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Related Concept Videos

Bone Structure01:55

Bone Structure

Within the skeletal system, the structure of a bone, or osseous tissue, can be exemplified in a long bone, like the femur, where there are two types of osseous tissue: cortical and cancellous.
Bone Formation by Intramembranous Ossification01:29

Bone Formation by Intramembranous Ossification

Intramembranous ossification is one of the two processes involved in the development of bones within an embryo. The flat bones of the face, most of the cranial bones, and the clavicles are formed via this process. During intramembranous ossification, the bones develop directly from sheets of undifferentiated mesenchymal connective tissue.
The process begins when mesenchymal cells in the embryonic skeleton gather together and differentiate into osteogenic cells, which then develop into...
Bone Remodeling and Repair01:31

Bone Remodeling and Repair

Osteoclasts are cells responsible for bone resorption and remodeling. They originate from hematopoietic progenitor cells present in the bone marrow. Numerous progenitor cells fuse to form multinucleated cells, each with 10-20 nuclei. A single osteoclast has a diameter of 150 to 200 µM. These cells have ruffled borders that break down the underlying bone tissue and release minerals such as calcium into the blood in bone resorption. Osteoclasts cling to bones with their ruffled edges during bone...

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Updated: Jul 21, 2026

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Optimizing dental implant design: Structure, strength, and bone ingrowth.

Jenny Zwei-Chieng Chang1,2, Jui-Ting Hsu3,4,5, Ming-Jun Li6

  • 1School of Dentistry, College of Medicine, National Taiwan University, Taipei, Taiwan.

Journal of Dental Sciences
|April 14, 2025
PubMed
Summary

Dental implant porosity influences bone growth and stability. Lower porous designs promote bone regeneration and strength, crucial for preventing peri-implantitis and ensuring long-term prosthesis success.

Keywords:
Biological and mechanical studyDental implant designFinite element analysisPorous

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Area of Science:

  • Biomaterials science
  • Dental implantology
  • Biomechanics

Background:

  • Function-induced bone loss around dental implants can worsen peri-implantitis.
  • Identifying factors influencing marginal bone loss is critical for implant success.

Purpose of the Study:

  • To evaluate dental implant design concepts using finite element (FE) simulation and in-vitro analysis.
  • To assess the effects of implant design on stresses and strains in implants and surrounding bone.

Main Methods:

  • Analysis of five implant designs: full solid, upper porous, lower porous, lower porous: upper half, and lower porous: lower half.
  • Inclusion of stability measurements, 3D FE modeling, in-vitro mechanical testing, and bone remodeling simulations.

Main Results:

  • Full-solid design exhibited highest stress tolerance, followed by lower and upper porous designs.
  • Oblique forces increased stress concentration; upper porous design showed favorable bone strain but limited strength.
  • Lower porous implants matched full solid strength and enhanced marginal bone growth.

Conclusions:

  • Well-designed porous structures improve post-implantation bone growth.
  • Upper porous designs aid bone ingrowth but have reduced strength; lower porosity negatively impacts bone regeneration.