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Biomedical subjects

Kenneth J Fischer

Publications and source records attributed to Kenneth J Fischer.

7 recordsLinked to original sources

Evaluation of passive and active rehabilitation and of tendon repair for partial tendon lacerations after three weeks of healing in canines.

BACKGROUND: Both passive and active rehabilitation have been shown to be superior to immobilization following partial tendon laceration, but few studies have directly compared these two rehabilitation protocols. In addition, controversy still remains over whether a partial tendon laceration should be repaired. METHODS: We evaluated gap formation, adhesions, gliding function and structural properties of repaired and unrepaired tendons following 3 weeks of unrestricted active rehabilitation versus passive mobilization for partial laceration of canine flexor digitorum profundus tendons. An ex vivo radiographic method was used to measure tendon excursion and rotation at each finger joint. The tendon was examined for adhesions, and gapping was measured with calipers. The tendons were tensile tested to failure. FINDINGS: We found no significant differences in tendon excursion, total joint rotation, or adhesions between any groups. Gap size was higher with active mobilization. We found no effect of rehabilitation protocol on the strength or stiffness of healing tendons at 3 weeks. Tendon repair did not affect tendon strength, but did produce higher stiffness in healing tendons at 3 weeks. INTERPRETATION: The results indicate that active rehabilitation appears safe for partial lacerations less than 60 percent. Though repair appears to weaken the tendon in the early stages of healing, it may provide some biomechanical benefit by the middle stages of healing.

Animals↗

Mechanical evaluation of bone samples following alendronate therapy in healthy male dogs.

Alendronate and other bisphosphonates are clinically efficacious in treating postmenopausal osteoporosis, Paget's disease and hypercalcemia associated with malignancy. Because bisphosphonates are being considered for use in younger patients with joint replacements to prevent osteolysis, and for stress fracture prophylaxis in military recruits, it is important to know how bisphosphonate therapy affects healthy bone. We sought to determine whether bones from healthy male dogs exhibit alterations in structural or mechanical properties following alendronate treatment for 23 weeks. We tested trabecular tissue samples in compression and determined tissue ash density. We tested whole long bones in bending and torsion. For trabecular samples, we evaluated trabecular modulus, strength, and density. For whole bone specimens, we compared structural stiffness and ultimate load. We found no significant differences in any measure, between canines treated with alendronate for 23 weeks and controls, although we found consistent trends toward higher properties in the treated group. Correlation analysis revealed significant relationships between stiffness and strength measures for each mechanical test. Our results indicate bisphosphonate treatment in healthy canines does not weaken the properties of bone. The trends indicate a slight positive overall effect of alendronate treatment on the mechanical properties of healthy canine bone.

Alendronate↗

A contact algorithm for density-based load estimation.

An algorithm, which includes contact interactions within a joint, has been developed to estimate the dominant loading patterns in joints based on the density distribution of bone. The algorithm is applied to the proximal femur of a chimpanzee, gorilla and grizzly bear and is compared to the results obtained in a companion paper that uses a non-contact (linear) version of the density-based load estimation method. Results from the contact algorithm are consistent with those from the linear method. While the contact algorithm is substantially more complex than the linear method, it has some added benefits. First, since contact between the two interacting surfaces is incorporated into the load estimation method, the pressure distributions selected by the method are more likely indicative of those found in vivo. Thus, the pressure distributions predicted by the algorithm are more consistent with the in vivo loads that were responsible for producing the given distribution of bone density. Additionally, the relative positions of the interacting bones are known for each pressure distribution selected by the algorithm. This should allow the pressure distributions to be related to specific types of activities. The ultimate goal is to develop a technique that can predict dominant joint loading patterns and relate these loading patterns to specific types of locomotion and/or activities.

Algorithms↗

Density-based load estimation using two-dimensional finite element models: a parametric study.

A parametric investigation was conducted to determine the effects on the load estimation method of varying: (1) the thickness of back-plates used in the two-dimensional finite element models of long bones, (2) the number of columns of nodes in the outer medial and lateral sections of the diaphysis to which the back-plate multipoint constraints are applied and (3) the region of bone used in the optimization procedure of the density-based load estimation technique. The study is performed using two-dimensional finite element models of the proximal femora of a chimpanzee, gorilla, lion and grizzly bear. It is shown that the density-based load estimation can be made more efficient and accurate by restricting the stimulus optimization region to the metaphysis/epiphysis. In addition, a simple method, based on the variation of diaphyseal cortical thickness, is developed for assigning the thickness to the back-plate. It is also shown that the number of columns of nodes used as multipoint constraints does not have a significant effect on the method.

