biochemical engineering nerve conduits using peptide amphiphiles, J Control Release, 163, 342, 10.1016/j.jconrel.2012.08.009
Nune, 2017, Self-assembling peptide nanostructures on aligned poly(lactide-co-glycolide) nanofibers for the functional regeneration of sciatic nerve, Nanomedicine, 12, 219, 10.2217/nnm-2016-0323
Si, 2019, Controlled degradable chitosan/collagen composite scaffolds for application in nerve tissue regeneration, Polym Degrad Stab, 166, 73, 10.1016/j.polymdegradstab.2019.05.023
Biswas, D. P.; Tran, P. A.; Tallon, C.; et al. Combining mechanical foaming and thermally induced phase separation to generate chitosan scaffolds for soft tissue engineering. https://doi.org/10.1080/09205063.2016.1262164 2016, 28, 207–226.
Park, 2022, Micropattern-based nerve guidance conduit with hundreds of microchannels and stem cell recruitment for nerve regeneration, npj Regen Med, 7, 1, 10.1038/s41536-022-00257-0
Sun, 2010, Novel thin-walled nerve conduit with microgrooved surface patterns for enhanced peripheral nerve repair, J Mater Sci Mater Med, 21, 2765, 10.1007/s10856-010-4120-7
Li, 2015, Nerve conduits constructed by electrospun P(LLA-CL) nanofibers and PLLA nanofiber yarns, J Mater Chem B, 3, 8823, 10.1039/C5TB01402F
Lee, 2022, Advancement of electrospun nerve conduit for peripheral nerve regeneration: a systematic review, Int J Nanomedicine, 17, 6723, 10.2147/IJN.S362144
Selim, 2022, Three-dimensional engineered peripheral nerve: toward a new era of patient-specific nerve repair solutions, Tissue Eng - Part B Rev, 28, 295, 10.1089/ten.teb.2020.0355
Sarker, 2018, Strategic design and fabrication of nerve guidance conduits for peripheral nerve regeneration, Biotechnol J, 7, 1
Moore, A. M.; Kasukurthi, R.; Magill, C. K.; et al. Limitations of conduits in peripheral nerve repairs. 2009, 4.
Weber, 2000, A randomized prospective study of polyglycolic acid conduits for digital nerve reconstruction in humans, Plast Reconstr Surg, 106, 1036, 10.1097/00006534-200010000-00013
Stanec, 1998, Ulnar nerve reconstruction with an expanded polytetrafluoroethylene conduit, Br J Plast Surg, 51, 637, 10.1054/bjps.1998.9996
Suryavanshi, 2020, Sutureless repair of a partially transected median nerve using tisseel glue and axoguard nerve protector: a case report, Microsurgery, 40, 896, 10.1002/micr.30593
Bertleff, 2005, A prospective clinical evaluation of biodegradable neurolac nerve guides for sensory nerve repair in the hand, J Hand Surg Am, 30, 513, 10.1016/j.jhsa.2004.12.009
Avance® Nerve Graft | axogen https://www.axogeninc.com/products/avance-nerve-graft/(accessed Jan 24, 2023).
Axoguard® Nerve Connector | Axogen https://axogeninc.eu/axoguard-nerve-connector/(accessed Jan 24, 2023).
Axoguard Nerve Protector® | axogen https://www.axogeninc.com/products/axoguard-nerve-protector/(accessed Jan 24, 2023).
Liodaki, 2013, Removal of collagen nerve conduits (neuragen) after unsuccessful implantation: focus on histological findings, J Reconstr Microsurg, 29, 517, 10.1055/s-0033-1348033
NeuraGen® Nerve Guide https://www.integralife.com/neuragen-nerve-guide/product/nerve-tendon-neuragen-nerve-guide (accessed Jan 24, 2023).
NeuraWrapTM Nerve Protector https://www.integralife.com/neurawrap-nerve-protector/product/nerve-tendon-neurawrap-nerve-protector (accessed Jan 24, 2023).
Collagen Matrix - Peripheral Nerve Repair Products https://collagenmatrix.com/products/nerve-repair/peripheral-nerve-repair/#neuroflex (accessed Jan 24, 2023).
