Additive Manufacturing of Peripheral Nerve Conduits - Fabrication Methods, Design Considerations and Clinical Challenges.
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[1] M. Ng,et al. Advancement of Electrospun Nerve Conduit for Peripheral Nerve Regeneration: A Systematic Review (2016–2021) , 2022, International journal of nanomedicine.
[2] Zhusheng Shi,et al. Extrusion-based additive manufacturing technologies: State of the art and future perspectives , 2022, Journal of Manufacturing Processes.
[3] Su Jeong Park,et al. Micropattern-based nerve guidance conduit with hundreds of microchannels and stem cell recruitment for nerve regeneration , 2022, npj Regenerative Medicine.
[4] Junjian Liu,et al. PCL NGCs integrated with urolithin-A-loaded hydrogels for nerve regeneration. , 2022, Journal of materials chemistry. B.
[5] K. Hixon,et al. Current Concepts and Methods in Tissue Interface Scaffold Fabrication , 2022, Biomimetics.
[6] A. Tuantranont,et al. Surface-Modified Polypyrrole-Coated PLCL and PLGA Nerve Guide Conduits Fabricated by 3D Printing and Electrospinning. , 2022, Biomacromolecules.
[7] Dhakshinamoorthy Sundaramurthi,et al. Advances in electrospinning and 3D bioprinting strategies to enhance functional regeneration of skeletal muscle tissue. , 2022, Biomaterials advances.
[8] M. Khalid,et al. 4D printing of shape memory polymer composites: A review on fabrication techniques, applications, and future perspectives , 2022, Journal of Manufacturing Processes.
[9] M. Khalid,et al. Novel biopolymer-based sustainable composites for food packaging applications: A narrative review , 2022, Food Packaging and Shelf Life.
[10] F. Cholewa,et al. Recent advances in melt electro writing for tissue engineering for 3D printing of microporous scaffolds for tissue engineering , 2022, Frontiers in Bioengineering and Biotechnology.
[11] M. Khalid,et al. 4D bioprinting of smart polymers for biomedical applications: recent progress, challenges, and future perspectives , 2022, Reactive and Functional Polymers.
[12] E. Suuronen,et al. Development of in situ bioprinting: A mini review , 2022, Frontiers in Bioengineering and Biotechnology.
[13] M. Khalid,et al. Recent advances in 3D-printed polylactide and polycaprolactone-based biomaterials for tissue engineering applications. , 2022, International journal of biological macromolecules.
[14] C. Fan,et al. Biomechanical microenvironment in peripheral nerve regeneration: from pathophysiological understanding to tissue engineering development , 2022, Theranostics.
[15] M. Khalid,et al. Biopolymeric Sustainable Materials and their Emerging Applications , 2022, Journal of Environmental Chemical Engineering.
[16] Yongtao Lu,et al. A Critical Review of Additive Manufacturing Techniques and Associated Biomaterials Used in Bone Tissue Engineering , 2022, Polymers.
[17] Chaoliang He,et al. Biomedical polymers: synthesis, properties, and applications , 2022, Science China Chemistry.
[18] M. Khalid,et al. Four‐Dimensional (4D) Printing: Technological and Manufacturing Renaissance , 2022, Macromolecular Materials and Engineering.
[19] Z. Ahmad,et al. High Precision 3D Printing for Micro to Nano Scale Biomedical and Electronic Devices , 2022, Micromachines.
[20] A. Subramanian,et al. Design considerations of bioinks for laser bioprinting technique towards tissue regenerative applications , 2022, Bioprinting.
[21] M. Khalid,et al. A review on four-dimensional bioprinting in pursuit of advanced tissue engineering applications , 2022, Bioprinting.
[22] J. Seppälä,et al. Conductive polyurethane/PEGylated graphene oxide composite for 3D-printed nerve guidance conduits , 2022, European Polymer Journal.
[23] G. Bittner,et al. Typical and atypical properties of peripheral nerve allografts enable novel strategies to repair segmental-loss injuries , 2022, Journal of neuroinflammation.
[24] Jianxun Ding,et al. 3D Printed Personalized Nerve Guide Conduits for Precision Repair of Peripheral Nerve Defects , 2022, Advanced science.
