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Biomedical subjects

E Grassmann

Publications and source records attributed to E Grassmann.

At least 19 recordsLinked to original sources

[Fe and Cu content in bones, muscles and whole body of growing rats with different Fe and Cu supplies].

The Fe and Cu contents in the femur and in the skeleton muscle were investigated in a trial series with factorial Fe and Cu supplies of growing rats (0, 25, 250, and 625 micrograms of Fe supply; 0, 10, 100, and 250 micrograms Cu supply per g of the diet). In addition, the reaction of the carcass to the different trace element supply was compared to the changes of the Fe and Cu contents in organs and tissues. In the femur, the Fe contents clearly increase in all grades of the Cu supply with increasing Fe supply. But because of the reduced live weight of the trial animals without Fe supply, this is valid only from 25 micrograms Fe/g diet on. For all Fe levels, the influence of the Cu supply on the concentration and the content of Cu results in a plateau in the range of 10-100 micrograms Cu/g diet; it is not reached with Cu deficiency and exceeded with an excessive Cu supply (250 micrograms/g). A clear increase of the Fe concentration in the muscle occurs only at a supply of 250 micrograms Fe/g diet. A further increase at 625 micrograms Fe/g only occurs at a Cu supply of 250 micrograms/g. Generally, the Fe concentration is reduced in the Cu deficiency. The Cu concentration in the muscle increases in all cases with the Cu supply, and the extent of this increase is strongly influenced by the Fe supply. The Fe contents in the carcass primarily depend on the Fe dosage. For the total contents of copper there are hints of a homeostatical regulation in the range of 10-100 micrograms Cu/g, but it seems to be disturbed if the Fe supply (0 or 25 micrograms/g) is insufficient. The comparison of the Fe and Cu contents in organs and tissues to those in the carcass shows that the reactions to the different supply levels, which are clearly different in the tissues, can be reproduced but insufficiently by the trace element analysis in the carcass.

Aging↗

[Iron levels of muscle after various iron and protein intakes].

In a 2 X 3 factorial experiment with growing rats (starting weight 32 g) the Fe content (5, 25, 625 mg/kg) and the protein content (5, 25, 45%) of the diet was varied. The diets were fed ad libitum for 35 days. At the end of the experiment the animals were sacrificed. The iron content was determined in a defined sample of musculus supraspinalis after dry ashing with AAS. An insufficient protein supply produced an overall increased iron content and a reduced muscle mass. A deficient iron supply caused a lowered iron content in the muscle in the case of sufficient and excessive protein content of the diet. On the other hand an iron supply exceeding the requirement did not lead to higher iron contents.

Animals↗

[Growth and hematological criteria of rats by different protein and iron supply].

In a two-factorial experiment with growing rats, protein content of diet (5, 25, 45%) and Fe supply (5, 25, 625 mg/kg diet) were changed. Both factors as well as their interactions influenced growth (p less than 0.001). The growth was reduced especially by deficient protein supply but although by inadequate iron supply and in a smaller degree by an excessive protein content of the diet. Hematological values as hemoglobin content, counts and volume of erythrocytes, hematocrit, MCH and MCHC - measured after 35 days of the experiment - were influenced by both factors and their interactions, too (p less than 0.001). Again deficient protein supply and insufficient Fe supply have the marked effects. Referring life weight as well as hematological parameters, the deficient protein supply was - independent of Fe supplementation - the limited factor, whereas in the cause of higher protein content (25, 45%) an insufficient Fe supply has negative effects.

Animals↗

[Iron concentration in various organs of rats following administration of various iron and protein loads].

In a 2 X 3 factorial experiment with growing rats the diet varied for the iron content (5, 25, 625 ppm) and for the protein content (5, 25, 45%). The diets were fed ad libitum for 35 days. At the end of the experiment the iron content of different organs was determined. Both experimental factors and their interactions influenced the iron concentration as well as fresh weight and dry matter dependent on organ. Especially the influence of deficient protein supply and of insufficient iron supply was very marked. Dependent on the iron supply there are different responses between storage and functional compounds of iron.

Animals↗

[Fe and Cu content in the liver, spleen, kidney and heart of growing rats with variable Fe and Cu supply].