NeuroMend | Stryker https://www.stryker.com/us/en/foot-and-ankle/products/NeuroMend.html (accessed Feb 25, 2023).
NeuroMatrix | Stryker https://www.stryker.com/us/en/trauma-and-extremities/products/neuromatrix.html (accessed Feb 25, 2023).
Neurotube Peripheral Nerve Repair Device | Nerve Tubes | Repairs Nerve Gaps https://www.synovismicro.com/html/products/gem_neurotube.html (accessed Jan 24, 2023).
NEUROLAC® – Polyganics https://polyganics.com/portfolio/peripheral-nerve-repair/neurolac/(accessed Jan 24, 2023).
Salumedica 3.0 http://www.schommer.net/salumedica/nerve_cuff.htm (accessed Feb 25, 2023).
Arif, 2022, 4D bioprinting of smart polymers for biomedical applications: recent progress, challenges, and future perspectives, React Funct Polym, 179, 10.1016/j.reactfunctpolym.2022.105374
Arif, 2022, Recent advances in 3D-printed polylactide and polycaprolactone-based biomaterials for tissue engineering applications, Int J Biol Macromol, 218, 930, 10.1016/j.ijbiomac.2022.07.140
Moldovan, 2019, Recent trends in bioprinting, Procedia Manuf, 32, 95, 10.1016/j.promfg.2019.02.188
van Kampen, 2019
Srinivas, 2017, A critical review on recent research methodologies in additive manufacturing, Mater Today Proc, 4, 9049, 10.1016/j.matpr.2017.07.258
Papadimitriou, 2020, Biofabrication for neural tissue engineering applications, Mater Today Bio, 6
Liu, 2022, 3D printed personalized nerve guide conduits for precision repair of peripheral nerve defects, Adv Sci, 9
Shahrubudin, 2019, An overview on 3D printing technology: technological, materials, and applications, Procedia Manuf, 35, 1286, 10.1016/j.promfg.2019.06.089
Bücking, 2017, From medical imaging data to 3D printed anatomical models, PLoS One, 12, 10.1371/journal.pone.0178540
Wunner, 2018, Melt electrospinning writing of highly ordered large volume scaffold architectures, Adv Mater, 30, 1, 10.1002/adma.201706570
Moldovan, 2017, Principles of the kenzan method for robotic cell spheroid-based three-dimensional bioprinting, Tissue Eng - Part B Rev, 23, 237, 10.1089/ten.teb.2016.0322
Carvalho, 2019, Modern trends for peripheral nerve repair and regeneration: beyond the hollow nerve guidance conduit, Front Bioeng Biotechnol, 7, 337, 10.3389/fbioe.2019.00337
Boularaoui, 2020, An overview of extrusion-based bioprinting with a focus on induced shear stress and its effect on cell viability, Bioprinting, 20, e00093, 10.1016/j.bprint.2020.e00093
Billiet, 2012, A review of trends and limitations in hydrogel-rapid prototyping for tissue engineering, Biomaterials, 33, 6020, 10.1016/j.biomaterials.2012.04.050
Zennifer, 2020, Key advances of carboxymethyl cellulose in tissue engineering & 3D bioprinting applications, Carbohydr Polym, 256
Jin, 2020, Fabrication of heterogeneous scaffolds using melt electrospinning writing: design and optimization, Mater Des, 185, 10.1016/j.matdes.2019.108274
Pagac, 2021, A review of vat photopolymerization technology: materials, applications, challenges, and future trends of 3D printing, Polymers (Basel), 13, 1, 10.3390/polym13040598
Zennifer, 2022, 3D bioprinting and photocrosslinking: emerging strategies & future perspectives, Biomater Adv, 134, 10.1016/j.msec.2021.112576
Ba´rtolo, 2011
Schmidleithner, 2018
Zennifer, 2021, 3D bioprinting and photocrosslinking: emerging strategies & future perspectives, Mater Sci Eng C
Farzan, 2022, Conductive polyurethane/PEGylated graphene oxide composite for 3d-printed nerve guidance conduits, Eur Polym J, 167, 10.1016/j.eurpolymj.2022.111068
Singh, 2018, Biomimetic photocurable three-dimensional printed nerve guidance channels with aligned cryomatrix lumen for peripheral nerve regeneration, ACS Appl Mater Interfaces, 10, 43327, 10.1021/acsami.8b11677
