Literature DB >> 25982877

Factors Affecting Dimensional Accuracy of 3-D Printed Anatomical Structures Derived from CT Data.

Kent M Ogden1, Can Aslan2, Nathaniel Ordway3, Dalanda Diallo4, Gwen Tillapaugh-Fay5, Pranav Soman6.   

Abstract

Additive manufacturing and bio-printing, with the potential for direct fabrication of complex patient-specific anatomies derived from medical scan data, are having an ever-increasing impact on the practice of medicine. Anatomic structures are typically derived from CT or MRI scans, and there are multiple steps in the model derivation process that influence the geometric accuracy of the printed constructs. In this work, we compare the dimensional accuracy of 3-D printed constructs of an L1 vertebra derived from CT data for an ex vivo cadaver T-L spine with the original vertebra. Processing of segmented structures using binary median filters and various surface extraction algorithms is evaluated for the effect on model dimensions. We investigate the effects of changing CT reconstruction kernels by scanning simple geometric objects and measuring the impact on the derived model dimensions. We also investigate if there are significant differences between physical and virtual model measurements. The 3-D models were printed using a commercial 3-D printer, the Replicator 2 (MakerBot, Brooklyn, NY) using polylactic acid (PLA) filament. We found that changing parameters during the scan reconstruction, segmentation, filtering, and surface extraction steps will have an effect on the dimensions of the final model. These effects need to be quantified for specific situations that rely on the accuracy of 3-D printed models used in medicine or tissue engineering applications.

Entities:  

Keywords:  3-D reconstruction; 3-D segmentation; Additive manufacturing; Computed tomography; Dimensional accuracy; Orthopedic modeling; Three-dimensional imaging (3-D imaging)

Mesh:

Year:  2015        PMID: 25982877      PMCID: PMC4636725          DOI: 10.1007/s10278-015-9803-7

Source DB:  PubMed          Journal:  J Digit Imaging        ISSN: 0897-1889            Impact factor:   4.056


  10 in total

1.  3D printing based on imaging data: review of medical applications.

Authors:  F Rengier; A Mehndiratta; H von Tengg-Kobligk; C M Zechmann; R Unterhinninghofen; H-U Kauczor; F L Giesel
Journal:  Int J Comput Assist Radiol Surg       Date:  2010-05-15       Impact factor: 2.924

2.  Transplantation of chondrocytes utilizing a polymer-cell construct to produce tissue-engineered cartilage in the shape of a human ear.

Authors:  Y Cao; J P Vacanti; K T Paige; J Upton; C A Vacanti
Journal:  Plast Reconstr Surg       Date:  1997-08       Impact factor: 4.730

3.  Application of the noise power spectrum in modern diagnostic MDCT: part II. Noise power spectra and signal to noise.

Authors:  K L Boedeker; M F McNitt-Gray
Journal:  Phys Med Biol       Date:  2007-06-08       Impact factor: 3.609

4.  Application of the noise power spectrum in modern diagnostic MDCT: part I. Measurement of noise power spectra and noise equivalent quanta.

Authors:  K L Boedeker; V N Cooper; M F McNitt-Gray
Journal:  Phys Med Biol       Date:  2007-06-08       Impact factor: 3.609

5.  Thoracic human vertebrae. Quantitative three-dimensional anatomy.

Authors:  M M Panjabi; K Takata; V Goel; D Federico; T Oxland; J Duranceau; M Krag
Journal:  Spine (Phila Pa 1976)       Date:  1991-08       Impact factor: 3.468

6.  Application of 3-D printing (rapid prototyping) for creating physical models of pediatric orthopedic disorders.

Authors:  Zbigniew A Starosolski; J Herman Kan; Scott D Rosenfeld; Rajesh Krishnamurthy; Ananth Annapragada
Journal:  Pediatr Radiol       Date:  2013-11-08

7.  Image-guided tissue engineering of anatomically shaped implants via MRI and micro-CT using injection molding.

Authors:  Jeffery J Ballyns; Jason P Gleghorn; Vicki Niebrzydowski; Jeremy J Rawlinson; Hollis G Potter; Suzanne A Maher; Timothy M Wright; Lawrence J Bonassar
Journal:  Tissue Eng Part A       Date:  2008-07       Impact factor: 3.845

8.  Tissue-engineered composites of bone and cartilage for mandible condylar reconstruction.

Authors:  Y Weng; Y Cao; C A Silva; M P Vacanti; C A Vacanti
Journal:  J Oral Maxillofac Surg       Date:  2001-02       Impact factor: 1.895

9.  The effect of computed tomographic scanner parameters and 3-dimensional volume rendering techniques on the accuracy of linear, angular, and volumetric measurements of the mandible.

