A Point-of-Care Digital Workflow for 3D Printed Passive Presurgical Orthopedic Plates in Cleft Care

被引:10
|
作者
Zarean, Parichehr [1 ,2 ]
Zarean, Paridokht [1 ,2 ]
Thieringer, Florian M. [1 ,2 ]
Mueller, Andreas A. [1 ,3 ,4 ]
Kressmann, Sabine [1 ]
Erismann, Martin [1 ,3 ,4 ]
Sharma, Neha [1 ,2 ]
Benitez, Benito K. [1 ,3 ,4 ]
机构
[1] Univ Basel, Univ Hosp Basel, Oral & Craniomaxillofacial Surg, Spitalstr 21, CH-4031 Basel, Switzerland
[2] Univ Basel, Dept Biomed Engn, Med Addit Mfg Res Grp Swiss MAM, Gewerbestr 14, CH-4123 Allschwil, Switzerland
[3] Univ Basel, Dept Clin Res, Facial & Cranial Anomalies Res Grp, Spitalstr 12, CH-4031 Basel, Switzerland
[4] Univ Basel, Dept Biomed Engn, Spitalstr 12, CH-4031 Basel, Switzerland
来源
CHILDREN-BASEL | 2022年 / 9卷 / 08期
关键词
cleft lip; cleft palate; 3-Dimensional printing; computer-aided design; presurgical orthopedics; intraoral scanning; LIP; INFANTS; APPLIANCE; REPAIR; NOSE;
D O I
10.3390/children9081261
中图分类号
R72 [儿科学];
学科分类号
100202 ;
摘要
Cleft lip and palate are one of the most common congenital craniofacial malformations. As an initial treatment, presurgical orthopedics is considered standard treatment at many cleft centers. Digital impressions are becoming feasible in cleft care. Computer-aided design (CAD) and three-dimensional (3D) printing are manufacturing standards in dentistry. The assimilation of these technologies has the potential to alter the traditional workflow for the fabrication of customized presurgical orthopedic plates. We present a digital workflow comprising three steps: 3D digital image acquisition with an intraoral scanner, open-source CAD modeling, and point-of-care 3D printing for the fabrication of personalized passive presurgical plates for newborns with cleft lip and palate. The digital workflow resulted in patient-related benefits, such as no risk of airway obstruction with quicker data acquisition (range 1-2.5 min). Throughput time was higher in the digital workflow 260-350 min compared to 135 min in the conventional workflow. The manual and personal intervention time was reduced from 135 min to 60 min. We show a clinically useful digital workflow for presurgical plates in cleft treatment. Once care providers overcome procurement costs, digital impressions, and point-of-care 3D printing will simplify these workflows and have the potential to become standard for cleft care.
引用
下载
收藏
页数:12
相关论文
共 50 条
  • [41] Point-of-care blood coagulation assay enabled by printed circuit board-based digital microfluidics
    Li, Donghao
    Liu, Xinyu
    Chai, Yujuan
    Shan, Jieying
    Xie, Yihan
    Liang, Yong
    Huang, Susu
    Zheng, Weidong
    Li, Zida
    LAB ON A CHIP, 2022, 22 (04) : 709 - 716
  • [42] The Global Care Ecosystems of 3D Printed Assistive Devices
    Savage, Saiph
    Flores-Saviaga, Claudia
    Rodney, Rachel
    Savage, Liliana
    Schull, Jon
    Mankoff, Jennifer
    ACM TRANSACTIONS ON ACCESSIBLE COMPUTING, 2022, 15 (04)
  • [43] Open-source, 3D-printed Peristaltic Pumps for Small Volume Point-of-Care Liquid Handling
    Behrens, Michael R.
    Fuller, Haley C.
    Swist, Emily R.
    Wu, Jingwen
    Islam, Md. Mydul
    Long, Zhicheng
    Ruder, Warren C.
    Steward, Robert, Jr.
    SCIENTIFIC REPORTS, 2020, 10 (01)
  • [44] Open-source, 3D-printed Peristaltic Pumps for Small Volume Point-of-Care Liquid Handling
    Michael R. Behrens
    Haley C. Fuller
    Emily R. Swist
    Jingwen Wu
    Md. Mydul Islam
    Zhicheng Long
    Warren C. Ruder
    Robert Steward
    Scientific Reports, 10
  • [45] Quantitative Assessment of Point-of-Care 3D-Printed Patient-Specific Polyetheretherketone (PEEK) Cranial Implants
    Sharma, Neha
    Aghlmandi, Soheila
    Dalcanale, Federico
    Seiler, Daniel
    Zeilhofer, Hans-Florian
    Honigmann, Philipp
    Thieringer, Florian M.
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (16)
  • [46] 3D PRINTING OF MICROFLUIDICS FOR POINT OF CARE DIAGNOSIS
    Sibbitt, John P.
    He, Mei
    PROCEEDINGS OF THE ASME 12TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE - 2017, VOL 4, 2017,
  • [47] 3D microfluidic origami electrochemiluminescence immunodevice for sensitive point-of-care testing of carcinoma antigen 125
    Wang, Shaowei
    Ge, Lei
    Yan, Mei
    Yu, Jinghua
    Song, Xianrang
    Ge, Shenguang
    Huang, Jiadong
    SENSORS AND ACTUATORS B-CHEMICAL, 2013, 176 : 1 - 8
  • [48] Point-of-care 3D printing: a low-cost approach to teaching carotid artery stenting
    Pieter De Backer
    Charlotte Allaeys
    Charlotte Debbaut
    Roel Beelen
    3D Printing in Medicine, 7
  • [49] A Portable Electrochemical Platform Integrated with a 3D AuNPs/CNTs Sponge for Point-of-Care Testing of Neurotransmitters
    Li, Yingchun
    Li, Zedong
    Liu, Hao
    Chen, Siyue
    Guo, Xiaojin
    Lin, Min
    Li, Fei
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2019, 166 (06) : B524 - B531
  • [50] 3D microelectrode arrays, pushing the bounds of sensitivity toward a generic platform for point-of-care diagnostics
    Ko, Danny Hsu
    Bates, David
    Karaosmanoglu, Hande
    Taredun, Karl
    Elton, Clare
    Jones, Leonie
    Hosseini, Ali
    Partridge, Ashton
    BIOSENSORS & BIOELECTRONICS, 2023, 227