Search PubMed⌕ Search

Biomedical subjects

F J Kummer

Publications and source records attributed to F J Kummer.

At least 91 records · Page 5Linked to original sources

Closed treatment of canine nonunions by controlled compression and distraction using an Ilizarov fixator: a preliminary study.

The Ilizarov fixator was used for closed treatment of canine nonunions by controlled compression and distraction. The fibrous matrix and cartilage formed within the nonunion site transformed to osteoid and bone with increased vascularity. Healing was demonstrated by substantial bone bridging the nonunion at 6 weeks. The Ilizarov method appears to be a viable treatment for nonunions.

Animals↗

CO2 laser cauterization of giant-cell tumor margins.

The CO2 laser was evaluated to determine its effectiveness for marginal cauterization of giant-cell tumors after resectional curettage. Average power densities of 11-53 W/cm2 for corresponding application times of 120 and 60 seconds were found to produce 30 degrees temperature rises in fresh human femoral heads. This temperature was adequate to achieve thermal necrosis of the tumor margins to a depth of 5 mm. CO2 laser resection was found to be accurate and reproducible. No damage to underlying hyaline cartilage and soft tissues was evident histologically at one and four weeks after experimental local laser cauterization of distal femoral condyles in rabbits.

Animals↗

Bipolar prostheses: a critical review.

The bipolar prosthesis was developed to overcome some of the shortcomings of the unipolar fixed-head prosthesis. An additional site of motion would be expected to decrease the amount of loosening, dislocation, and head migration. Although clinical series have shown success rates for bipolar prostheses as good as those for unipolar prostheses, the intended advantages have not been clearly demonstrated.

Biomechanical Phenomena↗

Technical note: evaluation of new Ilizarov rings.

New Ilizarov rings composed of aluminum (Al) or carbon composite (C) are lower in weight and more radiolucent than the stainless steel (SS) rings currently in use. The new rings were subjected to a variety of mechanical tests. The aluminum rings performed as well as the stainless steel rings in all tests; in some tests the carbon rings proved to be less rigid.

Aluminum↗

Technical note: a graphic method for the analysis and correction of multiplanar deformities.

A method for analyzing and correcting bone deformities with coronal, sagittal, and horizontal components is presented. It consists of the application of vector analysis in three-dimensional space to these clinical situations. The deformity correction is performed by determining the proper orientation in space of a treatment axis and rotating the limb segment about this axis so that all three deformity components correct simultaneously. This method has special application for the gradual correction of deformities by means of modular external fixators.

Bone Diseases↗

Mathematical analysis of first metatarsal osteotomies.

The mathematical analysis of most first metatarsal osteotomy corrections for metatarsus primus varus is presented and interpreted with respect to metatarsal lengthening or shortening and changes in clinical reference angles (e.g., intermetatarsal or angle of declination). The critical parameters for each osteotomy such as location and angles of cuts and amount of displacement are defined and their theoretical effects on the final correction determined. Although exactitude in surgical methodology and an absolute prediction of final clinical results are impossible at the present time, even guidelines as to the potential effectiveness of various surgical techniques and quantitative methods for subsequent evaluation are lacking. This mathematical analysis can provide guidelines for prospective choices and a basis for retrospective interpretation as well as represent a critical component for biomechanical calculations.

Humans↗

Biomechanics of the Ilizarov external fixator.

The rigidity of the Ilizarov external fixator was evaluated by means of the techniques of Briggs and Chao, and compared to their findings for the Hoffman-Vidal external factor. A typical fibular fixator consisting of 8 crossed K wires and 4 rings with supporting struts was affixed to a fiberglass-filled epoxy bone fracture model. The ensemble was tested with an MTS servohydraulic testing machine in axial loading, bending (A-P, L-M), and torsion. Displacement transducers were placed on the frame and the bone to determine relative motion. The Ilizarov frame was relatively stiff in compression; failure occurred at about 100 kg due to slippage at the wire holders. In bending, it was much less rigid than the Hoffman-Vidal fixator due to bowing of the transverse wires and slippage of the bone along these wires. Stiffness is related to the wire-bone orientation: wires parallel or nearly parallel to the applied force provide little resistance to deformation. In torsion, the laxity in the system is due primarily to wire deflection or wide spacing between adjacent rings. Stiffness in compression and bending increased as a function of wire tension to about 130 kg (further tightness was not possible due to slippage at the wire holder). The Ilizarov fixator is less rigid than other fixators in all loading modes, particularly in axial compression. This may prove to be clinically beneficial as evidenced by increased osteosynthesis. However, the existing system has many sites of laxity. Care must be taken in frame construction to ensure adequate stability and necessary stiffness.

