Search PubMed⌕ Search

Biomedical subjects

A Iio

Publications and source records attributed to A Iio.

61 records · Page 4Linked to original sources

The roles of renal catabolism and uremia in modifying the clearance of fibrinogen and its degradative fragments D and E.

Elevated levels of fibrinogen/fibrin degradation products (FDP) occur in uremia, and have been thought to be in part related to intravascular coagulation in the kidney. More recent data indicated that delayed catabolism of fibrinogen fragment D occurred in anephric animals. To further evaluate FDP catabolism in the kidney, turnover studies of purified dog 131I-Fg-D and 125I-Fg-E were performed on dogs before and after acute subtotal nephrectomies, and later during chronic uremia. 131I-fibrinogen clearances were also perfomed. Slowed catabolism of Fg-D and Fg-E was observed in both the acute and chronic uremic stages. Altered urinary excretion was not a factor as only minimal amounts of Fg-D and Fg-E were excreted in the urine of the control animals. In the 131I-fibrinogen studies, there were significant changes in plasma volume, fibrinogen t 1/2, and intravascular/extravascular distribution, but not in fractional catabolic rate. To differentiate fully, the effects of uremia from those of loss of catabolic renal tissue, the Fg-D and Fg-E turnover studies were repeated on other animals with intact kidneys whose ureters were diverted into the peritoneum and compared to subsequent studies after total nephrectomy. The control and ureter-severed studies had the same clearance pattern, whereas decreased catabolism occurred in the nephrectomized dogs. The results demonstrate uremia per se does not have a major effect upon the catabolism of fibrinogen, Fg-D, and Fg-E. Loss of renal tissue does impair the clearance of Fg-D and Fg-E, indicating these proteins are normally catabolized in part by the kidneys. Thus elevated plasma FRA in uremic patients may reflect decreased Fg-D and Fg-E catabolism rather than increased FDP production from primary or secondary fibrinolysis.

Animals↗

The metabolism of IgE. Studies in normal individuals and in a patient with IgE myeloma.

IgE metabolic turnover studies with purified radioiodinated IgE were performed in normal individuals and in a patient with IgE myeloma. The validity of the turnover studies was established in several ways, including comparisons of radioiodinated IgE turnover with the turnover of endogenously labeled 14C-IgE and with the turnover of infused unlabeled IgE in a patient with hypogammaglobulinemia. The geometric mean serum IgE concentration in 73 normal adults was 96 ng/ml with a 68% confidence interval of 24 to 386 ng/ml. Metabolic turnover studies in 10 control individuals disclosed a geometric mean total circulating IgE of 4.1 mug/kg, a mean percentage of the total exchangeable IgE in the intravascular space of 41%, a mean half-time of survival of IgE of 2.7 days, a mean fractional catabolic rate of 94% of intravascular pool per day, and a geometric mean synthetic rate of 3.8 mug/kg/day. IgE has the lowest synthetic rate and highest fractional catabolic rate of the five major classes of immunoglobulin molecules. In contrast to these normal values, a patient with IgE myeloma had a serum IgE comcentration of 42 mg/ml, a total circulating IgE of 1.7 g/kg, and a synthetic rate of 270 mg/kg/day. Furthermore, although the synthetic rate was vastly increased, the survival time was prolonged and the fractional catabolic rate was decreased to 5.1 days and 16 to 22% of the intravascular pool per day, respectively. These data are compatible with the concept that IgE is catabolized in part by a mechanism common to all immunoglobulin classes and in part by a unique mechanism not available to other immunoglobulins. At very high IgE serum concentrations, such as those encountered in patients with IgE myeloma, the unique mechanism would be saturated and only the catabolic pathways available to all immunoglobulins would be available to IgE.

Adolescent↗