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Biomedical subjects

J L Shupe

Publications and source records attributed to J L Shupe.

At least 37 records · Page 2Linked to original sources

Cadmium uptake from feed and its distribution to food products of livestock.

Distribution of cadmium (Cd) into the edible products of three species of food-producing animals was investigated during long-term dietary administration of supplemental cadmium chloride. Cows were exposed to 0.2 (control), 2.4, and 11.3 ppm Cd on whole ration basis for a period of three months followed by a three-month period on control ration. No accumulation of Cd occurred in milk, muscle, or bone at any of the time periods. A dose-related increase of Cd was observed in liver and kidney. The Cd concentration in these organs showed a gradual rise even when the animals were given control ration for three months after an initial three-month exposure to Cd; this observation suggests a mobilization and redistribution of this metal from other tissues. Dietary Cd levels in swine rations were 0.2, 2.4, and 10.1 ppm. The highest level of Cd produced a slightly reduced growth rate in swine. No accumulation of Cd was observed in muscle, bone, or brain. Liver and kidney showed a treatment and time-related increase in cadmium values at 6 and 12 weeks on experiment. During a three-month depletion phase after an initial three months of Cd administration, no further change in liver and kidney Cd levels was observed. White Leghorn chickens were treated by administering 0.3, 1.9, and 13.1 ppm Cd in their diets for up to 6 months. No accumulation of Cd occurred in eggs or bones. A slight increase of Cd level was observed in chicken muscle after six months of exposure. Liver and kidney had the highest levels of Cd, which showed a dose and time-related increase in these organs. No depletion of liver and kidney Cd was seen during seven weeks following a six-week treatment period. In all three species, the kidney Cd levels were severalfold higher than those of liver at all dietary levels. In swine, the renal cortex and medulla had similar Cd concentration in control animals but in all animals exposed to supplemental Cd, a dramatic rise in Cd levels in renal cortex was observed. Medullary Cd did not show a proportional time and dose-related increase in Cd levels, although the levels showed some increase. In kidney and liver of all three species the Cd levels showed a positive correlation with the amount of Cd-binding protein in these tissues. Induced levels of this metal-binding protein may explain accumulation and persistence of Cd-residues in these organs. In all three species, the concentrations of renal Cd-binding protein increased at a rate greater than those in liver. Although the food-producing animals may act as an effective filter of Cd in the case of an environmental increase of this metal, consumption of visceral organs from such animals may pose a hazard. This is particularly critical since the daily intake of Cd in human diet is already estimated to exceed the tolerance limits suggested by WHO/FAO.

Animal Feed↗

The interaction of dietary vitamin C, protein, and calcium with fluoride: effects in guinea pigs in relation to breaking strength and radiodensity of bone.

Guinea pigs were maintained on semisynthetic diets with or without the adequate amounts of dietary vitamin C, protein, and calcium, and were exposed to 25 ppm of fluoride in drinking water. Bone radiodensity was increased in the guinea pig humerus and tibia by fluoride supplementation, while femur and pelvic bones showed no density increases. Fluoride administration did not affect the torsion or bending strength of the bones of guinea pigs fed normal diets but increased the tensile strength. These physical properties of bones were not altered by low vitamin C or low protein diets. Low calcium diet significantly reduced the tensile strength of guinea pig humeri while the simultaneous administration of fluoride counteracted this effect.

Animals↗

Hereditary multiple exostoses: clinicopathologic features of a comparative study in horses and man.

Investigation of hereditary multiple exostoses in horses under controlled research conditions for 10 years and epidemiologic studies that have spanned up to five generations of human families contain notable similarities. The present study demonstrated that a single dominant autosomal gene is responsible for hereditary multiple exostoses in horses and man. Affected individuals transmit this trait to approximately 50% of their progeny, whereas nonaffected individuals do not transmit the condition to their offspring. The tumors in affected horses are most often present at birth. They tend to be bilaterally symmetrical and vary in size, shape, and texture. Those on the legs generally do not appear to enlarge as the animal matures, but others, notably those on the ribs and scapulae, enlarge until skeletal maturity, Histologically, the tumors appear as typical ostosteochondromas in both horse and man. Sarcomatous transformations have not yet been detected after 10 years in horses, although such changes are occasionally reported in the similar disease condition in man. The remarkable similarities of hereditary multiple exostoses in the horse to that in man provide an opportunity for comparative biomedical study.

