Polyurethane-based three-dimensional printing for biological mesh carriers

被引:0
|
作者
Wang, Feng [1 ]
Hou, Lin [2 ]
Shan, Yan-Hui [2 ]
Li, Zhen-Su [1 ]
Yang, Xiao-Feng [3 ]
机构
[1] Shanxi Med Univ, Hosp 1, Dept Gen Surg, Taiyuan 030001, Shanxi, Peoples R China
[2] Shanxi Med Univ, Clin Coll 1, Taiyuan 030001, Shanxi, Peoples R China
[3] Shanxi Med Univ, Hosp 1, Dept Urol, Taiyuan 030001, Shanxi, Peoples R China
来源
SCIENTIFIC REPORTS | 2024年 / 14卷 / 01期
关键词
PELVIC ORGAN PROLAPSE; REPAIR;
D O I
10.1038/s41598-024-63000-3
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Repair and reconstruction of the myopectineal orifice area using meshes is the mainstay of surgical treatment of inguinal hernias. However, the limitations of existing meshes are becoming increasingly evident in clinical applications; thus, the idea of using three-dimensionally (3D)-printed biological meshes was put forward. According to the current level of the 3D printing technology and the inherent characteristics of biological materials, the direct use of the 3D printing technology for making biological materials into finished products suitable for clinical applications is not yet supported, but synthetic materials can be first printed into 3D form carriers, compounded with biological materials, and finally made into finished products. The purpose of this study was to develop a technical protocol for making 3D-printed biomesh carriers using polyurethane as a raw material. In our study: raw material, polyurethane; weight, 20-30 g/m2; weaving method, hexagonal mesh; elastic tension aspect ratio, 2:1; diameters of pores, 0.1-1 mm; surface area, 8 x 12 cm2; the optimal printing layer height, temperature and velocity were 0.1 mm, 210-220 degrees C and 60 mm/s. Its clinical significance lies in: (1) applied to preoperative planning and design a detailed surgical plan; (2) applied to special types of surgery including patients in puberty, recurrent and compound inguinal hernias; (3) significantly improve the efficiency of doctor-patient communication; (4) it can shorten the operation and recovery period by about 1/3 and can save about 1/4 of the cost for patients; (5) the learning curve is significantly shortened, which is conducive to the cultivation of reserve talents.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Three-dimensional Printing Technology in Orthopaedics
    Skelley, Nathan Wm.
    Smith, Matthew J.
    Ma, Richard
    JOURNAL OF THE AMERICAN ACADEMY OF ORTHOPAEDIC SURGEONS, 2019, 27 (24) : 918 - 925
  • [42] Three-dimensional Printing in Developing Countries
    Ibrahim, Ahmed M. S.
    Jose, Rod R.
    Rabie, Amr N.
    Gerstle, Theodore L.
    Lee, Bernard T.
    Lin, Samuel J.
    PLASTIC AND RECONSTRUCTIVE SURGERY-GLOBAL OPEN, 2015, 3 (07)
  • [43] Three-dimensional printing of hard materials
    Carreno-Morelli, E.
    Alveen, P.
    Moseley, S.
    Rodriguez-Arbaizar, M.
    Cardoso, K.
    INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2020, 87
  • [44] Applications of three-dimensional printing in ophthalmology
    Tsui, Jennifer K. S.
    Bell, Stephen
    da Cruz, Lyndon
    Dick, Andrew D.
    Sagoo, Mandeep S.
    SURVEY OF OPHTHALMOLOGY, 2022, 67 (04) : 1287 - 1310
  • [45] Applications of Three-Dimensional Printing in Surgery
    Li, Chi
    Cheung, Tsz Fung
    Fan, Vei Chen
    Sin, Kin Man
    Wong, Chrisity Wai Yan
    Leung, Gilberto Ka Kit
    SURGICAL INNOVATION, 2017, 24 (01) : 82 - 88
  • [46] Three-dimensional Printing of Carbon Nanostructures
    Resnick, Alex
    Park, Jungkyu
    Haile, Biya
    Farfan, Eduardo B.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2019, VOL 12: ADVANCED MATERIALS: DESIGN, PROCESSING, CHARACTERIZATION, AND APPLICATIONS, 2020,
  • [47] Three-dimensional bio-printing
    Qi Gu
    Jie Hao
    YangJie Lu
    Liu Wang
    Gordon G. Wallace
    Qi Zhou
    Science China Life Sciences, 2015, 58 : 411 - 419
  • [48] Three-dimensional printing of surgical anatomy
    Powers, Mary K.
    Lee, Benjamin R.
    Silberstein, Jonathan
    CURRENT OPINION IN UROLOGY, 2016, 26 (03) : 283 - 288
  • [49] Three-Dimensional Printing in Orthopedic Surgery
    Eltorai, Adam E. M.
    Nguyen, Eric
    Daniels, Alan H.
    ORTHOPEDICS, 2015, 38 (11) : 684 - 687
  • [50] Three-Dimensional μ-Printing: An Enabling Technology
    Hohmann, Judith K.
    Renner, Michael
    Waller, Erik H.
    von Freymann, Georg
    ADVANCED OPTICAL MATERIALS, 2015, 3 (11): : 1488 - 1507