The anticoagulant effect of beta-asarone in the mouse and the rat.
Explore the source record for details and available documents.
Biomedical subjects
Publications and source records attributed to E Zavala.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
The anticoagulant and estrogenic effects of hexolame, N-(3-hydroxy-1,3,5(10)-estratrien-17 beta-yl)-6-hydroxyhexylamine, are described. A single subcutaneous injection of hexolame in adult and infant male mice produced dose-dependent increases in blood clotting time which could be observed even after 2 days. In ovariectomized mice, hexolame produced vaginal cornification (estrogenic response). The data suggested that if used in the treatment of prostatic cancer, hexolame, like prolame, would not induce cardiovascular accidents. It could also be useful in the prevention of thrombosis.
The anticoagulant and estrogenic effects of prolame, N-(3-hydroxy-1,3,5(10)-estratrien-17 beta-yl)-3-hydroxypropylamine, are described. A single subcutaneous injection of prolame in male mice, ovariectomized mice, adult and infant male rats, produced dose-dependent increases of blood clotting time, which could be observed with the larger doses even after 4 days. In ovariectomized mice, prolame produced vaginal cornifications of shorter duration than those produced by estradiol-17 beta. The evidence suggests that, in contrast with currently used estrogens, prolame would not generate cardiovascular accidents if used for the treatment of prostatic carcinoma; it could also be exceptionally effective for the prevention of thrombosis.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
The time course of the hydrolytic action of porcine pancreatic phospholipase A2 on sonicated dimyristoylphosphatidylcholine liposomes in the presence of variable NaCl concentrations has been studied at temperatures between 17 and 36 degrees C; at these temperatures liposomes are in the gel phase. At a NaCl concentration of 10 mM, the hydrolysis shows a small and constant lag period of 6-8 min at all temperatures within this range. As the temperature is raised into the liquid crystalline range, the latency phase lengthens monotonically so that at 36 degrees C it reaches 55 min. An increase in the NaCl concentration to 1 M makes the lag period longer at all temperatures studied, with the exception of the phase transition range (near 24 degrees C); within this temperature range, a small reduction in the lag time is observed. The increase in the length of the latency period at high salt concentrations may be due to screening of the negative surface charge generated by the nascent fatty acid which seems to be essential for the efficient interfacial binding of the enzyme. In the phase transition range of the lamellae, the unfavorable effect of high salt concentrations on the electrostatic binding of the enzyme appears to be overcome by another type of interaction. Recent findings raise the possibility that this interaction could be hydrophobic in nature.
Analysis of the time course of hydrolysis of dimyristoylphosphatidylcholine liposomes catalyzed by porcine pancreatic phospholipase A2 at 18 degrees C shows that, in the presence of 10 mM NaCl, the length of the latency period in the presteady-state phase increases from 3 to 10.5 min when the CaCl2 concentration is reduced from 15 to 1 mM. This inverse dependence of the lag period on calcium ion concentration is seen more readily at 1 M NaCl, where the induction time changes from 13.5 to 42 min by decreasing the concentration of CaCl2 from 15 to 1 mM. To interpret these results, we took into account the small amount of fatty acid that is produced during the latency phases. The fatty acid generates a negative surface electrostatic potential and makes the interfacial concentration of calcium ions different from the concentration in the bulk solvent. Variations in the analytical concentrations of NaCl and CaCl2 affect both the interfacial calcium ion concentration and electrostatic potential, as estimated theoretically from Grahame and Boltzmann equations. According to these estimates, the length of the latency period diminishes with the increase of the interfacial calcium concentration, but does not show any logical dependence on the change in surface electrostatic potential.
INTRODUCTION: The depth of sedation required for patients in critical care units varies over time and should be subject to control. The clinical assessment scales used at present are inadequate, and several electroencephalographic variables have been investigated in recent years with the aim of quantifying depth of sedation. One such variable is the spectral edge frequency 90 (SEF90). OBJECTIVES: To establish the correlation between SEF90 and the Ramsay score as indicators of depth of sedation. To estimate the ability of SEF90 to predict sedation and a patient's hemodynamic response during aspiration of secretions through the orotracheal tube. PATIENTS AND METHODS: Patients in a surgical intensive care unit. The ability of SEF90 to predict a certain Ramsay score was assessed by logistic regression. We also calculated the predictive probability (Pk) of SEF90 for the appearance of hemodynamic change and of movement in the event of endotracheal aspiration. RESULTS: When SEF90 was < 16 Hz, the probability of a Ramsay score >= 4 was >= 90% (Pk = 0.91). Neither SEF90 nor the Ramsay score predicted hemodynamic response to orotracheal aspiration. CONCLUSIONS: SEF90 distinguishes superficial from deep sedation but does not differentiate further degrees of depth or the likelihood of hemodynamic instability or movement in response to aspiration.
Explore the source record for details and available documents.
Explore the source record for details and available documents.