Chen, 2019, Additive manufacturing of nerve decellularized extracellular matrix-contained polyurethane conduits for peripheral nerve regeneration, Polym, 11, 1612, 10.3390/polym11101612
Ye, 2020, 3D printing of gelatin methacrylate-based nerve guidance conduits with multiple channels, Mater Des, 192, 10.1016/j.matdes.2020.108757
Evangelista, 2015, Single-lumen and multi-lumen poly(ethylene glycol) nerve conduits fabricated by stereolithography for peripheral nerve regeneration in vivo, J Reconstr Microsurg, 31, 327, 10.1055/s-0034-1395415
Ligon, 2017, Polymers for 3d printing and customized additive manufacturing, Chemical Reviews, 117, 10212, 10.1021/acs.chemrev.7b00074
Katal, 2013, Digital light processing and its future applications, Int J Sci Res Publ, 3, 2250
Zhang, 2020, Digital light processing based three-dimensional printing for medical applications, Int J Bioprinting, 6, 12
Khalid, 2022, 4D printing: technological and manufacturing renaissance, Macromol Mater Eng, 307, 10.1002/mame.202200003
Khalid, 2022, 4D printing of shape memory polymer composites: a review on fabrication techniques, applications, and future perspectives, J Manuf Process, 81, 759, 10.1016/j.jmapro.2022.07.035
Zhang, 2021
Altıparmak, 2022, Extrusion-based additive manufacturing technologies: state of the art and future perspectives, J Manuf Process, 83, 607, 10.1016/j.jmapro.2022.09.032
Jandyal, 2022, 3D printing – a review of processes, materials and applications in industry 4.0, Sustain Oper Comput, 3, 33, 10.1016/j.susoc.2021.09.004
Hsiao, 2020, Characterization of designed directional polylactic acid 3D scaffolds for neural differentiation of human dental pulp stem cells, J Formos Med Assoc, 119, 268, 10.1016/j.jfma.2019.05.011
Ramesh, 2021, Reverse engineering of an anatomically equivalent nerve conduit, J Tissue Eng Regen Med, 15, 998, 10.1002/term.3245
Dursun Usal, 2022, Fabrication of a 3D printed PCL nerve guide: in vitro and in vivo testing, Macromol Biosci, 22
Vijayavenkataraman, 2019, 3D-printed PCL/RGO conductive scaffolds for peripheral nerve injury repair, Artif Organs, 43, 515, 10.1111/aor.13360
Haryńska, 2019, Medical-grade PCL based polyurethane system for FDM 3D printing—characterization and fabrication, Mater, 12, 887, 10.3390/ma12060887
Rodríguez-Sánchez, 2021, 3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats, Stem Cell Res Ther, 12, 1, 10.1186/s13287-021-02315-8
Kaplan, 2020, Rapid prototyping fabrication of soft and oriented polyester scaffolds for axonal guidance, Biomaterials, 251, 10.1016/j.biomaterials.2020.120062
Kačarević, 2018, An Introduction to 3D bioprinting: possibilities, challenges and future aspects, Materials, 11
Budharaju, 2022, Designer DNA biomolecules as a defined biomaterial for 3d bioprinting applications, Mater Horizons, 10.1039/D1MH01632F
Xia, 2018, Tissue and organ 3D bioprinting, SLAS Technol, 23, 301, 10.1177/2472630318760515
Gu, 2020, Development of 3D bioprinting: from printing methods to biomedical applications, Asian J Pharm Sci, 15, 529, 10.1016/j.ajps.2019.11.003
Li, 2018, 3D bioprinted rat schwann cell-laden structures with shape flexibility and enhanced nerve growth factor expression, 3 Biotech, 8, 342, 10.1007/s13205-018-1341-9
Song, 2022, Neural stem cell-laden 3D bioprinting of polyphenol-doped electroconductive hydrogel scaffolds for enhanced neuronal differentiation, Biomater Adv, 133, 10.1016/j.msec.2021.112639
Wu, 2022, A critical review of additive manufacturing techniques and associated biomaterials used in bone tissue engineering, Polym, 14, 2117, 10.3390/polym14102117
