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R Neher

Publications and source records attributed to R Neher.

At least 19 recordsLinked to original sources

Optimizing imaging parameters for the separation of multiple labels in a fluorescence image.

A theoretical analysis is presented on how to separate the contributions from individual, simultaneously present fluorophores in a spectrally resolved image. Equations are derived that allow the calculation of the signal-to-noise ratio of the estimates for such contributions, given the spectral information on the individual fluorophores, the excitation wavelengths and intensities, and the number and widths of the spectral detection channels. We then ask how such imaging parameters have to be chosen for optimal fluorophore separation. We optimize the signal-to-noise ratio or optimize a newly defined 'figure of merit', which is a measure of efficiency in the use of emitted photons. The influence of photobleaching on the resolution and on the choice of imaging parameters is discussed, as well as the additional resolution gained by including fluorescence lifetime information. A surprisingly small number of spectral channels are required for an almost optimal resolution, if the borders of these channels are optimally selected. The detailed consideration of photobleaching is found to be essential, whenever there is significant bleaching. Consideration of fluorescence lifetime information (in addition to spectral information) improves results, particularly when lifetimes differ by more than a factor of two.

Bacterial Proteins↗

Rat adrenal cycloheximide-sensitive factors and phospholipids in the control of acute steroidogenesis.

ACTH in vivo induces the formation of several steroidogenic factors in both cytosol and extramitochondrial particulate fractions of rat adrenal. Cycloheximide prevents the formation of these factors. Here we show the presence of a cytosolic steroidogenic component (C1) which is cycloheximide-sensitive and not ACTH-dependent. C1 is able to solubilize an ACTH-dependent steroidogenic factor (C2) from particulate fractions resulting in the release of the rat-limiting constraint of mitochondrial steroidogenesis. The thermolabile and trypsin-resistant factor C1 has an apparent mol.wt of 28,000 Daltons. In contrast, the cycloheximide-sensitive factor C2 from extra-mitochondrial fractions of ACTH-treated rats comigrates on Sephadex G-10 with phospholipids. Endogenous phospholipids isolated from particulate adrenal fractions of ACTH-treated rats or exogenous phospholipids will also stimulate steroidogenesis in vitro. Indeed, cytosolic solubilizing factor C1 enhances the exogenous phospholipid effect 3-4-fold. The results taken together suggest that C1 may be very similar to a well defined phospholipid exchange protein and C2 is itself a phospholipid. Both factors seem to be obligatory for the ACTH-induced steroidogenesis.

Adrenal Glands↗

Compartmentalization of corticotropin-dependent steroidogenic factors in adrenal cortex: evidence for a post-translational cascade in stimulation of the cholesterol side-chain split.

A sensitive cell-free assay was developed for the analysis of corticotropin-dependent factors that stimulate the rate-limiting step of adrenal steroidogenesis. In this assay adrenal post-mitochondrial supernates from corticotropin-stimulated rats caused a 10- to 100-fold increase in the de novo synthesis of pregnenolone and progesterone. A similar stimulation was observed by corresponding fractions from Leydig cells and mouse Y-1 adrenal tumor cells, but not from rat liver. Subcellular fractionation of rat adrenal tissue showed several steroidogenic factors to be present in various compartments. Recombination of them produced highly synergistic effects. The activation of some components could also be demonstrated in vitro, suggesting a cascade of events possibly linking the cAMP-dependent phosphorylation pathway with the rate-limiting step. Cycloheximide prevented the production of these steroidogenic factors in vivo upon stimulation but had no effect in vitro, suggesting a post-translational cascade involved in the activation of the cholesterol side-chain split.

Adrenal Cortex↗

Steroidogenic action of calcium ions in isolated adrenocortical cells.

The corticotropin-induced increase of total intracellular and receptor-bound cyclic AMP in isolated rat adrenocortical cells was strictly dependent on extracellular Ca(2+). A rise in bound cyclic AMP with rising Ca(2+) concentrations was accompanied by a decrease in free cyclic AMP-receptor sites. A Ca(2+)-transport inhibitor abolished the rise in bound cyclic AMP induced by corticotropin. These data suggested that during stimulation by corticotropin some Ca(2+) has to be taken up in order to promote the rise of the relevant cyclic AMP pool. In agreement with this view, adenylate cyclase activity from isolated cells proved also to be dependent on a sub-millimolar Ca(2+) concentration in the presence of corticotropin and GTP. When cells were treated under specific conditions, corticosterone production could be activated by Ca(2+) in the absence of corticotropin (cells primed for Ca(2+)). Ca(2+)-induced steroidogenesis of these cells, in the absence of corticotropin, was also accompanied by an increase in total intracellular and receptor-bound cyclic AMP, as was found previously with corticotropin-induced steroidogenesis in non-primed cells. Calcium ionophores increasing the cell uptake of Ca(2+) were not able, however, to increase the cyclic AMP pools in non-primed cells, unlike corticotropin in nonprimed cells or Ca(2+) in cells primed for Ca(2+). It was concluded that during stimulation by either corticotropin or Ca(2+) a possible cellular uptake of Ca(2+) must be very limited and directed to a specific site which may affect the coupling of the hormone-receptor-adenylate cyclase complex.

