Cyclic AMP, cyclic AMP-dependent protein kinase, and the regulation of gene expression.
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Although prenalterol is a partial beta-agonist, it has been reported to produce only a marginal, non-significant increase of cAMP in rat hearts. We studied the effect of prenalterol and isoprenaline on free and bound cAMP content in subcellular fractions of perfused rat hearts to see whether prenalterol increased cAMP and whether there were differences in the subcellular distribution of the cAMP contents after stimulation with the drugs. The in situ binding characteristics of cAMP to the protein kinases at different degree of beta-adrenergic stimulation were elucidated. Prenalterol increased significantly both total cAMP content in homogenate, bound cAMP in a 100,000 g particulate fraction and bound, free and total cAMP contents in the resulting supernatant. While prenalterol increased bound cAMP in the particulate fraction and in the supernatant proportionally, isoprenaline caused a relatively greater increase of bound cAMP in the supernatant. At equieffective concentrations regarding inotropic and lusitropic effects, prenalterol and isoprenaline increased bound cAMP in the particulate fraction to the same degree, while the increase in the other fractions was greater after isoprenaline. Thus, the cAMP bound in the particulate fraction seemed to determine the inotropic state of the cell after beta-adrenergic stimulation, supporting a compartmentation of cAMP in myocardium. In controls 31 to 34% of the total binding capacity for cAMP in the particulate fraction was occupied, increasing to 77% after maximal beta-stimulation. The binding capacity in the supernatant was only 15 to 18% saturated in the basal situation and about half saturated after maximal beta-stimulation. cAMP bound in the particulate fraction is of special interest when cAMP and functional effects are studied.
The control of steroidogenesis via signal transduction mechanisms involving cAMP-dependent and cAMP-independent mechanisms is reviewed. Several structurally unrelated factors that are potent stimulators of steroidogenesis whose actions do not require cAMP and/or synthesis of proteins have been identified. These include various interleukins, a lipophilic factor from macrophages, a steroidogenic inducing protein from follicular fluid and an imidazole compound, calmidazolium. All of these factors are capable of inducing maximum steroidogenesis. Calcium is required for steroidogenesis in all steroidogenic cells. With the exception of the effects of angiotensin II, there is little evidence for a role of IP3 in the stimulation of the release of calcium from intracellular stores in steroidogenic cells under physiological conditions. There may however, be a cAMP-mediated activation of a plasma membrane calcium channel. Chloride channels that can be regulated by cAMP-dependent and -independent mechanisms, are present in steroidogenic cells. Chloride ions exert a negative effect on steroidogenesis because exclusion of chloride from the extracellular medium markedly enhances cAMP-stimulated steroidogenesis. Arachidonic acid and its lipoxygenase products are involved in the control of steroidogenesis via cAMP mediated processes. An arachidonic acid related thioesterase has been isolated that is activated by ACTH and which may be involved in the release of arachidonic acid. It is concluded that while cAMP is a second messenger for LH/ACTH in the control of steroidogenesis, other signalling systems exist which are potentially equally effective in controlling steroidogenesis. In addition, the action of cAMP requires other signalling pathways involving calcium and chloride ions, as well as arachidonic acid and its lipoxygenase products.
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