Gülcan, 2021, The state of the art of material jetting—a critical review, Polymers (Basel), 13
Ansell, 2021, Current status of liquid metal printing, J Manuf Mater Process, 5, 31
Lee, 2018, 3D bioprinting processes: a perspective on classification and terminology, Int J Bioprinting, 4, 10.18063/ijb.v4i2.151
Alhamdi, 2021, High precision 3D printing for micro to nano scale biomedical and electronic devices, Polymers (Basel), 13, 795
Gao, 2019, Mechanisms and modeling of electrohydrodynamic phenomena, Int J Bioprinting, 5, 1
Gao, 2019, Designs and applications of electrohydrodynamic 3D printing, Int J Bioprinting, 5
Zhou, 2020, Cross-scale additive direct-writing fabrication of micro/nano lens arrays by electrohydrodynamic jet printing, Opt Express, 28, 6336, 10.1364/OE.383863
Wu, 2021, Electrohydrodynamic jet 3D printing in biomedical applications, Acta Biomater, 128, 21, 10.1016/j.actbio.2021.04.036
Vijayavenkataraman, 2018, Electrohydrodynamic jet 3D printed nerve guide conduits (NGCs) for peripheral nerve injury repair, Polymers (Basel), 10
Vijayavenkataraman, 2019, 3D-printed PCL/PPy conductive scaffolds as three-dimensional porous nerve guide conduits (NGCs) for peripheral nerve injury repair, Front Bioeng Biotechnol, 7, 266, 10.3389/fbioe.2019.00266
Miri, 2019, Effective bioprinting resolution in tissue model fabrication, Lab Chip, 19, 2019, 10.1039/C8LC01037D
Smith, 2017, Reactive inkjet printing—an introduction, 1
Li, 2020, Inkjet bioprinting of biomaterials, Chem Rev, 120, 10793, 10.1021/acs.chemrev.0c00008
Li, 2015, Inkjet printing for biosensor fabrication: combining chemistry and technology for advanced manufacturing, Lab Chip, 15, 2538, 10.1039/C5LC00235D
Sun, 2020, Patterning the neuronal cells via inkjet printing of self-assembled peptides on silk scaffolds, Prog Nat Sci Mater Int, 30, 686, 10.1016/j.pnsc.2020.09.007
Vijayavenkataraman, 2019, Electrohydrodynamic jet 3D-printed PCL/PAA conductive scaffolds with tunable biodegradability as nerve guide conduits (NGCs) for peripheral nerve injury repair, Mater Des, 162, 171, 10.1016/j.matdes.2018.11.044
Tortorella, 2022, Laser assisted bioprinting of laminin on biodegradable PLGA substrates: effect on neural stem cell adhesion and differentiation, Bioprinting, 26, e00194, 10.1016/j.bprint.2022.e00194
Koch, 2014, Laser-based 3D cell printing for tissue engineering, BioNanoMaterials, 15, 71, 10.1515/bnm-2014-0005
Antoshin, 2019, LIFT-bioprinting, is it worth it?, Bioprinting, 15, e00052, 10.1016/j.bprint.2019.e00052
Zhang, 2015, Time-resolved imaging study of jetting dynamics during laser printing of viscoelastic alginate solutions, Langmuir, 31, 6447, 10.1021/acs.langmuir.5b00919
Fernández-Pradas, 2017, Laser-induced forward transfer: propelling liquids with light, Appl Surf Sci, 418, 559, 10.1016/j.apsusc.2016.10.197
Dou, 2021, A state-of-the-art review of laser-assisted bioprinting and its future research trends, ChemBioEng Rev, 8, 517, 10.1002/cben.202000037
Zennifer, 2022, Design considerations of bioinks for laser bioprinting technique towards tissue regenerative applications, Bioprinting, e00205, 10.1016/j.bprint.2022.e00205
Loewner, 2022, Recent advances in melt electro writing for tissue engineering for 3D printing of microporous scaffolds for tissue engineering, Front Bioeng Biotechnol, 10, 1481, 10.3389/fbioe.2022.896719
Tourlomousis, 2017, Melt electrospinning writing process guided by a “printability number”, J Manuf Sci Eng Trans ASME, 139
