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R Taugner

Publications and source records attributed to R Taugner.

At least 37 records · Page 2Linked to original sources

The morphological basis of fluid balance in the interstitium of the juxtaglomerular apparatus.

The morphological basis of fluid balance in the interstitium of the juxtaglomerular apparatus (JGA) was reevaluated in rats, mice and Tupaia. Three ultrastructural features in the region of the vascular pole of the renal corpuscle are described that may be important for the fluid balance in this region: (1) podocyte foot processes in the parietal layer of Bowman's capsule, (2) endothelial fenestrations in the wall of the incoming afferent arteriole, both facing Goormaghtigh and epithelioid cells, and (3) the mesangial-type lining of the glomerular stalk. With respect to the relevant pressure gradients, this morphology may provide the basis of bulk-fluid flow directed to the interstitium of the JGA including the Goormaghtigh cell field. Thus, the fluid balance in the lacis area and, consequently, the tubulo-glomerular feedback mechanism, probably does not solely depend upon the reabsorptive transport of the macula densa. Similar considerations may be valid for the humoral control of renin secretion from juxtaglomerular epithelioid cells.

Animals

Renin activation in juvenile secretory granules? Immunocytochemical experiments with an antiserum directed against the prosegment of human renin.

In immunocytochemical experiments on human kidney tissue with an antiserum directed against the prosegment of renin, only juvenile granules were clearly labeled. As the concentration of renin increases from protogranules to more mature granules, while the concentration of its prosegment decreases to subthreshold levels, it is assumed that the cleavage of the prosegment, i.e. the activation of renin, takes place in juvenile granules parallel to the condensation of the enzyme.

Cytoplasmic Granules

Cathepsin D coexists with renin in the secretory granules of juxtaglomerular epithelioid cells.

Mature juxtaglomerular epithelioid cell secretory granules of the rat exhibit both renin- and cathepsin D-like immunoreactivity. On the basis of the coexistence with renin at a pH which, according to previous experiments, is probably in the range of that in lysosomes, cathepsin D is suggested to be involved in the regulation of the granular renin stores available for secretion.

Animals

Long-term culture of renin containing tissue.

Thin cortical tissue explants from kidneys of hydronephrotic mice were excised and incubated in different culture media containing growth and proliferation factors. Over a period of several months the content of renin in the explants and in the culture medium was repeatedly measured, to define the conditions necessary for the maintenance of renin production in a long-term culture. The best results were obtained when culturing the renal tissue in Dulbecco's medium (DMEM) with 10% fetal calf serum, 6 units/100 ml platelet-derived growth factor and 200 ng/ml glycylhistidyllysine. Renin was still present within the cells and in the culture medium after more than six months. Prevention of dedifferentiation, as evidenced in this case by the maintenance of renin production, seemed to be dependent on specific extracellular matrix proteins of renal origin. If the explants were dissociated from their matrix components by collagenase, a gradual loss of renin production was observed within 5 days. Complementation of the collagenase-digested cell suspension with different nonrenal extracellular matrix materials did not afford the stabilizing effect of the original pericellular matrix.

Animals

Junctional transmission in renin-containing and smooth muscle cells of the afferent arteriole.

Intracellular recordings were done in renin-containing juxtaglomerular (JG) and vascular smooth muscle (VSM) cells of the mouse kidney afferent arteriole. Both cell types exhibited a membrane potential around -75 mV and spontaneous depolarizing transients resembling spontaneous excitatory junction potentials (SEJPs) in the arterioles of other organs. The amplitude distribution of these randomly occurring transients was skewed in both cell types with a modal value of 1.2-1.9 mV. Activation of presumably postjunctional alpha 1-, P2-, ANG II- and AVP-receptors depolarized JG and VSM cells. Application of the P1-purinoceptor agonist 2-chloroadenosine strongly increased frequency and amplitude of the SEJP-like events, whereas these transients were abolished by the P1-purinoceptor antagonist 8-phenyltheophylline, both substances presumably acting on prejunctional receptors. The SEJP-like events were completely depressed by reserpine treatment, but not abolished by alpha 1-, alpha 2-, and P2-antagonists. At present, it cannot be decided, whether norepinephrine is the sole transmitter in the afferent arteriole, acting on specialized junctional adrenoceptors with the P2-purinoceptors being irrelevant for junctional transmission, or whether both substances are co-transmitters. Except norepinephrine and ATP, all other transmitter candidates tested were ruled out for various reasons.

Animals

Ultrastructure, renin status, contractile and electrophysiological properties of the afferent glomerular arteriole in the rat hydronephrotic kidney.