Animals↗

A model of stress and strain in the interosseous ligament of the forearm based on fiber network theory.

Fiber network theory was developed to describe cloth, a thin material with strength in the fiber directions. The interosseous ligament (IOL) of the forearm is a broad, thin ligament with highly aligned fibers. The objectives of this study were to develop a model of the stress and strain distributions in the IOL, based on fiber network theory, to compare the strains from the model with the experimentally measured strains, and to evaluate the force distribution across the ligament fibers from the model. The geometries of the radius, ulna, and IOL were reconstructed from CT scans. Position and orientation of IOL insertion sites and force in the IOL were measured during a forearm compression experiment in pronation, neutral rotation, and supination. An optical image-based technique was used to directly measure strain in two regions of the IOL in neutral rotation. For the network model, the IOL was represented as a parametric ruled three-dimensional surface, with rulings along local fiber directions. Fiber strains were calculated from the deformation field, and fiber stresses were calculated from the strains using average IOL tensile properties from a previous study. The in situ strain in the IOL was assumed uniform and was calculated so that the net force predicted by the network model in neutral rotation matched the experimental result. The net force in the IOL was comparable to experimental results in supination and pronation. The model predicted higher stress and strain in fibers near the elbow in neutral rotation, and higher stresses in fibers near the wrist in supination. Strains in neutral forearm rotation followed the same trends as those measured experimentally. In this study, a model of stress and strain in the IOL utilizing fiber network theory was successfully implemented. The model illustrates variations in the stress and strain distribution in the IOL. This model can be used to show surgeons how different fibers are taut in different forearm rotation positions-this information is important for understanding the biomechanical role of the IOL and for planning an IOL reconstruction.

Adult↗

Passive strain distribution in the interosseous ligament of the forearm: implications for injury reconstruction.

PURPOSE: For severe forearm injuries such as an Essex-Lopresti fracture-dislocation, functional reconstruction necessitates repair of the interosseous ligament (IOL) to restore normal load sharing between the radius and ulna. Locating or tensioning such a reconstruction improperly can lead to abnormal load sharing and/or restriction of forearm rotation. The normal IOL strains should indicate the proper location of reconstruction grafts and the proper forearm rotation for tensioning the grafts. The objective of this study was to quantify the passive strain distribution of the IOL of the forearm with passive rotation of the forearm throughout the range of motion. METHODS: The 3-dimensional motions of the radius with respect to the ulna were measured throughout forearm rotation in 10 cadaveric forearms by using an instrumented spatial linkage. From the bone motions and ligament insertion site geometry from dissection and computed tomographic scanning, insertion site motions were determined and used to calculate changes in ligament fiber lengths. RESULTS: The measured strain distribution in the IOL was nonuniform and varied with forearm rotation. The overall magnitude of IOL strain was found to be greatest in supination and smallest in pronation. In supination the strains varied across fibers with strains being greatest in the distal fibers and lowest in the proximal fibers. Strains in neutral rotation were uniform across fibers. Although fibers were generally slack in pronation proximal fibers were less slack than distal fibers. CONCLUSIONS: The results of this study indicate that fiber strains in the IOL vary from proximal to distal and depend on forearm rotation. Our data suggest that to prevent restriction of forearm rotation all grafts should be tensioned in supination, where measured strains were generally highest. Our data also suggest that a 2-bundle IOL reconstruction may be necessary for proper load transfer between the radius and ulna in both supination and pronation.

Biomechanical Phenomena↗

Remote assessment of the use of seclusion and restraint with paediatric psychiatric patients.

Agencies regulating US psychiatric inpatient facilities require face-to-face patient assessments by physicians within one hour of the use of seclusion or restraint. In a pilot study, we compared face-to-face and remote assessments using videoconferencing in relation to response times and physicians' ratings of aspects of seclusion or restraint events involving paediatric patients at a private psychiatric hospital. Fifteen paired face-to-face and remote assessments were compared. Remote assessments occurred more rapidly than face-to-face assessments and more took place while seclusion or restraint was still being used. There was little disagreement between the physicians' ratings in face-to-face and remote assessment conditions. Remote assessment may therefore be a rapid and reliable method for physicians to evaluate the use of seclusion and restraint.

Adolescent↗