[1] |
Pucci JU, Christophe BR, Sisti JA, et al. Three-dimensional printing: technologies, applications, and limitations in neurosurgery[J]. Biotechnol Adv, 2017, 35(5):521-529.
|
[2] |
Park EK, Lim JY, Yun IS, et al. Cranioplasty enhanced by three-dimensional printing: custom-made three-dimensional-printed titanium implants for skull defects[J]. J Craniofac Surg, 2016, 27(4):943-949.
|
[3] |
Abdel Hay J, Smayra T, Moussa R. Customized polymethylmethacrylate cranioplasty implants using 3-dimensional printed polylactic acid molds: technical note with 2 illustrative cases[J]. World Neurosurg, 2017, 105:971-979.
|
[4] |
Maduri R, Viaroli E, Levivier M, et al. Use of a 3D skull model to improve accuracy in cranioplasty for autologous flap resorption in a 3-year-old child[J]. Pediatr Neurosurg, 2017, 52(5):351-355.
|
[5] |
Ahmed S, Vankoevering KK, Kline S, et al. Middle cranial fossa approach to repair tegmen defects assisted by three-dimensionally printed temporal bone models[J]. Laryngoscope, 2017, 127(10):2347-2351.
|
[6] |
Grau S, Kellermann S, Faust M, et al. Repair of cerebrospinal fluid leakage using a transfrontal, radial adipofascial flap an individual approach supported by 3D-printing for surgical planning[J]. World Neurosurg, 2017, 110:315-318.
|
[7] |
Coelho G, Chaves TMF, Goes AF, et al. Multimaterial 3D printing preoperative planning for frontoethmoidal meningoencephalocele surgery[J]. Childs Nerv Syst, 2017, 2018, 34(4):749-756.
|
[8] |
Ghizoni E, de Souza JPSAS, Raposo-Amaral CE, et al. 3D-printed craniosynostosis model: new simulation surgical tool[J]. World Neurosurg, 2018, 109:356-361.
|
[9] |
Ryan JR, Almefty KK, Nakaji P, et al. Cerebral aneurysm clipping surgery simulation using patient-specific 3D printing and silicone casting[J]. World Neurosurg, 2016, 88:175-181.
|
[10] |
Konno T, Mashiko T, Oguma H, et al. Rapid 3-dimensional models of cerebral aneurysm for emergency surgical clipping[J]. No Shinkei Geka, 2016, 44(8):651-660.
|
[11] |
Kaneko N, Mashiko T, Namba K, et al. A patient-specific intracranial aneurysm model with endothelial lining: a novel in vitro approach to bridge the gap between biology and flow dynamics[J]. J Neurointerv Surg, 2018, 10(3):306-309.
|
[12] |
Abla AA, Lawton MT. Three-dimensional hollow intracranial aneurysm models and their potential role for teaching, simulation, and training[J]. World Neurosurg, 2015, 83(1):35-36.
|
[13] |
Conti A, Pontoriero A, Iati G, et al. 3D-printing of arteriovenous malformations for radiosurgical treatment: pushing anatomy understanding to real boundaries[J]. Cureus, 2016, 8(4):e594.
|
[14] |
陈光忠,李鉴轶,秦琨,等. 3D打印技术在颅内动静脉畸形血管内介入治疗中的初步应用[J].中国脑血管病杂志, 2016, 13(1):25-28.
|
[15] |
李鉴轶,孔祥雪,王张林,等. CT与3D-DSA数据源在颅内动静脉畸形3D打印中的初步应用[J].中国脑血管病杂志, 2016, 13(2):78-81.
|
[16] |
Muelleman TJ, Peterson J, Chowdhury NI, et al. Individualized Surgical Approach Planning for Petroclival Tumors Using a 3D Printer[J]. J Neurol Surg B Skull Base, 2016, 77(3):243-248.
|
[17] |
Kondo K, Harada N, Masuda H, et al. A neurosurgical simulation of skull base tumors using a 3D printed rapid prototyping model containing mesh structures[J]. Acta Neurochir (Wien), 2016, 158(6):1213-1219.
|
[18] |
3D打印助颅底肿瘤精准切除[J].中国信息界-e医疗, 2014, (2):13.
|
[19] |
林继业,文平,柯以铨,等. 3D打印技术在颅底外科手术规划中的应用[J].中华神经医学杂志, 2016, 15(12):1240-1245.
|
[20] |
Choy WJ, Mobbs RJ, Wilcox B, et al. Reconstruction of thoracic spine using a personalized 3D-printed vertebral body in adolescent with T9 primary bone tumor[J]. World Neurosurg, 2017, 105:1013-1032.
|
[21] |
Liew Y, Beveridge E, Demetriades AK, et al. 3D printing of patient-specific anatomy: a tool to improve patient consent and enhance imaging interpretation by trainees[J]. Br J Neurosurg, 2015, 29(5):712-714.
|
[22] |
The utility of 3D printing for surgical planning and patient-specific implant design for complex spinal pathologies: case report[J]. J Neurosurg Spine, 2017, 26(4):513-518.
|
[23] |
庞骄阳,赵岩,肖宇龙,等. 3D打印技术在脊柱外科的应用[J].中国组织工程研究, 2016, 20(4):577-582.
|
[24] |
赵波,刘颖,邱晓文,等. 3D打印技术在脊柱外科手术教学和训练中的应用[J].中国医学教育技术, 2015, 29(5):547-549.
|
[25] |
张明,吴媛,王睿智,等. 3D打印互动教学在神经外科医师规范化培训中的应用[J].基础医学教育, 2016, 18(11):927-930, 931.
|
[26] |
Govsa F, Karakas AB, Ozer MA, et al. Development of life-size patient-specific 3D-printed dural venous models for preoperative planning[J]. World Neurosurg, 2018, 110:e141-e149.
|
[27] |
Bannon R, Parihar S, Skarparis Y, et al. 3D printing the pterygopalatine fossa: a negative space model of a complex structure[J]. Surg Radiol Anat, 2018, 40(2):185-191.
|
[28] |
Weinstock P, Rehder R, Prabhu SP, et al. Creation of a novel simulator for minimally invasive neurosurgery: fusion of 3D printing and special effects[J]. J Neurosurg Pediatr, 2017, 20(1):1-9.
|
[29] |
Hung BP, Naved BA, Nyberg EL, et al. Three-dimensional printing of bone extracellular matrix for craniofacial regeneration[J]. ACS Biomater Sci Eng, 2016, 2(10):1806-1816.
|
[30] |
Hu Y, Wu Y, Gou Z, et al. 3D-engineering of cellularized conduits for peripheral nerve regeneration[J]. Sci Rep, 2016, 6:32184.
|
[31] |
Singhal AJ, Shetty V, Bhagavan KR, et al. Improved surgery planning using 3-D printing: a case study[J]. Indian J Surg, 2016, 78(2):100-104.
|
[32] |
Waran V, Narayanan V, Karuppiah R, et al. Utility of multimaterial 3D printers in creating models with pathological entities to enhance the training experience of neurosurgeons[J]. J Neurosurg, 2014, 120(2):489-492.
|