[25] Heran Wang,et al. Fabrication of Multi-Channel Nerve Guidance Conduits Containing Schwann Cells Based on Multi-Material 3D Bioprinting , 2022, 3D Printing and Additive Manufacturing.
[26] M. Lezcano,et al. Optimal Morphometric Characteristics of a Tubular Polymeric Scaffold to Promote Peripheral Nerve Regeneration: A Scoping Review , 2022, Polymers.
[27] Justin J Chung,et al. Development of a regenerative porous PLCL nerve guidance conduit with swellable hydrogel-based microgrooved surface pattern via 3D printing. , 2022, Acta biomaterialia.
[28] F. Biscarini,et al. Laser Assisted Bioprinting of laminin on biodegradable PLGA substrates: Effect on neural stem cell adhesion and differentiation , 2022, Bioprinting.
[29] Jie Huang,et al. Neural stem cell-laden 3D bioprinting of polyphenol-doped electroconductive hydrogel scaffolds for enhanced neuronal differentiation. , 2022, Materials science & engineering. C, Materials for biological applications.
[30] Xiaoqin Wang,et al. Implantable nerve guidance conduits: Material combinations, multi-functional strategies and advanced engineering innovations , 2021, Bioactive materials.
[31] Manas Manu,et al. A review of medical device regulations in India, comparison with European Union and way-ahead , 2021, Perspectives in clinical research.
[32] OUP accepted manuscript , 2022, Burns & Trauma.
[33] Dhakshinamoorthy Sundaramurthi,et al. Rationally Designed Self-assembling DNA Biomolecules as a Defined Biomaterial for 3D Bioprinting , 2022, Materials Horizons.
[34] M. I. Ul Haq,et al. 3D printing – A review of processes, materials and applications in industry 4.0 , 2022, Sustainable Operations and Computers.
[35] M. Kolar,et al. Peripheral nerve tissue engineering , 2022, Tissue Engineering Using Ceramics and Polymers.
[36] V. Hasırcı,et al. Fabrication of a 3D Printed PCL Nerve Guide: In Vitro and In Vivo Testing. , 2021, Macromolecular bioscience.
[37] H. Yamane,et al. Design and manufacturing of 3D high-precision micro-fibrous poly (l-lactic acid) scaffold using melt electrowriting technique for bone tissue engineering , 2021 .
[38] S. Kumbar,et al. 3D bioprinting and photocrosslinking: emerging strategies & future perspectives. , 2021, Materials science & engineering. C, Materials for biological applications.
[39] D. Garcia-Gonzalez,et al. Recent advances in hard-magnetic soft composites: Synthesis, characterisation, computational modelling, and applications , 2021, Composite Structures.
[40] Z. Wu,et al. Biocompatibility evaluation of a 3D-bioprinted alginate-GelMA-bacteria nanocellulose (BNC) scaffold laden with oriented-growth RSC96 cells. , 2021, Materials science & engineering. C, Materials for biological applications.
[41] A. Subramanian,et al. Reverse engineering of an anatomically equivalent nerve conduit , 2021, Journal of tissue engineering and regenerative medicine.
[42] S. Hsu,et al. 4D bioprintable self-healing hydrogel with shape memory and cryopreserving properties , 2021, Biofabrication.
[43] N. Cameron,et al. Nerve Guidance Conduit Development for Primary Treatment of Peripheral Nerve Transection Injuries: A Commercial Perspective. , 2021, Acta biomaterialia.
[44] Ans Al Rashid,et al. Natural fiber reinforced composites: Sustainable materials for emerging applications , 2021 .
[45] Ans Al Rashid,et al. Recent advances in nanocellulose-based different biomaterials: types, properties, and emerging applications , 2021 .
[46] K. Nakayama,et al. Bio-3D printing iPSC-derived human chondrocytes for articular cartilage regeneration , 2021, Biofabrication.
[47] A. Tamer,et al. The State of the Art of Material Jetting—A Critical Review , 2021, Polymers.
[48] Jianzhi Li,et al. A State‐of‐the‐Art Review of Laser‐Assisted Bioprinting and its Future Research Trends , 2021, ChemBioEng Reviews.
