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Related Concept Videos

Knee Joint01:23

Knee Joint

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The knee joint is the most complicated joint in the body. It consists of three articulations– two tibiofemoral and one patellofemoral. As is characteristic of synovial joints, the knee joint has a thin articular capsule that partially surrounds this joint cavity. Additionally, several ligaments, muscles, and cartilaginous structures support the movement of the knee.
A total of seven ligaments support the knee joint. The patellar ligament, which is also attached to the quadriceps femoris...
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Ankle Joint01:10

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The ankle is formed by the talocrural joint (crural = leg). It consists of the articulations between the talus bone of the foot and the distal ends of the tibia and fibula of the leg. The superior aspect of the talus bone is square-shaped and has three areas of articulation. The top of the talus articulates with the inferior tibia. This is the portion of the ankle joint that carries the body weight between the leg and foot. The sides of the talus are firmly held in position by the articulations...
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Structural Joints: Synovial Joints01:16

Structural Joints: Synovial Joints

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Synovial joints are the most common type of joint in the body. A key structural characteristic for a synovial joint is the presence of a joint cavity. This fluid-filled space is where the articulating surfaces of the bones contact each other. Also, unlike fibrous or cartilaginous joints, the articulating bone surfaces at a synovial joint are not directly connected to each other with fibrous connective tissue or cartilage. This gives the bones of a synovial joint the ability to move smoothly...
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Development of the Limb Synovial Joints01:07

Development of the Limb Synovial Joints

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Joints form during embryonic development in conjunction with the formation and growth of the associated bones. The embryonic tissue that gives rise to all bones, cartilage, and connective tissues of the body is called mesenchyme.
The mesenchymal stem cells differentiate into chondrocytes that form the hyaline cartilage, and later the cartilaginous model of the bone. This model further transforms into a bone. This process is known as endochondral ossification.
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Articulations of the Vertebral Column01:28

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In addition to being held together by the intervertebral discs, adjacent vertebrae also articulate with each other at synovial joints formed between the superior and inferior articular processes called zygapophysial joints (facet joints). These are plane joints that provide for only limited motions between the vertebrae. The orientation of the articular processes at these joints varies in different regions of the vertebral column and serves to determine the types of motions available in each...
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Functional Classification of Joints01:09

Functional Classification of Joints

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Functional Classification of Joints
The functional classification of joints is determined by the amount of mobility between the adjacent bones. Joints are functionally classified as a synarthrosis or immobile joint, an amphiarthrosis or slightly moveable joint, or as a diarthrosis, a freely moveable joint. Fibrous and cartilaginous joints can be functionally classified as either synarthroses  or amphiarthroses, whereas all synovial joints are classified as diarthroses.
Synarthrosis
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Biotribological Testing and Analysis of Articular Cartilage Sliding against Metal for Implants
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Oxidized Zirconium Components Maintain a Smooth Articular Surface Except Following Hip Dislocation.

Noah B Bonnheim1, Douglas W Van Citters2, Michael D Ries3

  • 1Department of Mechanical Engineering, University of California, Berkeley, CA.

The Journal of Arthroplasty
|November 28, 2020
PubMed
Summary

This study examined the surfaces of retrieved hip and knee implants made from oxidized zirconium (OxZr) and cobalt-chromium (CoCr). Researchers found that OxZr implants generally maintain a smooth surface unless they are removed due to hip dislocation. When dislocated, OxZr components showed significant damage, including loss of the ceramic surface layer and increased roughness. In contrast, CoCr implants remained smooth even after dislocation. The findings suggest that OxZr is more sensitive to dislocation and may not be the best choice for patients at high risk of this complication. These results could influence material selection for joint replacements.

Keywords:
dislocationoxidized zirconiumoxiniumtotal hip arthroplastytotal knee arthroplastyhip implant materialssurface roughness analysisdislocation in joint replacementbiomaterial wear

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Area of Science:

  • Orthopedic implant materials research
  • Tribology in biomedical engineering
  • Joint replacement outcomes

Background:

Oxidized zirconium has been proposed as a material for hip and knee implants due to its ceramic-like wear resistance and metal-like strength. However, its performance compared to traditional alloys remains uncertain. Some studies suggest OxZr does not offer better wear or outcomes than cobalt-chromium. A concern is the potential for surface layer damage, which could affect implant longevity. Prior research has shown that ceramic coatings can degrade under stress. The extent of this degradation and its clinical consequences are not well defined. This uncertainty has driven further investigation into OxZr's behavior in the body. Understanding how OxZr responds to mechanical failure is important for implant design. Surface roughness and material exposure may influence wear and patient outcomes.

Purpose Of The Study:

The goal of this study was to assess the in vivo performance of oxidized zirconium implants, focusing on surface integrity. Researchers aimed to determine if OxZr components maintain a smooth surface under normal use. They also wanted to evaluate how dislocation affects OxZr surfaces compared to cobalt-chromium. The study sought to measure surface roughness and identify signs of ceramic layer loss. By comparing retrieved implants, the team hoped to clarify OxZr's behavior after mechanical failure. Dislocation is a known complication in hip implants, so its impact on OxZr was a key focus. The researchers also wanted to understand if OxZr is more vulnerable to damage than traditional materials. This information could help guide material selection for joint replacements.

Main Methods:

The study analyzed 94 retrieved femoral components from total hip and knee arthroplasties. These included 43 OxZr TKA, 21 OxZr THA, and 30 CoCr THA implants. Surface characteristics were assessed using optical microscopy, non-contact profilometry, and scanning electron microscopy. Researchers measured surface roughness using Sa values to compare materials. They also looked for signs of ceramic layer effacement and metal exposure. Components revised for dislocation were compared to those removed for other reasons. The study focused on differences in surface damage between OxZr and CoCr. Data were analyzed statistically to determine significance of findings.

Main Results:

OxZr components generally maintained a smooth surface unless revised for dislocation. Three of four OxZr femoral heads removed after dislocation showed severe damage. These included large areas of ceramic layer loss and exposed metal. The damaged OxZr surfaces were 23-32 times rougher than undamaged controls. When compared to CoCr, dislocated OxZr heads were much rougher (Sa 0.431 vs. 0.020 μm). CoCr dislocated heads had low roughness (Sa 0.020 vs. 0.008 μm). Surface roughening was not typical for CoCr regardless of dislocation status. The findings suggest OxZr is more sensitive to dislocation than CoCr.

Conclusions:

Oxidized zirconium components retain a smooth surface under normal conditions. However, dislocation causes significant damage to OxZr surfaces. The ceramic layer is lost, exposing the metal substrate and increasing roughness. This roughening is much more pronounced in OxZr than in cobalt-chromium. The study found that OxZr is less tolerant of dislocation events. Dislocated OxZr heads were substantially rougher than CoCr dislocated heads. The authors suggest that OxZr may not be the best choice for patients at high risk of dislocation. These findings support the need for careful material selection in implant design.

Three of four OxZr femoral heads revised for dislocation showed severe damage, including ceramic layer loss and metal exposure.

Researchers used non-contact profilometry to measure Sa values, comparing OxZr and CoCr components.

Effacement exposes the metal substrate, increasing surface roughness and potentially affecting implant wear and longevity.

Dislocated OxZr heads were 23-32 times rougher than undamaged OxZr and much rougher than dislocated CoCr heads.

Sa values quantify surface roughness, showing that OxZr dislocated heads had Sa 0.431 μm, compared to 0.020 μm for CoCr dislocated heads.

The authors suggest OxZr may not be ideal for patients at high risk of dislocation due to its sensitivity to mechanical failure.