Meng, 2021, Design and manufacturing of 3D high-precision micro-fibrous poly (l-lactic acid) scaffold using melt electrowriting technique for bone tissue engineering, Mater Des, 210, 10.1016/j.matdes.2021.110063
Chen, 2021, Highly ordered 3D tissue engineering scaffolds as a versatile culture platform for nerve cells growth, Macromol Biosci, 21, 1, 10.1002/mabi.202100047
Dalton, 2020, Advances in hybrid fabrication toward hierarchical tissue constructs, Adv Sci, 7
Murata, 2020, Scaffold-free bio-3D printing using spheroids as “bio-inks” for tissue (Re-)construction and drug response tests, Adv Healthc Mater, 9
Aguilar, 2019, Scaffold-free bioprinting of mesenchymal stem cells with the regenova printer: optimization of printing parameters, Bioprinting, 15
Mitsuzawa, 2019, The efficacy of a scaffold-free bio 3D conduit developed from autologous fibroblasts on peripheral nerve regeneration in a canine ulnar nerve injury model: a preclinical proof-of-concept study, Cell Transplant, 28, 1231, 10.1177/0963689719855346
Yurie, 2017, The efficacy of a scaffold-free bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model, PLoS One, 12
Moldovan, 2017, IPSC-derived vascular cell spheroids as building blocks for scaffold-free biofabrication, Biotechnol J, 12, 10.1002/biot.201700444
Wendel, 2020, Three-dimensional biofabrication models of endometriosis and the endometriotic microenvironment, Biomed, 8, 525
Nakamura, 2021, Bio-3D printing IPSC-derived human chondrocytes for articular cartilage regeneration, Biofabrication, 13, 10.1088/1758-5090/ac1c99
Murata, 2020, Osteochondral regeneration using adipose tissue-derived mesenchymal stem cells, Int J Mol Sci, 21, 3589, 10.3390/ijms21103589
Liu, 2021, High-resolution combinatorial 3D printing of gelatin-based biomimetic triple-layered conduits for nerve tissue engineering, Int J Biol Macromol, 166, 1280, 10.1016/j.ijbiomac.2020.11.010
Varghese, 2022, Current concepts and methods in tissue interface scaffold fabrication, Biomimetics 2022, 7, 151
Thangadurai, 2022, Advances in electrospinning and 3D bioprinting strategies to enhance functional regeneration of skeletal muscle tissue, Biomater Adv, 142, 10.1016/j.bioadv.2022.213135
Yoo, 2020, Augmented peripheral nerve regeneration through elastic nerve guidance conduits prepared using a porous PLCL membrane with a 3D printed collagen hydrogel, Biomater Sci, 8, 6261, 10.1039/D0BM00847H
Arif, 2022, A review on four-dimensional (4D) bioprinting in pursuit of advanced tissue engineering applications, Bioprinting, 27, e00203, 10.1016/j.bprint.2022.e00203
Bastola, 2020, A review on magneto-mechanical characterizations of magnetorheological elastomers, Compos Part B Eng, 200, 10.1016/j.compositesb.2020.108348
Wu, 2021, 4D bioprintable self-healing hydrogel with shape memory and cryopreserving properties, Biofabrication, 13, 10.1088/1758-5090/ac2789
Miao, 2018, Stereolithographic 4D bioprinting of multiresponsive architectures for neural engineering, Adv Biosyst, 2
Haleem, 2019, 5D printing and its expected applications in orthopaedics, J Clin Orthop Trauma, 10, 809, 10.1016/j.jcot.2018.11.014
Song, 2020, Additive manufacturing of nerve guidance conduits for regeneration of injured peripheral nerves, Front Bioeng Biotechnol, 8, 1, 10.3389/fbioe.2020.590596
Yan, 2022, Implantable nerve guidance conduits: material combinations, multi-functional strategies and advanced engineering innovations, Bioact Mater, 11, 57, 10.1016/j.bioactmat.2021.09.030
de Ruiter, 2009, Designing ideal conduits for peripheral nerve repair, Neurosurg Focus, 26, E5, 10.3171/FOC.2009.26.2.E5
Chung, 2011, Promoting regeneration of peripheral nerves in-vivo using new PCL-NGF/tirofiban nerve conduits, Biomaterials, 32, 734, 10.1016/j.biomaterials.2010.09.023