[49] J. Holland,et al. Effects of Chemical and Radiation Sterilisation on the Biological and Biomechanical Properties of Decellularised Porcine Peripheral Nerves , 2021, Frontiers in Bioengineering and Biotechnology.
[50] S. Geuna,et al. Preclinical study of peripheral nerve regeneration using nerve guidance conduits based on polyhydroxyalkanaotes , 2021, Bioengineering & translational medicine.
[51] Yang Wu. Electrohydrodynamic Jet 3D Printing in Biomedical Applications. , 2021, Acta biomaterialia.
[52] Hongyan Xia,et al. Highly Ordered 3D Tissue Engineering Scaffolds as a Versatile Culture Platform for Nerve Cells Growth. , 2021, Macromolecular bioscience.
[53] Troy Y. Ansell. Current Status of Liquid Metal Printing , 2021, Journal of Manufacturing and Materials Processing.
[54] M. Hacker,et al. Extrusion-Printing of Multi-Channeled Two-Component Hydrogel Constructs from Gelatinous Peptides and Anhydride-Containing Oligomers , 2021, Biomedicines.
[55] F. Chen,et al. The corticospinal tract structure of collagen/silk fibroin scaffold implants using 3D printing promotes functional recovery after complete spinal cord transection in rats , 2021, Journal of Materials Science: Materials in Medicine.
[56] Dhakshinamoorthy Sundaramurthi,et al. Key advances of carboxymethyl cellulose in tissue engineering & 3D bioprinting applications. , 2021, Carbohydrate polymers.
[57] S. Midha,et al. 3D Engineered Peripheral Nerve: Towards A New Era of Patient-Specific Nerve Repair Solutions. , 2021, Tissue engineering. Part B, Reviews.
[58] M. Shie,et al. Additive Manufacturing of Astragaloside-Containing Polyurethane Nerve Conduits Influenced Schwann Cell Inflammation and Regeneration , 2021, Processes.
[59] A. Subramanian,et al. Recent advancements in cardiovascular bioprinting and bioprinted cardiac constructs. , 2021, Biomaterials science.
[60] M. Pagáč,et al. A Review of Vat Photopolymerization Technology: Materials, Applications, Challenges, and Future Trends of 3D Printing , 2021, Polymers.
[61] Dhakshinamoorthy Sundaramurthi,et al. Current standards and ethical landscape of engineered tissues—3D bioprinting perspective , 2021, Journal of tissue engineering.
[62] F. Muhamad,et al. Recent advances in tissue engineering scaffolds based on polyurethane and modified polyurethane. , 2021, Materials science & engineering. C, Materials for biological applications.
[63] J. Phillips,et al. Materials for peripheral nerve repair constructs: Natural proteins or synthetic polymers? , 2020, Neurochemistry International.
[64] J. D. da Silva,et al. 3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats , 2020, Stem cell research & therapy.
[65] Jianzhong Fu,et al. Additive-lathe 3D bioprinting of bilayered nerve conduits incorporated with supportive cells , 2020, Bioactive materials.
[66] C. Stefanini,et al. An overview of extrusion-based bioprinting with a focus on induced shear stress and its effect on cell viability , 2020 .
[67] M. Ramalingam,et al. High-resolution combinatorial 3D printing of gelatin-based biomimetic triple-layered conduits for nerve tissue engineering. , 2020, International journal of biological macromolecules.
[68] Mokarram Hossain,et al. A review on magneto-mechanical characterizations of magnetorheological elastomers , 2020 .
[69] Xianming Deng,et al. A 3D‐Printed Self‐Adhesive Bandage with Drug Release for Peripheral Nerve Repair , 2020, Advanced science.
[70] Lester J. Smith,et al. Three-Dimensional Biofabrication Models of Endometriosis and the Endometriotic Microenvironment , 2020, Biomedicines.
[71] Justin J Chung,et al. Augmented peripheral nerve regeneration through elastic nerve guidance conduits prepared using a porous PLCL membrane with a 3D printed collagen hydrogel. , 2020, Biomaterials science.