Authors:  Brian J Whyms; Houri K Vorperian; Lindell R Gentry; Eugene M Schimek; Edward T Bersu; Moo K Chung
Journal:  Oral Surg Oral Med Oral Pathol Oral Radiol       Date:  2013-05

10.  Development of a new calcium phosphate powder-binder system for the 3D printing of patient specific implants.

Authors:  Alaadien Khalyfa; Sebastian Vogt; Jürgen Weisser; Gabriele Grimm; Annett Rechtenbach; Wolfgang Meyer; Matthias Schnabelrauch
Journal:  J Mater Sci Mater Med       Date:  2007-01-11       Impact factor: 4.727

  10 in total
  15 in total

1.  3D printing anatomical models of head bones.

Authors:  M Bartikian; A Ferreira; A Gonçalves-Ferreira; L L Neto
Journal:  Surg Radiol Anat       Date:  2018-12-13       Impact factor: 1.246

Review 2.  Measuring and Establishing the Accuracy and Reproducibility of 3D Printed Medical Models.

Authors:  Elizabeth George; Peter Liacouras; Frank J Rybicki; Dimitrios Mitsouras
Journal:  Radiographics       Date:  2017-08-11       Impact factor: 5.333

3.  Creating vascular models by postprocessing computed tomography angiography images: a guide for anatomical education.

Authors:  Figen Govsa; Mehmet Asim Ozer; Suzan Sirinturk; Cenk Eraslan; Ahmet Kemal Alagoz
Journal:  Surg Radiol Anat       Date:  2017-02-06       Impact factor: 1.246

Review 4.  Applications of 3D printing in cardiovascular diseases.

Authors:  Andreas A Giannopoulos; Dimitris Mitsouras; Shi-Joon Yoo; Peter P Liu; Yiannis S Chatzizisis; Frank J Rybicki
Journal:  Nat Rev Cardiol       Date:  2016-10-27       Impact factor: 32.419

5.  The Accuracy of 3D Printed Carpal Bones Generated from Cadaveric Specimens.

Authors:  Cory Lebowitz; Joseph Massaglia; Christopher Hoffman; Ludovico Lucenti; Sachin Dheer; Michael Rivlin; Pedro K Beredjiklian
Journal:  Arch Bone Jt Surg       Date:  2021-07

Review 6.  Cardiothoracic Applications of 3-dimensional Printing.

Authors:  Andreas A Giannopoulos; Michael L Steigner; Elizabeth George; Maria Barile; Andetta R Hunsaker; Frank J Rybicki; Dimitris Mitsouras
Journal:  J Thorac Imaging       Date:  2016-09       Impact factor: 3.000

Review 7.  Manufacturing Better Outcomes in Cardiovascular Intervention: 3D Printing in Clinical Practice Today.

Authors:  James Shin; Quynh A Truong
Journal:  Curr Treat Options Cardiovasc Med       Date:  2018-10-25

8.  Role of CT and MRI in the design and development of orthopaedic model using additive manufacturing.

Authors:  Abid Haleem; Mohd Javaid
Journal:  J Clin Orthop Trauma       Date:  2018-07-05

Review 9.  Setting Up 3D Printing Services for Orthopaedic Applications: A Step-by-Step Guide and an Overview of 3DBioSphere.

Authors:  Darshil Shah; Lokesh Naik; Bhawan Paunipagar; Darshana Rasalkar; Kshitij Chaudhary; Vaibhav Bagaria
Journal:  Indian J Orthop       Date:  2020-09-15       Impact factor: 1.251

Review 10.  [Application of 3D printing techniques in treatment of congenital heart disease].

Authors:  Jiajun Xu; Qiang Shu
Journal:  Zhejiang Da Xue Xue Bao Yi Xue Ban       Date:  2019-07-25
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