Literature DB >> 29223522

Custom-Made Titanium 3-Dimensional Printed Interbody Cages for Treatment of Osteoporotic Fracture-Related Spinal Deformity.

Timothy L Siu1, Jeffrey M Rogers2, Kainu Lin2, Robert Thompson3, Mark Owbridge3.   

Abstract

BACKGROUND: Advances in minimally invasive interbody fusion have greatly enhanced surgeons' capability to correct adult spinal deformity with reduced morbidity. However, the feasibility of such approaches is limited in patients with previous osteoporotic fractures as the resultant vertebral deformity renders the end plate geometry incongruous with conventional interbody implants. Current 3-dimensional (3D) printing technology offers a novel solution by fabricating custom-made implants tailored to individual anatomy. We present the results of a patient with osteoporotic lumbar fractures treated by such technology. CASE DESCRIPTION: A 74-year-old woman, with previous osteoporotic fractures at L2 and L3 resulting in concave deformity of the end plates, presented with intractable radiculopathy secondary to lateral recess and foraminal stenosis (L2-3 and L3-4). A minimally invasive lateral lumbar interbody fusion at L2-3 and L3-4 was considered favorable, but due to the associated vertebral collapse, off-the-shelf implants were not compatible with patient anatomy. In silico simulation based on preoperative computed tomography (CT) imaging was thus conducted to design customized cages to cater for the depressed recipient end plates and vertebral loss. The design was converted to implantable titanium cages through 3D additive manufacturing. At surgery, a tight fit between the implants and the targeted disk space was achieved. Postoperative CT scan confirmed excellent implant-end plate matching and restoration of lost disk space. The patient began to ambulate from postoperative day 1 and at 6-month follow-up resolution of radicular symptoms and CT evidence of interbody fusion were recorded.
CONCLUSIONS: 3D-printed custom-made interbody cages can help overcome the difficulties in deformity correction secondary to osteoporotic fractures.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  3D printing; Adult spinal deformity; Lateral lumbar interbody fusion; Minimally invasive surgery; Osteoporotic fractures; Personalized medicine

Mesh:

Substances:

Year:  2017        PMID: 29223522     DOI: 10.1016/j.wneu.2017.11.160

Source DB:  PubMed          Journal:  World Neurosurg        ISSN: 1878-8750            Impact factor:   2.104


  8 in total

Review 1.  3D printing in spine surgery.

Authors:  Evan D Sheha; Sapan D Gandhi; Matthew W Colman
Journal:  Ann Transl Med       Date:  2019-09

Review 2.  [3D printing in spinal surgery-Update].

Authors:  S Roth; S Sehmisch; S Decker
Journal:  Unfallchirurg       Date:  2022-02-17       Impact factor: 1.000

3.  The Surgical Outcomes of Spinal Fusion for Osteoporotic Vertebral Fractures in the Lower Lumbar Spine with a Neurological Deficit.

Authors:  Norihiro Isogai; Naobumi Hosogane; Haruki Funao; Kenya Nojiri; Satoshi Suzuki; Eijiro Okada; Seiji Ueda; Tomohiro Hikata; Yuta Shiono; Kota Watanabe; Kei Watanabe; Takashi Kaito; Tomoya Yamashita; Hiroyasu Fujiwara; Yukitaka Nagamoto; Hidetomi Terai; Koji Tamai; Yuji Matsuoka; Hidekazu Suzuki; Hirosuke Nishimura; Atsushi Tagami; Shuta Yamada; Shinji Adachi; Seiji Ohtori; Sumihisa Orita; Takeo Furuya; Toshitaka Yoshii; Shuta Ushio; Gen Inoue; Masayuki Miyagi; Wataru Saito; Shiro Imagama; Kei Ando; Daisuke Sakai; Tadashi Nukaga; Katsuhito Kiyasu; Atsushi Kimura; Hirokazu Inoue; Atsushi Nakano; Katsumi Harimaya; Kenichi Kawaguchi; Nobuhiko Yokoyama; Hidekazu Oishi; Toshiro Doi; Shota Ikegami; Masayuki Shimizu; Toshimasa Futatsugi; Kenichiro Kakutani; Takashi Yurube; Masashi Oshima; Hiroshi Uei; Yasuchika Aoki; Masahiko Takahata; Akira Iwata; Shoji Seki; Hideki Murakami; Katsuhito Yoshioka; Hirooki Endo; Michio Hongo; Kazuyoshi Nakanishi; Tetsuya Abe; Toshinori Tsukanishi; Ken Ishii
Journal:  Spine Surg Relat Res       Date:  2020-01-29

Review 4.  Biomaterials for Interbody Fusion in Bone Tissue Engineering.

Authors:  Han Zhang; Zhonghan Wang; Yang Wang; Zuhao Li; Bo Chao; Shixian Liu; Wangwang Luo; Jianhang Jiao; Minfei Wu
Journal:  Front Bioeng Biotechnol       Date:  2022-05-17

5.  Superior Osteo-Inductive and Osteo-Conductive Properties of Trabecular Titanium vs. PEEK Scaffolds on Human Mesenchymal Stem Cells: A Proof of Concept for the Use of Fusion Cages.

Authors:  Enrico Ragni; Carlotta Perucca Orfei; Alessandro Bidossi; Elena De Vecchi; Natale Francaviglia; Alberto Romano; Gianluca Maestretti; Fulvio Tartara; Laura de Girolamo
Journal:  Int J Mol Sci       Date:  2021-02-27       Impact factor: 5.923

6.  Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis.

Authors:  Anatolie Timercan; Vadim Sheremetyev; Vladimir Brailovski
Journal:  Sci Technol Adv Mater       Date:  2021-04-21       Impact factor: 8.090

7.  Corrosion Resistance of 3D Printed Ti6Al4V Gyroid Lattices with Varying Porosity.

Authors:  Rachael Sharp; Matthew H Pelletier; William R Walsh; Cambre N Kelly; Ken Gall
Journal:  Materials (Basel)       Date:  2022-07-09       Impact factor: 3.748

8.  Osteogenic potential of human adipose derived stem cells (hASCs) seeded on titanium trabecular spinal cages.

Authors:  Laura Caliogna; Valentina Bina; Laura Botta; Francesco Maria Benazzo; Marta Medetti; Gianluca Maestretti; Mario Mosconi; Fabio Cofano; Fulvio Tartara; Giulia Gastaldi
Journal:  Sci Rep       Date:  2020-10-26       Impact factor: 4.379

  8 in total

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