[72] Mhd Anas Tomeh,et al. Patterning the neuronal cells via inkjet printing of self-assembled peptides on silk scaffolds , 2020, Progress in Natural Science: Materials International.
[73] Rui Li,et al. Additive Manufacturing of Nerve Guidance Conduits for Regeneration of Injured Peripheral Nerves , 2020, Frontiers in Bioengineering and Biotechnology.
[74] M. García-Alonso,et al. Are the common sterilization methods completely effective for our in-house 3D printed biomodels and surgical guides? , 2020, Injury.
[75] Tao Xu,et al. Inkjet Bioprinting of Biomaterials. , 2020, Chemical reviews.
[76] Jangwook P. Jung,et al. Machine intelligence for nerve conduit design and production , 2020, Journal of Biological Engineering.
[77] M. Gou,et al. 3D‐Printed Nerve Conduits with Live Platelets for Effective Peripheral Nerve Repair , 2020, Advanced Functional Materials.
[78] Yuan Li,et al. 3D Printing and Bioprinting Nerve Conduits for Neural Tissue Engineering , 2020, Polymers.
[79] Yong Huang,et al. Efficacy of Large Groove Texture on Rat Sciatic Nerve Regeneration In Vivo Using Polyacrylonitrile Nerve Conduits , 2020, Annals of Biomedical Engineering.
[80] Qing Gao,et al. 3D printing of gelatin methacrylate-based nerve guidance conduits with multiple channels , 2020 .
[81] Yuting Wang,et al. An injectable high-conductive bimaterial scaffold for neural stimulation. , 2020, Colloids and surfaces. B, Biointerfaces.
[82] Hyoun‐Ee Kim,et al. Tantalum – Poly (L-lactic acid) nerve conduit for peripheral nerve regeneration , 2020, Neuroscience Letters.
[83] Koichi Nakayama,et al. Scaffold‐Free Bio‐3D Printing Using Spheroids as “Bio‐Inks” for Tissue (Re‐)Construction and Drug Response Tests , 2020, Advanced healthcare materials.
[84] K. Nakayama,et al. Osteochondral Regeneration Using Adipose Tissue-Derived Mesenchymal Stem Cells , 2020, International journal of molecular sciences.
[85] J. Suryavanshi,et al. Sutureless repair of a partially transected median nerve using Tisseel glue and Axoguard nerve protector: A case report , 2020, Microsurgery.
[86] Ariel A. Szklanny,et al. Rapid prototyping fabrication of soft and oriented polyester scaffolds for axonal guidance. , 2020, Biomaterials.
[87] Tim B. F. Woodfield,et al. Advances in Hybrid Fabrication toward Hierarchical Tissue Constructs , 2020, Advanced science.
[88] J. Erben,et al. Impact of Various Sterilization and Disinfection Techniques on Electrospun Poly-ε-caprolactone , 2020, ACS omega.
[89] Z. Wu,et al. In vitro and in vivo biocompatibility evaluation of a 3D bioprinted gelatin-sodium alginate/rat Schwann-cell scaffold. , 2020, Materials science & engineering. C, Materials for biological applications.
[90] Thomas Lorson,et al. Sterilization Methods and Their Influence on Physicochemical Properties and Bioprinting of Alginate as a Bioink Component , 2020, ACS omega.
[91] Lianqing Liu,et al. Cross-scale additive direct-writing fabrication of micro/nano lens arrays by electrohydrodynamic jet printing. , 2020, Optics express.
[92] L Papadimitriou,et al. Biofabrication for neural tissue engineering applications , 2020, Materials today. Bio.
[93] A. Varejão,et al. Biomaterials and Cellular Systems at the Forefront of Peripheral Nerve Regeneration , 2020, Peripheral Nerve Disorders and Treatment.
[94] Jianzhong Fu,et al. Fabrication of heterogeneous scaffolds using melt electrospinning writing: Design and optimization , 2020 .
[95] Hui Lin,et al. Development of 3D bioprinting: From printing methods to biomedical applications , 2019, Asian journal of pharmaceutical sciences.
[96] Shuai Wang,et al. Digital Light Processing Based Three-dimensional Printing for Medical Applications , 2019, International journal of bioprinting.
