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Microdissection in the study of renal structure. The normal nephron.

The technique of microdissection and the structure of nephrons and collecting ducts from normal kidneys were studied. The structure of the assumedly normal nephrons and collecting ducts is characterized by the uniformity of the outlines of the tubules. The various parts of the tubules are distinguished by the differences in diameter and epithelial structure.

Adult

Isolated microperfused tubule model to evaluate contrast media transport in normal and occluded renal tubule segments.

We evaluated tubular handling of urographic contrast media in normal and obstructed states by the use of a model which allowed direct evaluation of transcellular flux. Segments of rabbit renal tubule were harvested by microdissection. Individual tubular segments were cannulated by micropipette while immersed in a serum bath. Radioactive iodine-labeled sodium iothalamate was added to the perfusate of normal and distally obstructed nephron segments. Any iothalamate that moved through the tubule wall was recovered in the bath. The tubular epithelium was counted to determine epithelial concentration of iothalamate. A small efflux of contrast medium occurred which was unaffected by acute obstruction and increased pressure. Proximal straight tubules were more permeable to sodium iothalamate than cortical collecting tubules.

Animals

Rod-shaped particles in the plasma membrane of the mitochondria-rich cell of amphibian epidermis.

A freeze-fracture study has revealed rod-shaped intramembranous particles on the plasma membrane P-face (cytoplasmic leaflet) of the mitochondria-rich cell (or flask cell) of Xenopus laevis and Rana ridibunda epidermis. Such particles have previously been found in all other mitochondria rich cells examined by this technique, namely, the MR-cell of toad bladder epithelium, the dark cell of rat kidney collecting tubule, and the flask cell of Xenopus kidney collecting tubule. These particles are assumed, therefore, to be closely connected with the function of this cell type.

Animals

A micropuncture study of the renal handling of lithium.

Although clearance studies in man and experimental animals indicate that filtered lithium is reabsorbed primarily in the proximal tubule, it is unclear whether lithium is also reabsorbed in distal portions of the nephron. Micropuncture studies were, therefore, performed to determine the nephron sites involved in lithium transport during free flow. A method was established to estimate the concentration of lithium in nanoliter samples, using the Helium Glow photometer, which permitted the accurate measurement of lithium in tubular fluid samples over a range from 0.5--30.0 mM. Approximately 56% of filtered lithium and tubular fluid was reabsorbed at the end of the proximal convolution, while at the early distal tubule 75% of filtered lithium and water was reabsorbed. There was no change in net transepithelial movement of lithium beyond the loop of Henle. These data suggest that lithium transport is localized to the proximal tubule, including the pars recta. Lithium reabsorption does not occur in distal tubule or collecting duct. Beyond the early distal tubule net movement of lithium and sodium is dissociated.

Animals

Calcium transport across segments of the rabbit distal nephron in vitro.

The mechanism of Ca2+ transport by various segments of the distal nephron was studied in vitro using the isolated perfused tubule technique. Calcium absorption in the distal convoluted tubule (DCT) and the granular portion of the cortical collecting duct (CCTg) was significantly enhanced in the presence of parathyroid hormone (PTH), 3 X 10(-2) U/ml. Na+ was absorbed from and K+ was secreted into the lumen of the DCT. The presence of amiloride (5 X 10(-5) M) or furosemide (5 X 10(-5) M) in the perfusate of DCT each caused a partial inhibition of Na+ but not Ca2+ absorption. The foregoing result with Na+ is consistent with the heterogeneous nature of DCT. Net Na+ absorption and K+ secretion also occurred in the CCTg; both processes were completely inhibited by amiloride. Ca2+ absorption occurred in the thick ascending limb of Henle's loop; it was not enhanced by PTH, and the results were consistent with passive movement. No net Ca2+ movement was observed in the nongranular (light) segment of the cortical collecting tubule in the presence or absence of PTH or dibutyryl cyclic adenosine monophosphate.

Animals

Control of renal bicarbonate transport.

Single rabbit renal tubules were perfused in vitro to elucidate the factors that control bicarbonate transport. One factor studied was the preexisting acid-base status of the rabbits. Cortical collecting ducts from acidotic rabbits (given ammonium chloride) transported bicarbonate from lumen to bath. Collecting ducts from alkalotic rabbits (given sodium bicarbonate) transported bicarbonate in the opposite direction. Thus, bicarbonate transport by collecting ducts in vitro was conditioned by the preexisting state of the rabbit in vivo. In contrast, bicarbonate transport by proximal straight tubules and cortical thick ascending limbs was not affected by ammonium chloride or sodium bicarbonate given to the rabbits. Parathyroid hormone, the second factor studied, strongly inhibited bicarbonate absorption by proximal straight tubules.

Absorption

The connecting tubule: a functional subdivision of the rabbit distal nephron segments.

Studies on adenylate cyclase response of the nephron fragments to hormones and drugs have suggested that there is a functionally distinct segment tentatively called the connecting tubule (CNT), which is located between the distal (DT) and the cortical collecting tubule (CCT). The functional significance of these biochemical findings was examined with isolated rabbit renal tubules perfused in vitro. The transepithelial voltage (PDt) of the DT, CNT, and CCT were, respectively, -28.7 +/- 3.24 mV (24), -27.0 +/- 2.69 mV (24), and -3.5 +/- 2.14 mV (11) in the normal rabbits. The PDt of the CCT increased to -32.2 +/- 2.02 mV (33) when rabbits were pretreated for at least 3 days with deoxycorticosterone acetate, DOCA (1 mg/kg/day, i.m.), whereas the PDt of the DT and the CNT remained unchanged. The PDt of the CCT obtained from deoxycorticosterone acetate- (DOCA) treated animals decreased after addition of antidiuretic hormone (ADH) or isoproterenol (ISO) to the bath. The PDt of the CNT also responded to these agents, but the dose required to obtain the same response was quite different: The CNT was 100-fold more sensitive to ISO as compared to the CCT, whereas the CCT was 10-fold more sensitive to ADH than was the CNT. In contrast, the PDt of the DT did not respond to any of these agents, even at a higher concentration. After addition of ADH (200 microU/ml) to the bath, the osmotic water permeability (10(-8) cm2 . sec-1 . atm-1) of the CCT increased from 1.13 +/- 0.83 to 7.46 +/- 2.36, but that of the CNT remained low (0.36 +/- 0.78 in control vs. 0.48 + 0.64 after ADH). These observations support the view that the CNT is functionally distinct from either the DT or the CCT.