Histological, ultrastructural, immunohistochemical, intravital microscopic and electrophysiological techniques have been applied to study experimental hydronephrosis in rats in order to assess its value as a preparation for the investigation of renal microcirculation and of the electrophysiological properties of the renin-containing juxtaglomerular (JG) cells of the afferent glomerular arteriole. As hydronephrosis develops, the kidney parenchyma becomes progressively thinner owing to tubular atrophy. Twelve weeks after ureteral ligature, this process results in a transparent tissue sheet of about 150-200 microns in thickness. In this preparation, the renal arterial tree as well as the glomeruli can be easily visualized for intravital microscopic studies, e.g. the determination of kidney vessel diameters, or the identification of JG cells for penetration with an intracellular microelectrode. In contrast to the tubular atrophy, the vascular system is well preserved, and the JG cells and the sympathetic axon terminals are ultrastructurally intact. This is also true for the glomeruli, except for a certain confluence of the podocyte foot processes and a thickening of the basal laminae. Renin immunostaining and kidney renin content in the hydronephrotic organ correspond to those in control kidneys. In addition, there are no differences in the plasma renin levels of hydronephrotic and control rats. Intravital microscopic observations reveal that the renal vascular tree reacts in a typical, concentration dependent manner to the vasoconstrictor agent angiotensin II, mainly at the level of the resistance vessels. Electrophysiological recordings from juxtaglomerular granulated cells show a high membrane potential (-60 mV), and spontaneous depolarizing junction potentials, owing to random transmitter release from the nerve terminals. Angiotensin II, an inhibitor of renin release, depolarizes JG cells reversibly. Hence, we may infer that the hydronephrotic rat kidney is a suitable model for in vivo studies of the renal microcirculation as well as for in vitro investigations of the electrophysiological properties of the media cells of the afferent glomerular arteriole.

Angiotensin II

Epithelioid cells: membrane potential changes induced by substances influencing renin secretion.

Microelectrode recordings were performed in renin-containing epithelioid (JG) and vascular smooth muscle (VSM) cells of the afferent arteriole in the isolated hydronephrotic mouse kidney. Both cell types had a membrane potential of about -75 mV and exhibited small, spontaneous depolarizing transients, probably resulting from random transmitter release by sympathetic axon terminals. Substances depressing renin secretion, such as angiotensin II, arginine-vasopressin, and alpha 1-adrenergic agents reversibly depolarized both JG and VSM cells. On a molar basis, the action of angiotensin II was strongest. Stimulators of renin release, e.g. isoproterenol, histamine, and prostaglandin E2 did not influence the membrane potential of both cell types. VIP and NPY, possible co-transmitters of norepinephrine, as well as AP II, were also without effect. It is proposed that suppression of renin secretion from JG cells is mediated by depolarization and Ca2+ influx, whereas stimulation is triggered independently from membrane potential changes, e.g. by adenylate cyclase activation.

Angiotensin II

Atrial natriuretic peptide inhibits renin release from juxtaglomerular cells by a cGMP-mediated process.

We have examined the effect of a synthetic analogue of human alpha-atrial natriuretic peptide (ANP), APII, on renin release in cultured renal juxtaglomerular cells (JGA cells). Using cell cultures containing 80-90% renal juxtaglomerular cells, we found that ANP (10(-13)-10(-9) M) strongly inhibited renin release from the cells in a dose-dependent fashion (ki, 10 pM) to about 10% of control. Inhibition of renin release by ANP was paralleled by an increase in cellular cGMP levels; while in the presence of the cGMP-phosphodiesterase inhibitor M&B 22948 (1 mM), concentrations of ANP lower by a factor of 100 were required to obtain the same effects on renin release and cGMP levels. The guanylate cyclase inhibitor methylene blue (10 microM), on the other hand, shifted the dose-response curves for renin release and cGMP levels to 100-fold higher concentrations of ANP. Neither the influx of 45Ca into the cells nor the intracellular quin-2 signal, which is a measure for changes of intracellular Ca concentration, was in any way altered by ANP. Our results suggest that ANP inhibits renin release from juxtaglomerular cells by a cGMP-dependent process that does not involve changes in intracellular calcium.

Aminoquinolines

Role of protein kinase C in inhibition of renin release caused by vasoconstrictors.