[97] R. Reis,et al. Modern Trends for Peripheral Nerve Repair and Regeneration: Beyond the Hollow Nerve Guidance Conduit , 2019, Front. Bioeng. Biotechnol..
[98] Mark H. Gonzalez,et al. Mechanical Properties of the Human Tibial and Peroneal Nerves Following Stretch With Histological Correlations , 2019, Anatomical record.
[99] J. Fuh,et al. 3D-Printed PCL/PPy Conductive Scaffolds as Three-Dimensional Porous Nerve Guide Conduits (NGCs) for Peripheral Nerve Injury Repair , 2019, Front. Bioeng. Biotechnol..
[100] Yi-Wen Chen,et al. Additive Manufacturing of Nerve Decellularized Extracellular Matrix-Contained Polyurethane Conduits for Peripheral Nerve Regeneration , 2019, Polymers.
[101] C. Fan,et al. Advances in electrical and magnetic stimulation on nerve regeneration. , 2019, Regenerative medicine.
[102] Mitchell A. Kuss,et al. Development of Cryogel-Based Guidance Conduit for Peripheral Nerve Regeneration. , 2019, ACS applied bio materials.
[103] Deying Zhang,et al. LIFT-bioprinting, is it worth it? , 2019, Bioprinting.
[104] Tien-Min G. Chu,et al. Scaffold-free Bioprinting of Mesenchymal Stem Cells with the Regenova Printer: Optimization of Printing Parameters. , 2019, Bioprinting.
[105] Pei-yan Shan,et al. Controlled degradable chitosan/collagen composite scaffolds for application in nerve tissue regeneration , 2019, Polymer Degradation and Stability.
[106] Mohd Javaid,et al. 5D printing and its expected applications in Orthopaedics. , 2019, Journal of clinical orthopaedics and trauma.
[107] S. Houshyar,et al. Peripheral Nerve Conduit: Materials and Structures. , 2019, ACS chemical neuroscience.
[108] K. Nakayama,et al. The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study , 2019, Cell transplantation.
[109] Y. S. Zhang,et al. Effective bioprinting resolution in tissue model fabrication. , 2019, Lab on a chip.
[110] Ludwig Cardon,et al. Rapid 3D printing of functional nanoparticle-enhanced conduits for effective nerve repair. , 2019, Acta biomaterialia.
[111] Shuo Zhang,et al. Computational Design and Optimization of Nerve Guidance Conduits for Improved Mechanical Properties and Permeability. , 2019, Journal of biomechanical engineering.
[112] Xiongbiao Chen,et al. Indirect 3D bioprinting and characterization of alginate scaffolds for potential nerve tissue engineering applications. , 2019, Journal of the mechanical behavior of biomedical materials.
[113] Peixun Zhang,et al. Expanded 3D nanofibre sponge scaffolds by gas-foaming technique enhance peripheral nerve regeneration , 2019, Artificial cells, nanomedicine, and biotechnology.
[114] Zeus Yiwei Lim,et al. Biomechanical evaluation of peripheral nerves after crush injuries , 2019, Heliyon.
[115] Ines C. Lin,et al. A Systematic Review of Sensory Outcomes of Digital Nerve Gap Reconstruction With Autograft, Allograft, and Conduit , 2019, Annals of plastic surgery.
[116] A. Sułowska,et al. Medical-Grade PCL Based Polyurethane System for FDM 3D Printing—Characterization and Fabrication , 2019, Materials.
[117] S. Mallapragada,et al. Development of Gelatin and Graphene-Based Nerve Regeneration Conduits Using Three-Dimensional (3D) Printing Strategies for Electrical Transdifferentiation of Mesenchymal Stem Cells , 2019, Industrial & Engineering Chemistry Research.
[118] Wen Feng Lu,et al. Electrohydrodynamic jet 3D-printed PCL/PAA conductive scaffolds with tunable biodegradability as nerve guide conduits (NGCs) for peripheral nerve injury repair , 2019, Materials & Design.
[119] A. Lode,et al. 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 , 2019, Journal of Materials Science: Materials in Medicine.
[120] Jack G. Zhou,et al. Mechanisms and modeling of electrohydrodynamic phenomena , 2018, International journal of bioprinting.