Biomechanical Phenomena↗

Technical note: a modified Harris trochanteric reattachment technique.

A trochanteric reattachment technique which does not penetrate the femoral canal with wire has been developed for use in revision surgery or with press-fit implants. This technique was shown by in vitro mechanical testing to be comparable in stability to the standard Harris trochanteric reattachment method. It has been used successfully in 15 clinical cases.

Bone Wires↗

Cyclic loading of segmental spinal instrumentation.

The ultimate clinical effect of SSI stability and rigidity is not known, but three SSI systems exhibited different displacements during cyclic loading in an in-vitro model. Although no failure of the SSI system occurred at 50,000 cycles, the possibility of fatigue failure cannot be excluded, particularly in view of the minor damage and significant displacements observed at some of the connecting interfaces. For that reason, static testing of SSI should be augmented by cyclic testing whenever possible, as this can elucidate other failure mechanisms, particularly since the expected clinical loading of these systems is greater than 10(6) cycles.

Animals↗

Extraosseous and intraosseous arterial supply to the first metatarsal and metatarsophalangeal joint.

The extraosseus and intraosseous circulation to the first ray was evaluated by means of vascular injection techniques. The first metatarsal and metatarsophalangeal joint receive their blood supply from the first dorsal metatarsal artery, the first plantar metatarsal artery, and the superficial branch of the medial plantar artery. These three source arteries provide variable numbers of branches to the base, shaft, and head of the first metatarsal. Ramifications of branches to the head form an extensive capsular network that is more consistent and abundant on the dorsal and lateral aspects of the joint. The source of intraosseous vascularity consists of a diffuse network of fine periosteal arteries enveloping the diaphysis of the metatarsal, a single nutrient artery that perforates the first metatarsal at the lateral aspect of the shaft distally, and a system of metaphyseal and capital arteries that appear to constitute a major source of blood supply to the metatarsal head.

Arteries↗

Biomechanical evaluation of anatomic reduction versus medial displacement osteotomy in unstable intertrochanteric fractures.

The biomechanical characteristics of anatomic reduction versus medial displacement osteotomy were compared for four-part intertrochanteric fractures experimentally produced in cadaver femurs. Eighteen pairs of femurs were assigned randomly to either the anatomic (A) or the medial displacement (MD) group and instrumented with multiple strain gauges. The femurs in the MD group were tested while intact and following four-part fracture with fixation. The femurs in the A group were first tested intact, followed by a stable two-part fracture with fixation, and then by a four-part fracture with fixation and perfect reduction of the posteromedial fragment (PMF) with a lag screw, partial reduction of the PMF, and with the PMF omitted. All fractures were fixed with a 135 degrees, four-hole, sliding hip screw. The strain distribution in the MD group changed significantly after fracture. The plate tensile strain increased by 360% while the compressive calcar strain decreased 85%. The plate tensile strain in the A group also increased significantly after four-part fracture when the PMF was perfectly reduced (160%), partially reduced (290%), or discarded (275%); the calcar compressive strains for these subgroups decreased approximately 50%. This laboratory study indicates that anatomic reduction of four-part intertrochanteric fractures with the sliding hip screw, regardless of the presence or position of the PMF, provides significantly higher compression across the calcar region and significantly lower tensile strain on the plate than fractures reduced by medial displacement osteotomy. The more physiologic strain distribution and the increased medial load transmission support the use of anatomic reduction for the treatment of unstable intertrochanteric fractures.

