Mechanisms of guanine nucleotide-mediated regulation of adenylate cyclase activity.
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Biomedical subjects
Publications and source records attributed to M Smigel.
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Microsomes prepared from rabbit renal cortex were found to synthesize substantial amounts of 6-ketoprostaglandin F1alpha from prostaglandin G2 or arachidonic acid during an incubation. In contrast, no 6-ketoprostaglandin F1alpha was formed by renal medullary microsomes which synthesize predominantly prostaglandin E2. Mass spectral confirmation of the structure of 6-ketoprostaglandin F1alpha from these incubations demonstrates the ability of the renal cortex to synthesize prostacyclin.
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Studies demonstrating the antagonism by prostaglandins (PGs) of antidiuretic hormone (ADH) action led to the proposal that renal medullary PGs may act to attenuate the physiologic effects of ADH via a negative-feedback loop. Therefore, we examined urinary PG excretion, an indicator of renal PG synthesis, in rats with hereditary diabetes insipidus (DI) utilizing gas chromatography-mass spectrometry. The DI rats, devoid of ADH, excrete much less prostaglandin E2 (PGE2) than normal Long-Evans rats (39 +/- 5 vs. 228 +/- 53 ng/24 h, means +/- SE, P less than 0.005). DI and normal rats were treated for 35 days with ADH while separate groups of DI and normal controls received vehicle only. The ADH treatment increased urinary PGE2 excretion in DI rats to 233 +/- 35 ng/24 h whereas PGE2 excretion was unaffected by vehicle treatment. ADH treatment in normal rats similarly increased PGE2 excretion from 215 +/- 49 to 410 +/- 63 ng/24 h (P less than 0.05). To determine whether the rise in PGE2 excretion is the result of the rise in papillary osmolality, we subjected DI rats to dehydration, which increased urine osmolality from 130 +/- 10 to 302 +/- 12 mosmol/kg H2O but left urinary PGE2 unaffected. We conclude that ADH stimulates renal medullary PGE2 synthesis in vivo.
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Rat liver plasma membranes bind prostaglandins E1 and E2 (PGE) with high affinity and specificity. We have solubilized plasma membranes, prelabeled with radioactive PGE1, in water solutions of Triton X-100. We sedimented this material into sucrose density gradient containing H2O and D2O. From numerical integration of the sedimentation equation, taking explicitly into account the density and viscosity gradients present during the centrifugation, we have determined a value of s20,w = 5.6 to 5.7 X 10(-13) s and a partial specific volume, v = 0.80 to 0.81 cm3/g, for the PGE binding protein-Triton X-100 composed of 60% (w/w) protein and 40% (w/w) detergent. Gel filtration in water solutions of Triton X-100 gives a Stokes radius of 53 A for the complex. These data imply a molecular weight of 105,000 for the detergent-free binding protein and a frictional ratio of 1.3 for the complex. If the detergent is bound to the protein in a monolayer, about 40% of the PGE binding protein's surface would be covered with detergent. The procedures used in the analysis of the sedimentation behavior of the PGE binding protein-detergent complex, when coupled with a gel filtration measurement of the Stokes radius, allow valid determination of the size, shape, and extent of detergent binding of a wide variety of membrane proteins, even when they are present as minor components of complex mixtures.
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Human urine was analyzed by mass spectrometry for the presence of prostaglandins. Prostaglandin E2 and F2alpha were detected in urine from females by selected ion monitoring of the prostaglandin E2-methylester-methoxime bis-acetate and the prostaglandin F2alpha-methyl ester-Tris-trimethylsilylether derivative. Additional evidence for the presence of prostaglandin F2alpha was obtained by isolating from female urine an amount of this prostaglandin sufficient to yield a complete mass spectrum. The methods utilized permitted quantitative analysis. The origin of urinary prostaglandin was determined by stimulating renal prostaglandin synthesis by arachidonic acid or angiotensin infusion. Arachidonic acid, the precursor of prostaglandin E2, when infused into one renal artery of a dog led to a significant increase in the excretion rate of this prostaglandin. Similarly, infusion of angiotensin II amide led to a significantly increased ipsilateral excretion rate of prostaglandin E2 and F2a in spite of a simultaneous decrease in the creatinine clearance. In man, i.v. infusion of angiotensin also led to an increased urinary eliminiation of prostaglandin E. These results show that urinary prostaglandins may originate from the kidney, indicating that renally synthesized prostaglandins diffuse or are excreted into the tubule. Thus, urinary prostaglandins are a reflection of renal prostaglandin synthesis and have potential as a tool to delineate renal prostaglandin physiology and pathology.
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There have been several reports describing paracrystalline arrays in the intermembrane space of mitochondria. On closer inspection these structures appear to be junctions of two adjoining membranes. There are two types. They can be formed between the outer and inner mitochondrial membranes (designated outer-inner membrane junctions) or between two cristal membranes (intercristal membrane junctions). In rat heart, adjoining membranes appeared associated via a central dense midline approximately 30 A wide. In rat kidney, the junction had a ladder-like appearance with electron-dense "bridges" approximately 80 A wide, spaced 130 A apart, connecting the adjoining membranes. We have investigated the conditions which favor the visualization of such structures in mitochondria. Heart mitochondria isolated rapidly from fresh tissue (within 30 min of death) contain membrane junctions in approximately 10-15% of the cross sections. This would indicate that the percentage of membrane junctions in the entire mitochondrion is far greater. Mitochondria isolated from heart tissue which was stored for 1 h at 0 degrees -4 degrees C showed an increased number of membrane junctions, so that 80% of the mitochondrial cross sections show membrane junctions. No membrane junctions are observed in mitochondria in rapidly fixed fresh tissue or in mitochondria isolated from tissue disrupted in fixative. Thus, the visualization of junctions in the intermembrane space of mitochondria appears to be dependent upon the storage of tissue after death. Membrane junctions can also be observed in mitochondria from other stored tissues such as skeletal muscle, kidney, and interstitial cells from large and small intestine. In each case, no such junctions are observed in these tissues when they are fixed immediately after removal from the animal. It would appear that most studies in the literature in which isolated mitochondria from tissues such as heart or kidney were used were carried out on mitochondria which contained membrane junctions. The presence of such structures does not significantly affect normal mitochondrial function in terms of respiratory control and oxidative phosphorylation.