[121] Jack Zhou,et al. Designs and applications of electrohydrodynamic 3D printing , 2018, International journal of bioprinting.
[122] J. Fuh,et al. 3D-Printed PCL/rGO Conductive Scaffolds for Peripheral Nerve Injury Repair. , 2018, Artificial organs.
[123] Rohaizan Ramlan,et al. An Overview on 3D Printing Technology: Technological, Materials, and Applications , 2019, Procedia Manufacturing.
[124] Flaviu Moldovan,et al. Recent Trends in Bioprinting , 2019, Procedia Manufacturing.
[125] Sheng-Hao Hsu,et al. Characterization of designed directional polylactic acid 3D scaffolds for neural differentiation of human dental pulp stem cells. , 2019, Journal of the Formosan Medical Association = Taiwan yi zhi.
[126] J. Seppälä,et al. Biomimetic Photocurable Three-Dimensional Printed Nerve Guidance Channels with Aligned Cryomatrix Lumen for Peripheral Nerve Regeneration. , 2018, ACS applied materials & interfaces.
[127] Wei Zhu,et al. Rapid continuous 3D printing of customizable peripheral nerve guidance conduits. , 2018, Materials today.
[128] Ralf Smeets,et al. An Introduction to 3D Bioprinting: Possibilities, Challenges and Future Aspects , 2018, Materials.
[129] A. Seifalian,et al. Evaluation of Sterilisation Techniques for Regenerative Medicine Scaffolds Fabricated with Polyurethane Nonbiodegradable and Bioabsorbable Nanocomposite Materials , 2018, International journal of biomaterials.
[130] M. Becker,et al. Synthesis and 3D Printing of PEG-Poly(propylene fumarate) Diblock and Triblock Copolymer Hydrogels. , 2018, ACS macro letters.
[131] John W Haycock,et al. Additive manufactured biodegradable poly(glycerol sebacate methacrylate) nerve guidance conduits. , 2018, Acta biomaterialia.
[132] Tao Xu,et al. 3D bioprinted rat Schwann cell-laden structures with shape flexibility and enhanced nerve growth factor expression , 2018, 3 Biotech.
[133] Lang Xia,et al. Stereolithographic 4D Bioprinting of Multiresponsive Architectures for Neural Engineering , 2018, Advanced biosystems.
[134] Wai Yee Yeong,et al. 3D bioprinting processes: A perspective on classification and terminology , 2018, International journal of bioprinting.
[135] Sanjairaj Vijayavenkataraman,et al. Electrohydrodynamic Jet 3D Printed Nerve Guide Conduits (NGCs) for Peripheral Nerve Injury Repair , 2018, Polymers.
[136] David J Schreyer,et al. Strategic Design and Fabrication of Nerve Guidance Conduits for Peripheral Nerve Regeneration , 2018, Biotechnology journal.
[137] X. Jia,et al. Biomimetic neural scaffolds: a crucial step towards optimal peripheral nerve regeneration. , 2018, Biomaterials science.
[138] Onur Bas,et al. Melt Electrospinning Writing of Highly Ordered Large Volume Scaffold Architectures , 2018, Advanced materials.
[139] Silvestro Micera,et al. Biomimetic Architectures for Peripheral Nerve Repair: A Review of Biofabrication Strategies , 2018, Advanced healthcare materials.
[140] Sha Jin,et al. Tissue and Organ 3D Bioprinting , 2018, SLAS technology.
[141] Wei Zhu,et al. 3D printing nano conductive multi-walled carbon nanotube scaffolds for nerve regeneration , 2018, Journal of neural engineering.
[142] G. Kaka,et al. Comparison of neuroregeneration in central nervous system and peripheral nervous system , 2018 .
[143] Michael K. Matthew,et al. Freeze-cast Porous Chitosan Conduit for Peripheral Nerve Repair , 2018, MRS advances.
[144] M. Shie,et al. Biodegradable Bisvinyl Sulfonemethyl-crosslinked Gelatin Conduit Promotes Regeneration after Peripheral Nerve Injury in Adult Rats , 2017, Scientific Reports.