Biomechanical Phenomena↗

Analogue femurs for laboratory investigations of prosthesis stress distributions and fixation failures.

A polymeric analogue femur in combination with a brittle-coating stress-analysis technique was used to compare the relative femoral surface-strain distributions for various hip prostheses. The influence of prosthesis design factors, such as the geometry and material, the effect of a collar, and surface texturing, were readily ascertained and in agreement with previous investigations using other techniques. The fixation failures observed with this laboratory test model were similar to those of published clinical findings.

Bone Cements↗

Kinematics of the first metatarsophalangeal joint.

The kinematics of both the first metatarsophalangeal joint and the articulation of the hallux sesamoid bones with the metatarsal head were investigated with fifteen fresh-frozen below-the-knee amputation specimens using a radiographic technique. Six feet were of normal structural anatomy, six displayed hallux valgus, and three had hallux rigidus. Normal specimens demonstrated an average total range of motion in the sagittal plane of 111 degrees, with about 76 degrees of dorsiflexion and 34 degrees of plantar flexion. The abnormal specimens revealed a decreased total arc of motion, with a limitation of plantar flexion in feet with hallux valgus and a loss of dorsiflexion in feet with hallux rigidus. Motion analysis of the normal metatarsophalangeal joints demonstrated minimum scattering of instant centers of rotation. This was in contrast to the diseased articulations, which displayed markedly displaced instant centers of rotation located eccentrically about the metatarsal head. Surface motion in the normal joints was characterized as tangential sliding from maximum plantar flexion to moderate dorsiflexion, with some compression at maximum dorsiflexion. The feet with hallux valgus and the feet with hallux rigidus displayed distinctive patterns of distraction and jamming throughout specific portions of the range of motion in the sagittal plane. Motion of the metatarsophalangeal joint in the transverse plane concomitant with motion in the sagittal plane, which has been hypothesized by other investigators, was confirmed and quantified in this study. The feet with hallux rigidus displayed a reduction in this motion.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

A 30-year follow-up and failure analysis of a Fixel acrylic femoral prosthesis.

An acrylic-headed prosthesis was removed after 30 years and analyzed for material deterioration. Although the acrylic head showed some wear and minor corrosion of the cobalt-chromium stem was found, tissue responses were not significant, indicating that use of these materials is consistent with the long-time survival of a prosthesis.

Acetabulum↗

Stiffness of small-bone external fixation methods: an experimental study.

A variety of small-bone external fixation methods were evaluated to determine bending and torsional stiffness. Several methods of external pin stabilization with bone cement and with a commercial device were used. Among experimental variables examined were: the number of pins, pin diameter, pin length, pin spacing, and pin threading. The most rigid fixation was achieved with four pins held with a wire-reinforced bone cement fixator. Pin diameter was the most significant variable in the determination of stiffness with this configuration.

Animals↗

Corrosion of titanium/cobalt-chromium alloy couples.

UNLABELLED: Because of the increasing use of dissimilar metal combinations in the human body, we undertook an in vitro study to determine the compatibility and tendency to accelerate crevice corrosion of galvanic couples of cobalt-chromium alloy with either titanium, titanium alloy, or stainless steel. We employed an electrochemical open-circuit potential measurement test and a potentiostatic passive film-corrosion measurement test. The results demonstrated that the chromium alloy/stainless-steel couple was unstable. The cobalt-chromium alloy/titanium alloy couple was stable. CLINICAL RELEVANCE: Cobalt-chromium alloys should not be used in combination with stainless steel but may be used in combination with titanium alloy. All usage of metal couples should be approached with the utmost caution.

Chromium Alloys↗

A magnetically augmented elbow prosthesis: design and biomechanical evaluation.

Magnetically augmented joint prostheses are a relatively new concept. A prototype of an elbow prosthesis with a magnetically constrained axis was designed by the authors and subjected to various tests. It demonstrated greater stability than nonhinged devices. The magnetic bearing reduces the tensile and rotatory forces on the prosthetic fixation that occur with a constrained hinge device, thus preventing loosening and breakage.

Biomechanical Phenomena↗