Huang, 2012, Regenerative potential of silk conduits in repair of peripheral nerve injury in adult rats, Biomaterials, 33, 59, 10.1016/j.biomaterials.2011.09.030
Wu, 2019, Development of cryogel-based guidance conduit for peripheral nerve regeneration, ACS Appl Bio Mater, 2, 4864, 10.1021/acsabm.9b00626
Guvendiren, 2016, Designing biomaterials for 3D printing, ACS Biomater Sci Eng, 2, 1679, 10.1021/acsbiomaterials.6b00121
Chen, 2022, Biomedical polymers: synthesis, properties, and applications, Sci China Chem, 65, 1010, 10.1007/s11426-022-1243-5
Fets, 2004, Fabrication and characterization of polymeric nerve conduits, IEEE Trans Electron Devices, 51, 389, 10.1109/TED.2003.822278
Sekar, 2021, Current standards and ethical landscape of engineered tissues—3D bioprinting perspective, J Tissue Eng, 12, 10.1177/20417314211027677
Manu, 2022, A review of medical device regulations in india, comparison with european union and way-ahead, Perspect Clin Res, 13, 3, 10.4103/picr.PICR_222_20
Jammalamadaka, 2018
Khalid, 2021, Recent advances in nanocellulose-based different biomaterials: types, properties, and emerging applications, J Mater Res Technol, 14, 2601, 10.1016/j.jmrt.2021.07.128
Khalid, 2022, Novel biopolymer-based sustainable composites for food packaging applications: a narrative review, Food Packag Shelf Life, 33, 10.1016/j.fpsl.2022.100892
Khalid, 2021, Natural fiber reinforced composites: sustainable materials for emerging applications, Results Eng, 11, 10.1016/j.rineng.2021.100263
Wu, 2021, Biocompatibility evaluation of a 3D-bioprinted alginate-GelMA-bacteria nanocellulose (BNC) scaffold laden with oriented-growth RSC96 cells, Mater Sci Eng C, 129, 10.1016/j.msec.2021.112393
Li, 2021, The corticospinal tract structure of collagen/silk fibroin scaffold implants using 3D printing promotes functional recovery after complete spinal cord transection in rats, J Mater Sci Mater Med, 32, 1, 10.1007/s10856-021-06500-2
Almansoori, 2020, Tantalum – poly (l-lactic acid) nerve conduit for peripheral nerve regeneration, Neurosci Lett, 731, 10.1016/j.neulet.2020.135049
Jin, 2022, PCL NGCs integrated with urolithin-a-loaded hydrogels for nerve regeneration, J Mater Chem B, 10
Sasaki, 2011, PLGA artificial nerve conduits with dental pulp cells promote facial nerve regeneration, J Tissue Eng Regen Med, 5, 823, 10.1002/term.387
Arslantunali, 2014, Multiwalled CNT-PHEMA composite conduit for peripheral nerve repair, J Biomed Mater Res Part A, 102, 828, 10.1002/jbm.a.34727
Gregory, 2021, Materials for peripheral nerve repair constructs: natural proteins or synthetic polymers?, Neurochem Int, 143, 10.1016/j.neuint.2020.104953
Naureen, 2021, Recent advances in tissue engineering scaffolds based on polyurethane and modified polyurethane, Mater Sci Eng C, 118, 10.1016/j.msec.2020.111228
Chen, 2021, Additive manufacturing of astragaloside-containing polyurethane nerve conduits influenced schwann cell inflammation and regeneration, Process, 9, 353, 10.3390/pr9020353
Zhu, 2018, Rapid continuous 3d printing of customizable peripheral nerve guidance conduits, Mater Today, 21, 951, 10.1016/j.mattod.2018.04.001
Liu, 2021, Additive-lathe 3D bioprinting of bilayered nerve conduits incorporated with supportive cells, Bioact Mater, 6, 219, 10.1016/j.bioactmat.2020.08.010
Tao, 2019, Rapid 3D printing of functional nanoparticle-enhanced conduits for effective nerve repair, Acta Biomater, 10.1016/j.actbio.2019.03.047
Tao, J.; Liu, H.; Wu, W.; et al. 3D-printed nerve conduits with live platelets for effective peripheral nerve repair. 2020, 2004272, 1–10.