It was the aim of the present study to get insight into some of the intracellular mechanisms by which the vasoconstrictor hormones angiotensin II (ANG II), arginine vasopressin (AVP), and norepinephrine (NE) inhibit renin release from renal juxtaglomerular cells. To this end a primary cell culture from rat renal cortex was established that consisted of 50% juxtaglomerular cells. The cultured juxtaglomerular cells contained prominent renin granules closely resembling those in the intact kidney and responded to a number of stimuli of renin release. By using these cultures, we found that ANG II (10(-7) M), AVP (10(-6) M), and NE (10(-5) M) inhibited renin release and increased the calcium permeability of the plasma membrane of the cultured cells. Both the effects on renin release and on calcium permeability could be diminished or even be abolished by the calcium channel blocker verapamil (Vp) (10(-5) M). ANG II, AVP, and NE led to an increased formation of diacylglycerol (DAG), a well-known stimulator of protein kinase C (PKC). Moreover, a direct stimulation of PKC by 12-O-tetradecanoylphorbol-13-acetate (TPA) (10(-8)-10(-6) M) also inhibited renin release and increased the calcium permeability of the cell membrane. Similar to ANG II, AVP, and NE, the effects of TPA on calcium permeability and renin release could be diminished by Vp. In conclusion, these results point toward a common mechanism by which vasoconstrictors inhibit renin release from renal juxtaglomerular cells: ANG II, AVP, and NE activate a phospholipase C, which generates DAG.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II

Renin status of the afferent arteriole and ultrastructure of the juxtaglomerular apparatus in 'superficial' juxtamedullary nephrons from rats.

The present light (LM) and transmission electron microscopic (TEM) studies were carried out to further document the anatomy of the 'superficial' juxtamedullary nephrons (SJMNs) located on the inside cortical surface of the rat kidney. TEM revealed that SJMNs possess all vascular and tubular cell types constituting the juxtaglomerular apparatus (JGA) in typical cortical and juxtamedullary nephrons (JMNs). Proximal to the glomeruli, epithelioid cells filled with secretory granules predominated in the media of afferent arterioles. The presence of renin in the granules was immunocytochemically demonstrated by the protein A-gold method. Further upstream from the glomeruli, epithelioid cells alternated with plain smooth muscle cells. The use of renin and angiotensin II antisera revealed similar arteriolar distributions of renin and angiotensin II positive cells in SJMNs as well as in typical JMNs. Numerous nerve terminals were found along afferent and efferent arterioles, suggesting a dense innervation of these vessels. The distribution of renin-containing (i.e., epithelioid) cells in the preglomerular arterioles was assessed in various nephron populations by LM using the PAP method and renin antiserum. In SJMNs, most renin-positive cells were found in the vicinity of the JGA along a mean arteriolar length of 35 +/- 3 micron (range 7-107 micron). In JMNs, renin-positive cells had a similar distribution along a mean arteriolar length of 35 +/- 1 micron. Scattered renin-positive cells were observed up to a maximal arteriolar length of 173 and 238 micron in SJMNs and JMNs, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II

The hydronephrotic kidney of the mouse as a tool for intravital microscopy and in vitro electrophysiological studies of renin-containing cells.

Experimental hydronephrosis in mice has been studied with histological, ultrastructural, immunohistochemical, biochemical, and electrophysiological techniques to establish its value as a preparation for the investigation of glomerular microcirculation as well as the electrophysiological and biochemical properties of the renin-containing juxtaglomerular (JG) and vascular smooth muscle (VSM) cells of the afferent glomerular arteriole. During developing hydronephrosis the kidney parenchyma becomes progressively thinner as a result of tubular atrophy, being, after 12 weeks, a tissue sheet of about 200 micron in thickness. In this preparation, the renal arterial tree, in particular the glomerular arterioles, and also the glomeruli can be easily visualized. This permits intravital microscopic studies or direct visual identification of JG and VSM cells for microelectrode impalement. In spite of complete tubular atrophy, the vascular system is well preserved. Ultrastructurally, JG and VSM cells as well as the axon terminals innervating the vessels are intact. The same holds for the glomeruli except for a certain confluence of the podocyte foot processes and a thickening of the basal lamina. Renin immunostaining and kidney renin content in the hydronephrotic organ correspond to those in control kidneys. In addition, renin release from this preparation can be stimulated in a typical manner by isoproterenol and inhibited by angiotensin II, indicating that the receptors controling renin release and the secretory mechanism itself are still intact. Electrophysiological recordings from JG and VSM cells show a high membrane potential (-75 mv), and spontaneous depolarizing junction potentials, owing to transmitter release from the nerve terminals. Inhibitors of renin secretion, e.g. angiotensin II, depolarize both cell types, whereas stimulators such as isoproterenol do not change the membrane potential. We conclude that the hydronephrotic mouse kidney is a suitable model for in vitro studies of the electrophysiology and biochemistry of the media cells of the afferent arteriole, as well as for in vivo studies of glomerular microcirculation.