[145] M. Grant,et al. iPSC-Derived Vascular Cell Spheroids as Building Blocks for Scaffold-Free Biofabrication. , 2017, Biotechnology journal.
[146] J. Shea,et al. Novel drug delivering conduit for peripheral nerve regeneration , 2017, Journal of neural engineering.
[147] P. Serra,et al. Laser-induced forward transfer: Propelling liquids with light , 2017 .
[148] D. Kalyon,et al. Melt Electrospinning Writing Process Guided by a “Printability Number” , 2017 .
[149] R. Mülhaupt,et al. Polymers for 3D Printing and Customized Additive Manufacturing , 2017, Chemical reviews.
[150] Efthymios Maneas,et al. From medical imaging data to 3D printed anatomical models , 2017, PloS one.
[151] K. Gong,et al. Chitosan nerve conduits seeded with autologous bone marrow mononuclear cells for 30 mm goat peroneal nerve defect , 2017, Scientific Reports.
[152] K. Nakayama,et al. The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model , 2017, PloS one.
[153] Wei Zhu,et al. Development of Novel 3-D Printed Scaffolds With Core-Shell Nanoparticles for Nerve Regeneration , 2017, IEEE Transactions on Biomedical Engineering.
[154] P. Tran,et al. Combining mechanical foaming and thermally induced phase separation to generate chitosan scaffolds for soft tissue engineering , 2017, Journal of biomaterials science. Polymer edition.
[155] A. Subramanian,et al. Self-assembling peptide nanostructures on aligned poly(lactide-co-glycolide) nanofibers for the functional regeneration of sciatic nerve. , 2017, Nanomedicine.
[156] Koichi Nakayama,et al. Principles of the Kenzan Method for Robotic Cell Spheroid-Based Three-Dimensional Bioprinting. , 2016, Tissue engineering. Part B, Reviews.
[157] B. Sridhar Babu,et al. A Critical Review on Recent Research Methodologies in Additive Manufacturing , 2017 .
[158] Jiankang He,et al. 3D-engineering of Cellularized Conduits for Peripheral Nerve Regeneration , 2016, Scientific Reports.
[159] R. Soares,et al. Designing Biomaterials for 3D Printing. , 2016, ACS biomaterials science & engineering.
[160] X. Mo,et al. Nerve conduits constructed by electrospun P(LLA-CL) nanofibers and PLLA nanofiber yarns. , 2015, Journal of materials chemistry. B.
[161] Michael C. McAlpine,et al. 3D Printed Anatomical Nerve Regeneration Pathways , 2015, Advanced functional materials.
[162] Q. Ao,et al. Past, Present, and Future of Nerve Conduits in the Treatment of Peripheral Nerve Injury , 2015, BioMed research international.
[163] Prakhar Mishra,et al. The overwhelming use of rat models in nerve regeneration research may compromise designs of nerve guidance conduits for humans , 2015, Journal of Materials Science: Materials in Medicine.
[164] Yong Huang,et al. Time-Resolved Imaging Study of Jetting Dynamics during Laser Printing of Viscoelastic Alginate Solutions. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[165] Jia Li,et al. Inkjet printing for biosensor fabrication: combining chemistry and technology for advanced manufacturing. , 2015, Lab on a chip.
[166] Mireya A. Perez,et al. Single-Lumen and Multi-Lumen Poly(Ethylene Glycol) Nerve Conduits Fabricated by Stereolithography for Peripheral Nerve Regeneration In Vivo , 2015, Journal of Reconstructive Microsurgery.
[167] L. Koch,et al. Laser-based 3D cell printing for tissue engineering , 2014 .
[168] M. Romero-Ortega,et al. Peripheral Nerve Reconstruction after Injury: A Review of Clinical and Experimental Therapies , 2014, BioMed research international.
[169] Bai-Shuan Liu,et al. Roles of reinforced nerve conduits and low-level laser phototherapy for long gap peripheral nerve repair , 2014, Neural regeneration research.
[170] Kevin C. Chen,et al. Scaffolds from block polyurethanes based on poly(ɛ-caprolactone) (PCL) and poly(ethylene glycol) (PEG) for peripheral nerve regeneration. , 2014, Biomaterials.