Animals↗

Parainfluenza-3 virus exposure of beef heifers prior to natural breeding.

Ninety-six Hereford heifers (approximately 7 months of age) were randomly divided into 2 equal groups and housed 1.6 km apart (with 2 replications in time, 1 year apart). At 15 months of age, 1 group/replicate was inoculated with parainfluenza-3 virus, and the other group was given virus-free spent culture medium. Twenty-four hours later, 2 virgin bulls (2 years old) were placed with each group (24 cows) for natural breeding. Viral inoculation caused a twofold increase in parainfluenza-3 titer and a 0.3 C body temperature increase. There was no effect recognized from the virus on natural breeding efficiency.

Animals↗

Lead, cadmium, and arsenic residues in animal tissues in relation to those in their surrounding habitat.

The relationships of the residues of lead, cadmium, and arsenic in animal tissues to those in surrounding vegetation and soil were determined in a natural habitat representing a wide range of such residues. The samples studied were selected from 18 different locations. Analyses were performed on a total of 113 animals, 332 plant specimens (representing 33 species), and 408 soil samples (taken at different depths). For the purpose of evaluating relationships, the samples from each location were averaged and reported as parts per million on a dry weight basis. The average lead residues from different locations ranged from 1.4-9.2 ppm in the liver, 45-195 in bones, 4-283 in vegetation, and 15-1399 in soil samples. The cadmium contents ranged from 1-27 ppm in the liver, 3-77 in bones, 0.5-5 in vegetation, and 1-10 in soil. The arsenic contents in different components of the ecosystem varied with an average of 1-9 ppm in liver, 0.6-94 in vegetation, and 7-655 in soil samples. The soil residues varied considerably according to the depth of sampling. Little variation was noted in different species of vegetation or in soil and vegetation samples according to the time and year of sampling. Statistical analyses performed on the averages indicated a significant correlation between vegetation and soil residues for all three elements, and also between animal to vegetation and animal to soil cadmium residues. Multiple linear correlations for all elements in soil, vegetation, and animal tissues were determined. The results indicated a possibility of an increase in cadmium in animal tissues depending upon the increased residues of this metal in the environment.

Animals↗

Fluoride accumulation in bone and the effect on their physical properties in guinea pigs given different levels of fluoridated water.

Guinea pigs were exposed to fluoridated water (2-20 ppm) for a period ranging from 15 to 42 weeks. The fluoride content of the bones increased in proportion to the concentration of fluoride in drinking water and the period of exposure. The rate constant of accumulation of fluoride in guinea pig bones was estimated to be 2.5 X 10(-2) week-1, with a half-life of plateau formation in the order of 28 weeks. This indicated that maximum accumulation of fluoride during a continuous exposure, or a computed complete elimination of fluoride after exposure, will take approximately four years. Although fluoridated water improved the weight gain of guinea pigs, no effect on physical properties of bones was observed. No other toxic effects of fluoride under these conditions were noted.

Animals↗

Lupin alkaloids from teratogenic and nonteratogenic lupins. IV. Concentration of total alkaloids, individual major alkaloids, and the teratogen anagyrine as a function of plant part and stage of growth and their relationship to crooked calf disease.

The concentrations of total alkaloids and individual major alkaloids including the teratogen anagyrine were measured in various plant parts of teratogenic lupins as the plants matured. All alkaloids including angyrine were high in concentration in above-ground parts early in growth and decreased as plants matured, except for an increase in mature, intact seeds. Seeds were highest, followed by early growth leaves and stems. Roots were lowest with mature leaves and stems only slightly higher. Pregnant cows have the greatest risk of giving birth to calves with crooked calf disease when the concentration of the teratogen anagyrine is highest and the cows are in the susceptible 40-75 day gestation period when ingesting the plant.

Abnormalities, Drug-Induced↗