Comparison between all-on-four and all-on-six treatment concepts and framework material on stress distribution in atrophic maxilla: A prototyping guided 3D-FEA study

Mater Sci Eng C Mater Biol Appl. 2016 Dec 1:69:715-25. doi: 10.1016/j.msec.2016.07.059. Epub 2016 Jul 21.

Abstract

We evaluated two treatment concepts for the rehabilitation of moderate atrophic maxilla with dental implants (all-on-four and all-on-six) and the effect of framework material on the stress distribution of implant-support system. A three-dimensional finite element model based on a prototype was built to simulate an entirely edentulous maxilla with moderate sinus pneumatization that was rehabilitated with a full-arch fixed dental prosthesis. Four standard implants were positioned according to the all-on-four concept and four standard implants and two short implants were placed according to the all-on-six concept. Three framework materials were evaluated: cobalt-chrome (CoCr), titanium (Ti) and zirconia (Zr), totalizing six groups. A unilateral oblique force of 150N was applied to the posterior teeth. The von Mises (σVM), maximum (σmax) and minimum (σmin) principal stress and displacements were obtained. All-on-six showed smaller σmin, σVM and σmax values on the cortical bone, implants and trabecular bone, respectively. All-on-four exhibited higher displacement levels. Ti presented the highest stress values on the cortical bone, implants, abutments, prosthetic screws and displacement levels. In conclusion, the all-on-six approach and framework stiffer materials showed the most favorable biomechanical behavior. However, the stress values did not exceed the bone resistance limits for both treatment concepts.

Keywords: All-on-four; All-on-six; Finite elements analysis; Framework material; Short implant.

Publication types

  • Comparative Study

MeSH terms

  • Atrophy
  • Bone Screws
  • Cancellous Bone / pathology
  • Cortical Bone / pathology
  • Dental Abutments
  • Dental Implants*
  • Dental Stress Analysis*
  • Finite Element Analysis*
  • Humans
  • Maxilla / pathology*
  • Models, Anatomic
  • Stress, Mechanical*

Substances

  • Dental Implants