Uz, 2019, Development of gelatin and graphene-based nerve regeneration conduits using three-dimensional (3D) printing strategies for electrical transdifferentiation of mesenchymal stem cells, Ind Eng Chem Res, 58, 7421, 10.1021/acs.iecr.8b05537
Chen, 2006, Luminal fillers in nerve conduits for peripheral nerve repair, Ann Plast Surg, 57, 462, 10.1097/01.sap.0000237577.07219.b6
Muheremu, 2015, Past, present, and future of nerve conduits in the treatment of peripheral nerve injury, Biomed Res Int, 2015
Moore, 2009, Limitations of conduits in peripheral nerve repairs, Hand (N Y), 4, 180, 10.1007/s11552-008-9158-3
Lee, 2022, Development of a regenerative porous PLCL nerve guidance conduit with swellable hydrogel-based microgrooved surface pattern via 3D printing, Acta Biomater, 141, 219, 10.1016/j.actbio.2022.01.042
Wang, 2021, Efficacy of large groove texture on rat sciatic nerve regeneration in vivo using polyacrylonitrile nerve conduits, Ann Biomed Eng, 49, 394, 10.1007/s10439-020-02560-7
Zhang, 2020, A 3D-printed self-adhesive bandage with drug release for peripheral nerve repair, Adv Sci
Stewart, 2020, Machine intelligence for nerve conduit design and production, J Biol Eng, 14, 1, 10.1186/s13036-020-00245-2
Zhang, 2019, Computational design and optimization of nerve guidance conduits for improved mechanical properties and permeability, J Biomech Eng, 141
Krieghoff, 2021, Extrusion-printing of multi-channeled two-component hydrogel constructs from gelatinous peptides and anhydride-containing oligomers, Biomedicines, 9
Johnson, 2015, 3D Printed anatomical nerve regeneration pathways, Adv Funct Mater, 25, 6205, 10.1002/adfm.201501760
Wu, 2020, In vitro and in vivo biocompatibility evaluation of a 3D bioprinted gelatin-sodium alginate/rat schwann-cell scaffold, Mater Sci Eng C, 109, 10.1016/j.msec.2019.110530
Zhang, L.; Zhang, H.; Wang, H.; et al. Fabrication of multi-channel nerve guidance conduits containing schwann cells based on multi-material 3D bioprinting. https://home.liebertpub.com/3dp 2022.
Yu, 2020, 3D printing and bioprinting nerve conduits for neural tissue engineering, Polymers (Basel), 12
Zhang, 2022, Nerve transfer with 3D-printed branch nerve conduits, Burn Trauma, 10, 1, 10.1093/burnst/tkac010
Lee, 2017, Development of novel 3-D printed scaffolds with core-shell nanoparticles for nerve regeneration, IEEE Trans Biomed Eng, 64, 408, 10.1109/TBME.2016.2558493
Wang, 2020, An injectable high-conductive bimaterial scaffold for neural stimulation, Colloids Surfaces B Biointerfaces, 195, 10.1016/j.colsurfb.2020.111210
Apablaza, 2022, Optimal morphometric characteristics of a tubular polymeric scaffold to promote peripheral nerve regeneration: a scoping review, Polymers (Basel), 14
Du, 2018, Biomimetic neural scaffolds: a crucial step towards optimal peripheral nerve regeneration, Biomater Sci, 6, 1299, 10.1039/C8BM00260F
Lee, 2018, 3D printing nano conductive multi-walled carbon nanotube scaffolds for nerve regeneration, J Neural Eng, 15, 10.1088/1741-2552/aa95a5
Namhongsa, 2022, Surface-modified polypyrrole-coated PLCL and PLGA nerve guide conduits fabricated by 3d printing and electrospinning, Biomacromolecules, 10.1021/acs.biomac.2c00626
Borschel, 2003, Mechanical properties of acellular peripheral nerve, J Surg Res, 114, 133, 10.1016/S0022-4804(03)00255-5
Ju, M. S.; Lin, C. C. K.; Lin, C. W. Transverse elasticity of rabbit sciatic nerves tested by in vitro compression. https://doi.org/10.1080/02533839.2004.9670951 2011, 27, 965–971.
