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[Relationship between food protein quality and adrenal cortex function. 7. Relationship between activity of selected liver and small intestine hydrolases and adrenal cortex function].

Male Wistar rats received 10% true digestible crude protein of varying quality (maize gluten (MK) = low protein quality; maize gluten + lysine, tryptophan, threonine, isoleucine (MK + AS) = high protein quality) for a period of three weeks. The trial was carried out to investigate the activity of the two enzymes leucine-arylamidase (LNA) and aminotripeptidase (TP) in the liver and the mucosa of the small intestine and that of alpha and gamma amylases and of total amylases in the mucosa of the small intestine in animals exhibiting differences in the functional state of their adrenal cortices (adrenalectomized animals (AE), normal rats (N) and animals receiving additional treatment with cortisol (KS). It was found that mucosal LNA and gamma amylase did not respond to functional changes in the adrenal cortex. Mucosal LNA had a higher activity if the dietary protein was of low quality and a lower activity if the protein quality was high. The level of liver LNA activity was significantly lower in N and KS animals than in AE animals. The highest activity of mucosal and liver TP was found in KS animals; it was lowest in N animals. Statistically significant differences brought about by changes in the quality of dietary proteins were only found to occur in the KS group. The activity of alpha amylase and total amylases was found to be lowest in N animals; it was significantly higher in animals of the AE and KS groups. Animals of the N and KS groups receiving MK + AS exhibited a significantly higher level in their alpha and total amylase activities than animals in the same group receiving MK. Here, the "permissive action" of glucocorticosteroids on metabolically active hydrolases is clearly evident. The pattern of mucosal LNA activity in the small intestine and that of gamma amylase may be regarded as further characteristic evidence for the digestive action of these enzymes. Liver LNA and liver TP as well as mucosal TP and alpha amylase acted like metabolic enzymes.

Adrenal Cortex↗

Expression of an abundant alpha-class glutathione S-transferase in bovine and human adrenal cortex tissues.

Bovine adrenal cortex tissue expresses high levels of glutathione S-transferase (GST) from each of the alpha, mu and pi gene families. We describe the purification and characterization of an abundant alpha-class GST from this tissue that has not been identified previously because of its failure to bind to S-hexylglutathione-Sepharose 6B (S-hexG-Ag). This enzyme has been affinity purified on glutathione-Sepharose 6B (GSH-Ag) and was obtained in a highly purified form by employing S-hexG-Ag to remove the bulk of GST before chromatography on GSH-Ag. The purified GST eluted from GSH-Ag was found to exhibit marked peroxidase and delta 5-ketosteroid isomerase activities (19.2 and 1.67 U/mg respectively). The bovine enzyme also showed high GST activity towards 4-hydroxynonenal (5.09 U/mg). Sodium dodecyl sulphate-polyacrylamide gel electrophoresis (SDS-PAGE) analysis revealed that the bovine GST contains two distinct polypeptides, one with an Mr of 25,900 and the other with an Mr of 26,500. An abundant alpha-class GST was also purified from human adrenal cortex that possessed properties which were similar to the bovine alpha-class GST described above; however, unlike the bovine enzyme, the corresponding human alpha-class GST bound to S-hexG-Ag. As with the bovine enzyme, the purified human GST displayed marked peroxidase and isomerase activities (27 and 4.02 U/mg respectively). Further analysis on SDS-PAGE (Mr 25,800) and reverse-phase high-performance liquid chromatography established that this abundant alpha-class GST in human adrenal cortex is equivalent to the human liver GST B1B1 enzyme. As both human and bovine adrenal cortex contain high levels of alpha-class GST with similar catalytic properties, we discuss the possible functions of these enzymes in this tissue.

Adrenal Cortex↗

Zonation of the adrenal cortex. II. Effect of BSA on coupling efficiency of mitochondria isolated from the zona glomerulosa of the bovine adrenal cortex.

Effect of bovine serum albumin on coupling efficiency of mitochondria isolated from the zona glomerulosa of the bovine adrenal cortex in various media was examined polarographically and electron microscopically. Albumin restored the coupling efficiency of mitochondria isolated from the zona glomerulosa regardless of isolation media when succinate or malate was oxidizable substrate. Respiratory controls greater than 5 were obtained. Albumin, however, had no effect when glutamate, beta-hydroxybutylate and pyruvate were the oxidizable substrates. The conditions have been found under which mitochondria of the zona glomerulosa stay in the orthodox configuration and yet coupled.

Adrenal Cortex↗

[Adrenal cortex transplantation. Animal experimental models for the human Cushing and Conn syndromes--clinical aspects of adrenal cortex transplantation].

Thymusaplastic mutants of mice (nu/nu) and rats (rnu/rnu) were used as recipients for tissue of one aldosteronoma of a 21-year-old male patient with Conn's syndrome and for tissue of one adenoma of a 28-year-old female patient with Cushing's syndrome. In this animal experimental study we succeeded in demonstrating that congenitally athymic rodents are ideal recipients for xenotransplantation of adrenal cortical tissue. The graft viability was demonstrated by obtaining light and electron micrographs of the biopsied transplants and its endocrine function documented by the measurements of plasma renin, cortisol, and urinary excretion of aldosterone, cortisol, and corticosterone. Fifteen patients are presented who were surgically treated for Cushing's disease. Fourteen patients with adrenocortical hyperplasia underwent total adrenalectomy and two had after adrenalectomy autotransplantation of adrenal tissue in the forearm muscle. One patient was treated with a transsphenoidal, partial hypophysectomy. Our clinical experience with Cushing's disease showed that the initial surgical procedure may be directed to the pituitary and only in unsuccessful surgery to the adrenals. Adrenal autotransplantation after total adrenalectomy is an obsolete procedure.

Adrenal Cortex↗

Fetal adrenal cortex.

The fetal adrenal cortex is the central steroid modulator in the fetal placental complex. Its anatomic structure and physiology clearly identify it as a uniquely fetal organ that undergoes atrophy to a fraction of its intrauterine size after birth and assumes markedly different steroidogenic functions on the assumption of extrauterine life. Its importance as a regulator of maturation and parturition in normal gestation is just being understood. The fetal adrenal cortex no doubt plays major roles in the pathogenesis of some of the most important clinical problems currently faced in contemporary obstetrics. Continued research that provides a more complete understanding of this organ will serve as the major base for innovative diagnostic and therapeutic advancements of the future.

Adrenal Cortex↗

[The development of the adrenal cortex in pig (Sus scrofa domestica). (A contribution on the development of the fetal interior zone of the adrenal cortex in pig) (author's transl)].

The adrenals of pigs have been investigated histologically and histochemically during different periods of time pre- and postnatally. The pig (Sus scrofa domestica) shows a proper fetal cortex in the prenatal development of the adrenal gland. This involves slowly during the last quarter of pregnancy. A weight reduction is not noted thereby. Just before delivery the adrenal cortex of the pig has been subdivided into a zona arcuata and zona fasciculata. The zona reticularis develops only postnatally.

Adrenal Cortex↗