In the course of a series of experiments on factorial Fe and Cu supply (0, 25, 250 and 625 micrograms Fe/g; 0, 10, 100 and 250 micrograms Cu/g), t effects on Fe and Cu contents of liver, spleen, kidney, and heart of growing rats were examined. Total contents as well as concentrations in these organs depended not only on the supply with the respective trace element but also on interactions between both trace elements. Iron doses of 250 and 625 micrograms/g resulted in an accumulation of Fe in the liver of Cu-deficient animals, but in reduced Fe contents in spleen, kidney, and heart. Following supplements of 250 micrograms Cu/g diet, liver Fe contents were significantly decreased under these conditions, whereas those of the other organs were not changed at all. On the other side, Cu doses of 100 micrograms/g and more caused a significant increase of liver Cu contents, if Fe supply was deficient or, partially, suboptimal. Total Cu of spleen and kidney and, as a rule, in heart, too, was significantly reduced in these animals. Variations in the retention behaviour of the different organs were observed concerning the interrelationships of the concentrations of Fe and Cu. A strongly inverse reaction of the two elements was observed in the liver of Cu-deficient as well as in sufficiently or excessively Cu-supplied rats. Both Fe and Cu concentrations in kidney and heart, however, increased when the Cu supplement was 10 micrograms/g or more. Cu deficiency caused reduced heart values, whereas in kidney a minimal increase was still observed. In spleen, no interrelationship in any direction was found.

Animals↗

[Fe-, Cu-, Zn-, Ni- and Mn-concentrations in sow's milk during a five-week lactation period].

In a trial with 18 sows of the German landrace in three groups the dietary copper supply was varied in gravidity and lactation. Iron, copper, zinc, nickel and manganese concentration of milk was measured on 11 different days during the five weeks' lactation period in response to alimentary copper supply. Copper supply did not influence iron, zinc, and manganese concentration even if it was deficient during gravidity and lactation. Mature sow's milk contained 1.2 micrograms Fe, 1.5 micrograms Cu, 6-8 micrograms Zn, 0.16-0.23 microgram Ni and 0.07-0.13 microgram Mn per g fresh milk. First colostrum contained higher copper and zinc concentrations and lower concentrations of nickel and manganese compared to mature milk. Fe concentration remained constant. This investigation reproduced and completed thereby previous results. It was concluded that in copper deficiency status the interactions of copper with iron, zinc, nickel and manganese may not be effective for the excretion pathway milk.

Animals↗

[Protein supply of rats and transaminase and succinate dehydrogenase activity].

The influence of an isocaloric diet containing 13 and 20% of crude protein on the activities of GOT, GPT and succinic dehydrogenase in rat livers was determined and compared to the growth as well as to the body composition of the animals. The weights of the animals were significantly increased, feed efficiency and consumption of metabolizable energy per gram of body increase were much better with higher protein supply. It may be concluded that protein retention was better while fat retention was nearly unaffected. The activities of the liver enzymes increased with the protein content of the diet, especially GOT 1,8 times and succinic dehydrogenase 3 times as compared to the respective values of the lower protein group. It is discussed that the activity of succinic dehydrogenase represents a suitable criterion for the evaluation of a changed metabolism, especially when protein supply is marginal.

Alanine Transaminase↗

[The influence of ceruloplasmin injections on the Cu- and Fe-metabolism of piglets].

In two experiments with a total of 56 piglets the influence of intravenous injections of ceruloplasmin (CP) on the 2nd and 4th day of their lives on criteria of the Cu- and Fe-metabolism was investigated. Due to the injections, the CP-activities and the Cu-concentration in the plasma increased, as a rule, more than in the untreated control animals. This effect was more distinct and longer recognisable after the injections on the 2nd day of life. Effects on the Fe-metabolism registered in a increased Fe-concentration in the plasma. Hemoglobin content, number of erythrocytes as well as the activities of blood catalase were in no case influenced by the injections.

Animals↗

[Effects of iron supply and lactation on iron availability in intermediate metabolism].

The availability of iron in metabolism was determined in dependence on the performance after lactation had finished and on the level of Fe-supply of a total of 56 rats. The availability of iron of those animals which had reared young was, according to the increased requirement, high and decreased from 87 to 54% after increased doses of iron. The values of full-grown control animals were considerably lower and had a falling tendency from 52 to 36% after an increasing supply with iron. Because of the reduced utilization of iron after increased supply the gross requirement must be increased over-proportionally when the net requirement rises.

Animals↗