Kerns, 2019, Mechanical properties of the human tibial and peroneal nerves following stretch with histological correlations, Anat Rec, 302, 2030, 10.1002/ar.24250
Wong, 2019, Biomechanical evaluation of peripheral nerves after crush injuries, Heliyon, 5, e01557, 10.1016/j.heliyon.2019.e01557
Cai, 2012, Photocured biodegradable polymer substrates of varying stiffness and microgroove dimensions for promoting nerve cell guidance and differentiation, Langmuir, 28, 12557, 10.1021/la302868q
Kong, 2022, Biomechanical microenvironment in peripheral nerve regeneration: from pathophysiological understanding to tissue engineering development, Theranostics, 12, 4993, 10.7150/thno.74571
Dilla, 2018, Synthesis and 3D printing of PEG-poly(propylene fumarate) diblock and triblock copolymer hydrogels, ACS Macro Lett, 7, 1254, 10.1021/acsmacrolett.8b00720
Singh, 2018, Additive manufactured biodegradable poly(glycerol sebacate methacrylate) nerve guidance conduits, Acta Biomater, 78, 48, 10.1016/j.actbio.2018.07.055
Houshyar, 2019, Peripheral nerve conduit: materials and structures, ACS Chem Neurosci, 10, 3349, 10.1021/acschemneuro.9b00203
Hu, 2016, 3D-engineering of cellularized conduits for peripheral nerve regeneration, Sci Reports, 6, 1
Chen, 2019, Additive manufacturing of nerve decellularizedextracellular matrix-contained polyurethaneconduits for peripheral nerve regeneration, Polymers, 11, 1612, 10.3390/polym11101612
Liu, 2014, Roles of reinforced nerve conduits and low-level laser phototherapy for long gap peripheral nerve repair, Neural Regen Res, 9, 1180, 10.4103/1673-5374.135323
Harrington, 2020
Holland, 2021, Effects of chemical and radiation sterilisation on the biological and biomechanical properties of decellularised porcine peripheral nerves, Front Bioeng Biotechnol, 9, 454, 10.3389/fbioe.2021.660453
Lorson, 2020, Sterilization methods and their influence on physicochemical properties and bioprinting of alginate as a bioink component, ACS Omega, 5, 6481, 10.1021/acsomega.9b04096
Horakova, 2020, Impact of various sterilization and disinfection techniques on electrospun poly-ϵ-caprolactone, ACS Omega, 5, 8885, 10.1021/acsomega.0c00503
Griffin, 2018, Evaluation of sterilisation techniques for regenerative medicine scaffolds fabricated with polyurethane nonbiodegradable and bioabsorbable nanocomposite materials, Int J Biomater, 2018
MacAdam, 2022, Development of in situ bioprinting: a mini review, Front Bioeng Biotechnol, 10, 1284, 10.3389/fbioe.2022.940896
Aguado-Maestro, 2021, Are the common sterilization methods completely effective for our in-house 3d printed biomodels and surgical guides?, Injury, 52, 1341, 10.1016/j.injury.2020.09.014
Hodder, 2019, Investigating the effect of sterilisation methods on the physical properties and cytocompatibility of methyl cellulose used in combination with alginate for 3D-bioplotting of chondrocytes, J Mater Sci Mater Med, 30, 1, 10.1007/s10856-018-6211-9
Naghieh, 2019, Indirect 3D bioprinting and characterization of alginate scaffolds for potential nerve tissue engineering applications, J Mech Behav Biomed Mater, 93, 183, 10.1016/j.jmbbm.2019.02.014
Budharaju, 2021, Recent advancements in cardiovascular bioprinting and bioprinted cardiac constructs, Biomater Sci, 9, 1974, 10.1039/D0BM01428A
Mauch, 2019, A systematic review of sensory outcomes of digital nerve gap reconstruction with autograft, allograft, and conduit, Ann Plast Surg, 82, S247, 10.1097/SAP.0000000000001851
Sekar, 2021, Current standards and ethical landscape of engineered tissues-3D bioprinting perspective, J Tissue Eng, 12, 10.1177/20417314211027677