Adenylyl Cyclases↗

Steroidogenesis in isolated adrenocortical cells. Correlation with receptor-bound adenosine e 3':5'-cyclic monophosphate.

Because several groups have recently questioned a mediating role for cyclic AMP in adrenocortical steroidogenesis, we analysed the problem in more detail by measuring three different cyclic AMP pools in cells isolated from decapsulated rat adrenals. Extra-cellular, total intracellular and bound intracellular cyclic AMP were determined by radioimmunoassay in comparison with corticosterone production induced by low corticotropin concentrations. The increase in extracellular and total intracellular cyclic AMP with low corticotropin concentrations was dependent on the presence of a phosphodiesterase inhibitor and short incubation times. Bound intracellular cyclic AMP was less dependent on these two parameters. In unstimulated cells cyclic AMP bound to its receptor represents only a small fraction of the total intracellular cyclic AMP. After stimulation by a concentration of corticotropin around the threshold for corticosterone production, an increase in bound cyclic AMP was observed which correlated very well with steroidogenesis both temporally and with respect to corticotropin concentration. This finding was complemented by measuring a concomitant decrease in free receptor sites. Full occupancy of the receptors was not necessary for maximal steroidogenesis. Binding kinetics of cyclic [(3)H]AMP in concentrations equivalent to the intracellular cyclic AMP concentration suggest the presence of at least three different intracellular cyclic AMP pools. These observations are in agreement with a possible role for cyclic AMP as a mediator of acute steroidogenesis induced by low corticotropin concentrations.

Adrenal Cortex↗

Adrenocorticotropin (ACTH) induces phosphorylation of a cytoplasmic protein in intact isolated adrenocortical cells.

In 32P incorporation experiments with intact adrenocortical cells, adrenocorticotropin (ACTH) or adenosine 3',5'-cyclic monophosphate (cAMP) induced a rapid and transient increase of approximately 300-500% in the phosphorylation of a 32P-containing cytoplasmic protein of about 150,000 daltons (APS150). Half-maximal stimulation of APS150 phosphorylation was observed with about 3 pM ACTH. Receptor-bound cAMP, corticosterone production, and the appearance of phosphorylated APS150 increased in parallel with respect to both time and ACTH concentration. All three responses were dependent on extracellular calcium. Inhibition of protein synthesis with cycloheximide suggested a half-life of APS150 of about 10 min. The time course of 32P incorporation into ACTH-induced APS150 in the absence and presence of nonradioactive phosphate shows that the phosphorylation of APS150 is under simultaneous control of cAMP-dependent protein kinase and of phosphoatase activity. Thus a rapid ACTH-dependent and cAMP-dependent protein phosphorylation in intact adrenocortical cells within steroidogenic ACTH concentrations has now been demonstrated.

Adrenal Cortex↗

Steroidogenesis in isolated adrenal cells: excitation by calcium.

Calcium salts were found to replace ACTH in inducing steroidogenesis in isolated adrenocortical cells from rats. This Ca-specific stimulation occurred when the cation was presented to the cells in the presence of phosphate and carbonate as a counter-ions under conditions which favoured the formation of colloidal calcium. Colloid generation and stabilization was facilitated by the use of calcium buffers and gelatin. Stable soluble or sparingly soluble calcium complexes were inactive. The preparation of cells and metastable calcium solutions is described in detail. The Ca trigger was sensitive to Ca deprivation or inhibitors of Ca transport and could be replced by Sr. The relative role of Ca and cyclic AMP as second messengers is discussed.

Adrenal Glands↗

Mode of action of peptide hormones.

The mode of action is discussed of the peptide hormones which trigger neosynthesis of a specific product in their target cells without being involved in any release step. Particular attention is paid to the early events elicited by ACTH in isolated adrenocortical cells. It is shown that extracellular calcium ions at physiological concentrations can serve as first messenger activating steroidogenesis if the isolated cells are pretreated in an appropriate ionic environment. Among other factors the extracellular calcium/phosphate ratio seems to be of importance. A model is proposed where calcium serves as direct messenger in the physiological activation by ACTH, cyclic AMP being a subserving factor maintaining full steroidogenesis.

Adrenal Cortex↗