[171] V. Hasırcı,et al. Multiwalled CNT-pHEMA composite conduit for peripheral nerve repair. , 2014, Journal of biomedical materials research. Part A.
[172] J. Isaacs,et al. Overcoming short gaps in peripheral nerve repair: conduits and human acellular nerve allograft , 2014, Hand.
[173] F. Siemers,et al. Removal of Collagen Nerve Conduits (NeuraGen) after Unsuccessful Implantation: Focus on Histological Findings , 2013, Journal of Reconstructive Microsurgery.
[174] S. Mackinnon,et al. Tissue engineered constructs for peripheral nerve surgery , 2013, European Surgery.
[175] A. Seifalian,et al. Biochemical engineering nerve conduits using peptide amphiphiles. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[176] Peter Dubruel,et al. A review of trends and limitations in hydrogel-rapid prototyping for tissue engineering. , 2012, Biomaterials.
[177] Jingyan Dong,et al. Photocured biodegradable polymer substrates of varying stiffness and microgroove dimensions for promoting nerve cell guidance and differentiation. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[178] J. Priestley,et al. Regenerative potential of silk conduits in repair of peripheral nerve injury in adult rats. , 2012, Biomaterials.
[179] N. Maffulli,et al. Non-surgical therapies for peripheral nerve injury. , 2011, British medical bulletin.
[180] T. Okano,et al. PLGA artificial nerve conduits with dental pulp cells promote facial nerve regeneration , 2011, Journal of tissue engineering and regenerative medicine.
[181] M. Steed. Peripheral nerve response to injury. , 2011, Atlas of the Oral and Maxillofacial Surgery Clinics.
[182] Tze-Wen Chung,et al. Promoting regeneration of peripheral nerves in-vivo using new PCL-NGF/Tirofiban nerve conduits. , 2011, Biomaterials.
[183] Sandra Downes,et al. Novel thin-walled nerve conduit with microgrooved surface patterns for enhanced peripheral nerve repair , 2010, Journal of materials science. Materials in medicine.
[184] S. Mackinnon,et al. Management of nerve gaps: Autografts, allografts, nerve transfers, and end-to-side neurorrhaphy , 2010, Experimental Neurology.
[185] M. Yaszemski,et al. Designing ideal conduits for peripheral nerve repair. , 2009, Neurosurgical focus.
[186] Christina K. Magill,et al. Limitations of Conduits in Peripheral Nerve Repairs , 2009, Hand.
[187] Qiong Wu,et al. Evaluation of poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) conduits for peripheral nerve regeneration. , 2009, Biomaterials.
[188] A. L. R. de Oliveira,et al. Peripheral nerve regeneration through biodegradable conduits prepared using solvent evaporation. , 2008, Tissue engineering. Part A.
[189] Michael B Chen,et al. Luminal Fillers in Nerve Conduits for Peripheral Nerve Repair , 2006, Annals of plastic surgery.
[190] S. Hall. The response to injury in the peripheral nervous system. , 2005, The Journal of bone and joint surgery. British volume.
[191] Marcel F Meek,et al. A prospective clinical evaluation of biodegradable neurolac nerve guides for sensory nerve repair in the hand. , 2005, The Journal of hand surgery.
[192] Chou-Ching K. Lin,et al. Transverse elasticity of rabbit sciatic nerves tested by in vitro compression , 2004 .
[193] K. Varahramyan,et al. Fabrication and characterization of polymeric p-channel junction FETs , 2004, IEEE Transactions on Electron Devices.
[194] G. Borschel,et al. Mechanical properties of acellular peripheral nerve. , 2003, The Journal of surgical research.
[195] R. Weber,et al. A Randomized Prospective Study of Polyglycolic Acid Conduits for Digital Nerve Reconstruction in Humans , 2000, Plastic and reconstructive surgery.
[196] Z. Stanec,et al. Ulnar nerve reconstruction with an expanded polytetrafluoroethylene conduit. , 1998, British journal of plastic surgery.
[197] M. Jaweed. Peripheral Nerve Regeneration , 1994 .
[198] N. Ames,et al. Diseases of the peripheral nerves. , 1987, The Veterinary clinics of North America. Food animal practice.