Animals

Are the renin-containing granules of juxtaglomerular epithelioid cells modified lysosomes?

Mature secretory granules of epithelioid cells--the so-called renin granules--exhibit certain properties, which in this particular combination are expressed only by lysosomes: Renin granules have autophagic capabilities; they react to the application of lipidosis-inducing, lysosomotropic substances by the gradual accumulation of polar lipids; all secretory granules of epithelioid cells contain acid phosphatase until maturity; and exogenous tracers reach renin granules without labeling the Golgi complex. Several functional implications can therefore be considered. Hydrolytic enzymes, constitutive elements of the granule matrix, might either cleave inactive prorenin to yield active renin within the granules or, by unspecific hydrolysis of renin, participate in the regulation of the overall quantity of secretory product. Autophagic phenomena, the involvement of renin granules in the traffic of exogenous tracers, and the build-up of polar lipids following experimental interference with lipid catabolism indicate a large turnover of membrane material in renin granules. They also suggest that cytoplasmic and extracellular fluid gains access to the granule content and may thus be involved there in the regulation of biochemical reactions by changing the intragranular milieu or via signal molecules. In addition to the lysosome-like properties of epithelioid cell secretory granules, the secretory product, renin, as a carboxyl protease, is structurally related to other acidic proteases. In the case of cathepsin D, even functional similarities exist.

Acid Phosphatase

Coexistence of renin and cathepsin B in epithelioid cell secretory granules.

Mature juxtaglomerular epithelioid cell secretory granules of the rat exhibit both renin- and cathepsin B-like immunoreactivity. On the basis of the coexistence with renin at a pH which, according to previous experiments, is probably in the range of that in lysosomes, cathepsin B is suggested to be involved in the activation of renin prior to secretion.

Animals

Improvement of freeze-fracture autoradiography for localization of soluble substances in tissue samples.

Freeze-fracture autoradiography is accepted as an adequate technique for localization studies of soluble substances at the electron microscopical level. The method, however, involves many critical preparation steps, among them a protective carbon coating of the developed nuclear emulsion adhering to the replica. We demonstrate here that this additional carbon coating may be omitted. This simplification leads to a significant improvement of the sample yield as compared with the previously described procedures.

Animals

Intracellular recordings from renin-positive cells of the afferent glomerular arteriole.

Intracellular recordings were made in juxtaglomerular granulated (JG) cells and in vascular smooth muscle (VSM) cells in afferent arterioles of hydronephrotic mouse kidneys. Both cell types did not differ in their passive and active electrical membrane properties; membrane potential was about -58 mV, input resistance exceeded 400 M omega, and JG as well as VSM cells showed spontaneous depolarizations resembling excitatory junction potentials and active responses observed in smooth muscle cells of other blood vessels in various species. These depolarizations, attributed to spontaneous transmitter release from adrenergic terminals, were extremely polymorphous and quite frequent. Epinephrine, norepinephrine, phenylephrine, arginine vasopressin, and angiotensin II depolarized JG and VSM cells, but isoproterenol and orciprenaline had no effect. A hyperpolarizing action of catecholamines was never observed. It is suggested that, in this in vitro preparation, isoproterenol increases renin secretion by a mechanism independent of membrane potential changes. Depolarizations mediated by alpha-mimetic agents, arginine vasopressin, and angiotensin II, as well as by the junctional activity may inhibit renin secretion by an increased calcium influx into JG cells.

Adrenergic beta-Antagonists

Gap junctions between guinea-pig pinealocytes.

In accordance with previous results in rats, belt-like arrangements of fenestrated gap junctions have been found around the collicular segments of pineal cells in the guinea pig. In addition, macular interpinealocyte gap junctions have been observed in this species.

Animals

Glial cells in the pineal gland of mice and rats. A combined immunofluorescence and electron-microscopic study.

Antigenic markers characteristic of astrocytes and their differentiative states (i.e., glial fibrillary acidic protein (GFAP), vimentin, and M1 and C1 antigens) were investigated in the pineal gland of mouse and rat using double immunolabeling techniques. In both species the so-called interstitial cells as characterized by TEM were shown to be astrocytes, since they expressed vimentin, but neither fibronectin (a marker for fibroblasts and endothelial cells) nor the neuron-specific L1 antigen or tetanus toxin receptors. Subpopulations of vimentin-positive pineal astrocytes were also GFAP- and C1- antigen-positive. M1- antigen-positive cells were not detected. It is concluded that a considerable proportion of interstitial cells in the pineal gland of rat and mouse are immature astrocytes which, in contrast to other parts of the central nervous system, persist into adulthood.

Animals