PubMed Health⌕ Search

PubMed · 7962147

Elbow instability.

Abstract

Elbow instability is a spectrum from subluxation to dislocation, with corresponding clinical and pathologic features and therapeutic implications. A classification that unifies these aspects is presented. Posterolateral rotational displacement of the ulna (with the radius) on the humerus appears to be the common mechanism. Acute dislocations can be reduced in supination and tested for valgus stability in pronation. Treatment is determined by the stability following reduction. When there are fractures, the principle is to fix the bones so that the only limitation is the ligaments and then to repair them if the elbow is not stable enough to permit early motion. The three prerequisites for stability of the ulnohumeral articulation are an intact joint surface, anterior medial collateral ligament, and ulnar part of the lateral collateral ligament. Recurrent instability is usually due to insufficiency of the ulnar part of the lateral collateral ligament complex, the lateral ulnar collateral ligament (LUCL), with attenuation of the other secondary soft tissue constraints on the lateral side. Reconstruction of the lateral ulnar collateral ligament typically corrects the problem. Chronic dislocations are treated by similar techniques after releasing contractures and resurfacing the joint with biologic tissue if it is irreversibly damaged.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

S W O'Driscoll. 1994. Elbow instability.. https://pubmed.ncbi.nlm.nih.gov/7962147/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

The fertilization dance: a mechanical view of the egg rotation during the initial spermatozoa-ovum interaction.

The motion of the ovum and the spermatozoa toward each other in the oviduct culminates in a meeting that ultimately results in fertilization. This encounter is characterized by a slow rotation of the sperms-egg cluster while the sperms attempt a penetration. The mysterious rotation was observed in vivo and in vitro for homologous and heterologous systems. It lacks a satisfactory biological explanation while it seems to be correlated with the efficiency of fertilization. A simple bio-mechanical model presented here predicts that the slow rotation of the sperms-egg cluster is a natural consequence of the encounter in most cases. A linear stability analysis of the system suggests a quantitative explanation of the rotation causes, its intensity and its direction. The entire encounter seems as a micro-scale process of courting of the ovum by the spermatozoa, which is expressed as circular dance.

Biomechanical Phenomena↗

Collagen and bone viscoelasticity: a dynamic mechanical analysis.

The purpose of this study was to explore the effects of changes in Type I collagen on the viscoelasticity of bone. Bone coupons were heated at either 100 or 200 degrees C to induce the thermal denaturation of Type I collagen. Half of these specimens were rehydrated after heat treatment; the other half were tested in a dry condition. The degree of denatured collagen (DC%) was analyzed by a selective digestion technique with the use of alpha-chymotrypsin. Isothermal (37 degrees C) and variable temperature tests (scans from 35 to 200 degrees C) were performed with the use of a dynamic mechanical analyzer to evaluate changes in bone viscoelastic properties as a function of collagen damage, specifically, changes in the loss factor (tan delta) and storage modulus (E') were assessed. Significant collagen denaturation occurred only when bone was heated at 200 degrees C irrespective of the hydration condition. Also, DC% did not show a significant effect on tan delta. However, higher values of tan delta were observed in wet samples compared to dry specimens. The temperature-scan tests revealed that the hydration condition, but not DC%, significantly affected the behavior of tan delta. However, E' was not strongly influenced either by DC% or by water content. These results suggest that at a constant frequency the denaturation of collagen triple-helical molecules may have few effects on the viscoelasticity of bone, but moisture may play a prominent role in determining this property.

Biomechanical Phenomena↗

A biomechanical comparison of three sternotomy closure techniques.

BACKGROUND: A biomechanical study of three sternotomy closure techniques (figure-of-eight stainless-steel wires, Pectofix Dynamic Sternal Fixation [DSF] stainless-steel plates, and figure-of-eight stainless-steel cables) was conducted to compare strength and stiffness variables in three clinically relevant loading modes (anterior-posterior shear, longitudinal shear, and lateral distraction). METHODS: All tests were conducted on polyurethane foam sternal models that simulate the properties of cancellous bone. Each model was divided longitudinally and reconstructed using one of the sternotomy closure repair techniques. Tests were performed using a materials testing system that applies a continuously increasing amount of force in one direction to the model until it catastrophically breaks. A total of six trials of each fixation type in each of three test groups were prepared and tested, for a total of 54 tests. Strength and stiffness variables as well as a post-yield analysis of failure were evaluated. RESULTS: Sternums repaired using the DSF plate system are a more rigid construct than sternums repaired using the stainless-steel wires or cables in the distraction and transverse shear modes and they are not significantly different from sternums repaired with wires or cables in the longitudinal shear mode. The DSF plate system offers a 25% improvement in resistance to failure (yield) compared to wires when a transverse shear force is applied to the model. The cable system had a higher resistance to failure than the wires in all modes although the differences were not statistically significant. Additionally, the DSF plate system provides substantial reduction of the implant's cutting into the sternal model under loading as evidenced by the post-yield displacement when compared with either cables or wires for the distraction and longitudinal shear modes. For the transverse shear mode, the cables or wires would completely fail at the load for which cutting begins for the DSF. CONCLUSIONS: Both the DSF plate system and the stainless-steel cable system offer important advantages over figure-of-eight wire for sternal closure.

Biomechanical Phenomena↗