Implementation of an In-House 3D Manufacturing Unit in a Public Hospital's Radiology Department

被引:3
作者
Garcia, Ruben, I [1 ,2 ,3 ]
Jauregui, Ines [1 ]
del Amo, Cristina [1 ]
Gandiaga, Ainhoa [4 ]
Rodriguez, Olivia [4 ]
Margallo, Leyre [5 ]
Voces, Roberto [6 ]
Martin, Nerea [7 ]
Gallego, Ines [3 ]
Minguez, Rikardo [2 ]
Eguiraun, Harkaitz [2 ,8 ]
机构
[1] Biocruces Bizkaia Hlth Res Inst, 3D Printing & Bioprinting Lab, Plaza Cruces S-N, Baracaldo 48903, Spain
[2] Univ Basque Country UPV EHU, Fac Engn Bilbao, Dept Graph Design & Engn Projects, Plaza Ingeniero Torres Quevedo 1, Bilbao 48013, Spain
[3] Cruces U Hosp, Innovat & Qual Dept, Plaza Cruces S-N, Baracaldo 48903, Spain
[4] Cruces U Hosp, Radiol Dept, Plaza Cruces S-N, Baracaldo 48903, Spain
[5] Cruces U Hosp, Maxillofacial Dept, Plaza Cruces S-N, Baracaldo 48903, Spain
[6] Cruces U Hosp, Cardiovasc Dept, Plaza Cruces S-N, Baracaldo 48903, Spain
[7] Cruces U Hosp, Traumatol Dept, Plaza Cruces S-N, Baracaldo 48903, Spain
[8] Univ Basque Country PiE UPV EHU, Res Ctr Expt Marine Biol & Biotechnol, Areatza Pasealekua 47, Plentzia 48620, Spain
基金
英国科研创新办公室;
关键词
public healthcare; radiology; sustainable development; additive manufacturing; SURGERY; TECHNOLOGY; PRINCIPLES; DESIGN;
D O I
10.3390/healthcare10091791
中图分类号
R19 [保健组织与事业(卫生事业管理)];
学科分类号
摘要
Objective: Three-dimensional printing has become a leading manufacturing technique in healthcare in recent years. Doubts in published studies regarding the methodological rigor and cost-effectiveness and stricter regulations have stopped the transfer of this technology in many healthcare organizations. The aim of this study was the evaluation and implementation of a 3D printing technology service in a radiology department. Methods: This work describes a methodology to implement a 3D printing service in a radiology department of a Spanish public hospital, considering leadership, training, workflow, clinical integration, quality processes and usability. Results: The results correspond to a 6-year period, during which we performed up to 352 cases, requested by 85 different clinicians. The training, quality control and processes required for the scaled implementation of an in-house 3D printing service are also reported. Conclusions: Despite the maturity of the technology and its impact on the clinic, it is necessary to establish new workflows to correctly implement them into the strategy of the health organization, adjusting it to the needs of clinicians and to their specific resources. Significance: This work allows hospitals to bridge the gap between research and 3D printing, setting up its transfer to clinical practice and using implementation methodology for decision support.
引用
收藏
页数:19
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共 62 条
  • [21] Developing an In-house Interdisciplinary Three-Dimensional Service: Challenges, Benefits, and Innovative Health Care Solutions
    Hatamleh, Muhanad M.
    Ong, Juling
    Hatamleh, Zaydoon Mohammad
    Watson, Jason
    Huppa, Chrisopher
    [J]. JOURNAL OF CRANIOFACIAL SURGERY, 2018, 29 (07) : 1870 - 1875
  • [22] No Surgical Innovation Without Evaluation Evolution and Further Development of the IDEAL Framework and Recommendations
    Hirst, Allison
    Philippou, Yiannis
    Blazeby, Jane
    Campbell, Bruce
    Campbell, Marion
    Feinberg, Joshua
    Rovers, Maroeska
    Blencowe, Natalie
    Pennell, Christopher
    Quinn, Tom
    Rogers, Wendy
    Cook, Jonathan
    Kolias, Angelos G.
    Agha, Riaz
    Dahm, Philipp
    Sedrakyan, Art
    McCulloch, Peter
    [J]. ANNALS OF SURGERY, 2019, 269 (02) : 211 - 220
  • [23] Surgical applications of three-dimensional printing: a review of the current literature & how to get started
    Hoang, Don
    Perrault, David
    Stevanovic, Milan
    Ghiassi, Alidad
    [J]. ANNALS OF TRANSLATIONAL MEDICINE, 2016, 4 (23)
  • [24] Computer-Aided Design and 3D Printing of Hemipelvic Endoprosthesis for Personalized Limb-Salvage Reconstruction after Periacetabular Tumor Resection
    Hu, Xianglin
    Chen, Yong
    Cai, Weiluo
    Cheng, Mo
    Yan, Wangjun
    Huang, Wending
    [J]. BIOENGINEERING-BASEL, 2022, 9 (08):
  • [25] Jacobs G., 2017, PERSON CENTRED HEALT, P61
  • [26] Three-dimensional printing in orthopaedic preoperative planning improves intraoperative metrics: a systematic review
    Jiang, Michael
    Chen, Gordon
    Coles-Black, Jasamine
    Chuen, Jason
    Hardidge, Andrew
    [J]. ANZ JOURNAL OF SURGERY, 2020, 90 (03) : 243 - 250
  • [27] Three-Dimensional Printing: Basic Principles and Applications in Medicine and Radiology
    Kim, Guk Bae
    Lee, Sangwook
    Kim, Haekang
    Yang, Dong Hyun
    Kim, Young-Hak
    Kyung, Yoon Soo
    Kim, Choung-Soo
    Choi, Se Hoon
    Kim, Bum Joon
    Ha, Hojin
    Kwon, Sun U.
    Kim, Namkug
    [J]. KOREAN JOURNAL OF RADIOLOGY, 2016, 17 (02) : 182 - 197
  • [28] Systematic Review of the Use of 3-Dimensional Printing in Surgical Teaching and Assessment
    Langridge, Benjamin
    Momin, Sheikh
    Coumbe, Ben
    Woin, Evelina
    Griffin, Michelle
    Butler, Peter
    [J]. JOURNAL OF SURGICAL EDUCATION, 2018, 75 (01) : 209 - 221
  • [29] Value of 3D printing for the comprehension of surgical anatomy
    Marconi, Stefania
    Pugliese, Luigi
    Botti, Marta
    Peri, Andrea
    Cavazzi, Emma
    Latteri, Saverio
    Auricchio, Ferdinando
    Pietrabissa, Andrea
    [J]. SURGICAL ENDOSCOPY AND OTHER INTERVENTIONAL TECHNIQUES, 2017, 31 (10): : 4102 - 4110
  • [30] Advantages and disadvantages of 3-dimensional printing in surgery: A systematic review
    Martelli, Nicolas
    Serrano, Carole
    van den Brink, Helene
    Pineau, Judith
    Prognon, Patrice
    Borget, Isabelle
    El Batti, Salma
    [J]. SURGERY, 2016, 159 (06) : 1485 - 1500