Animals

Renal tubular transport and catabolism of proteins and peptides.

The kidney plays an important role in the metabolism of proteins and peptides. Current evidence indicates that only the proximal tubule possesses the mechanism for degradation or transport of these substances and reabsorption of metabolic products. Proteins and large polypeptides filtered at the glomerulus are absorbed from proximal tubular fluid by luminal endocytosis into apical vacuoles. These fuse with primary lysosomes, where hydrolysis occurs followed by diffusion of metabolites out of the cells and into the blood. Recent evidence indicates that small linear peptides are handled by a different mechanism. It is likely that small peptides are degraded at the luminal surface of the brush border of proximal tubules, which contains many hydrolytic enzymes, by the process of membrane or contact digestion with reabsorption of the breakdown products. The probable biological significance of proximal tubular mechanisms for handling of proteins and peptides are conservation of amino acids, inactivation of toxic substances, and participation in the regulation of the circulating level of protein and peptide hormones.

Animals

Kallikrein localization in rodent salivary glands and kidney with the immunoglobulin-enzyme bridge technique.

Kallikrein has been localized in rodent kidney and salivary glands by means of an immunoglobulin-enzyme bridge technique. In sections of kidney, anti-kallikrein antibodies bound to the apical region of certain distal tubule segments in the cortex, to reabsorption droplets of proximal convoluted tubules, and to certain duct segments in the papilla. In salivary glands of both male and female rats and mice, and apical rim of most striated duct cells of submandibular, parotid and sublingual glands and granular tubules of submandibular glands exhibited immunoreactivity. Granular intercalated duct cells in female submandibular glands also displayed immunostaining for kallikrein. Phenylephrine administration resulted in loss of immunoreactive granules from the granular convoluted tubule cells of male mouse submandibular gland. This response was paralleled by a biochemically demonstrable decrease in kallikrein-like tosylarginine methyl ester (TAME) esterase activity.

Animals

Comparative late effects of X-rays and negative pimesons on the mouse kidney.

A system is described for comparing various modalities and fractionation schedules of radiation by means of their long-term morphologic effects upon the mouse kidney. The comparison system utilizes a grading scale for histopathologic changes in which a given histologic grade depends upon meeting defined threshold criteria, rather than quantitation of a particular measurement. Renal tubular alterations served as the basis for comparison, since they appeared more reliably defined than glomerular changes. The radiation dose that induced a specific threshold effect in kidneys from 50% of the animals at 6 months was defined as the effective dose-50%, or ED50.ED50 was found for x-rays and negative pimesons administered in 1, 2, or 5 fractions. From these data, the relative biologic effectiveness (RBE) of negative pi-mesons with respect to x-rays was determined for each fractionation schedule.

Animals

Structural changes of experimental glomerulonephritis in rats as revealed by microdissection.

Microdissection revealed striking alterations in the nephrons of animal models AICN and anti-GBMN. The most severely damaged AICN kidney in the series presented marked heterogeneity in the size and deformity of the proximal tubules, corresponding to the diverse and variegated nephrons described by Oliver in chronic Bright's disease. The severely damaged anti-GBMN kidneys revealed widespread alterations in the proximal tubules, which, however, tended to be fairly uniform among the affected nephrons. This uniformity, perhaps, reflected the shorter duration of disease in the anti-GBMN animals. The most characteristic proximal tubular alteration in either the AICN or anti-GBMN animals was that combining atrophy of the pars convoluta and hypertrophy of the pars recta in same tubule. The largest and smallest nephrons encountered in the entire study were found in the most severly damaged kidney in the AICN. This finding reflected the simultaneous existence of regressive and progressive changes in this kidney, as certain nephrons underwent hypertrophy to compensate for the atrophy and disappearance of others. The remarkable functional glomerulotubular balance of single nephrons known to exist in both AICN and anti-GBMN was matched by the evidence presented here of structural glomerulotubular balance among the severely altered nephrons of a representative kidney from each group. Microdissection studies directed toward the characterization of the nephronic alterations in both membranous glomerulonephritis and proliferative glomerulonephritis of man should be of interest in relation to the findings in these experimental rat models of human disease.

Animals

[Subcellular morphology of the tubules in the rat compensatory-hypertrophic kidney according to the morphometric data].

Ultrastructure of sinuous proximal and straight distal tubules, as well as collecting tubules of the cortical layer in the rat kidney fixed with perfusion has been studied with electron microscopic morphometry 7--8 weeks after contralateral nephrectomy. The volume of mitochondria, the area of their crisis, the area of the membranes in intracellular labyrinth and other morphometrical parameters have been calculated. Relative volume of mitochondria in the nephron areas studied does not change, while in the collecting tubules it is elevated. The area of crisis in mitochondria and "coefficient of morphological organization level" of these organells in the proximal tubules are increased, in the distal do not change, in the collecting tubules increase again. Subcellular changes described are discussed mainly in terms of enhancement of concentrating function of the compensatory-hypertrophic kidney.

Adaptation, Physiological