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Cyclopropane and the Datex Capnomac. Effect of cyclopropane on the single wavelength infrared measurement of volatile anaesthetic agents.

We report the effect of cyclopropane used for induction of anaesthesia in children on the subsequent measurement of maintenance volatile anaesthetic agents with the single wavelength infrared absorption technique. After using cyclopropane to induce anaesthesia we have observed that falsely high readings of the expired maintenance agent occur for up to 60 minutes when using the Datex Capnomac. This is because of the effect of low concentrations of cyclopropane expired from the patient.

Anesthesia, Inhalation

Positional specificity of cyclopropane ring formation from cis-octadecenoic acid isomers in Escherichia coli.

An unsaturated fatty acid auxotroph of Escherichia coli was grown with a series of cis-octadecenoate isomers in which the location of the double bond varied from positions 3 to 17. Each of these fatty acid isomers was incorporated into the cellular lipids, but cyclopropane derivatives were formed to at least a 3-fold greater extent from the cis-9 and cis-11 isomers than from any other positional isomers. The extent of cyclopropane acid formation was observed to be highly dependent on the rate of shaking of the culture. A culture shaking at 340 rev./min converted 8.7% of its oleate to the cyclopropane derivative at stationary phase, whereas a parallel culture shaken at 110 rev./min converted 66% of the oleate to a cyclopropane acid. The inability to observe selectivity or form derivatives from isomers other than the cis-9 and cis-11 isomers seems to be due to enzyme specificity rather than a secondary affect of the abnormal unconverted fatty acids on the cell, because the cis-9 isomer is converted to its cyclopropane derivative even in cells grown with abnormal unreactive positional isomers. The preferred substrates for cyclopropanecarboxylic acid formation contained a cis ethylenic bond at either the 9 position or the (n-7) position. In combination with results of previous studies the specificity reported here supports a concetpt that two different enzymes may participate in cyclopropane ring synthesis. One enzyme activity may recognize its substrate by the distance from the pi-bond to the carboxyl group and the other by the distance to the methyl group.

Cell Division

1,2,3-trisubstituted cyclopropanes as conformationally restricted peptide isosteres: application to the design and synthesis of novel renin inhibitors.

The 1,2,3-trisubstituted cyclopropanes 6 and 7 are the first members of a novel class of isosteric replacements for peptide linkages that are more generally represented by the dipeptide mimics 2 and 3. These unique peptide surrogates are specifically designed to lock a section of a peptide backbone in an extended beta-strand conformation (phi-angle restriction) while simultaneously enforcing one of two specifically defined orientations for the amino acid side chain (chi 1-angle restriction). Methods were first developed for the stereoselective, asymmetric synthesis of the trisubstituted cyclopropanes 15a-d, 18a-d, 22a-d, and 23a-d (Scheme II), by an efficient approach featuring the Rh2(S-MEPY)4 (11) and Rh2(R-MEPY)4 (20) catalyzed cyclization of the allylic diazoacetates 10a-d to give the optically active lactones 12a-d and 21a-d, respectively, in up to greater than or equal to 94% enantiomeric excess. Nucleophilic opening of the lactone ring of 12a-d gave the corresponding morpholine amides 14a-d. By exploiting tactics that allowed for selective epimerization of one of the two functionalized side chains on the cyclopropane nucleus, 14a-d were transformed into the two series of diastereoisomeric morpholine amide carboxylic acids 15a-d and 18a-d. Epimerization of the morpholine amide group on 14a-d followed by Jones oxidation of the intermediate alcohols gave 15a-d. Alternatively, initial oxidation of the primary alcohol groups in 14a-d followed by selective, base-catalyzed inversion alpha to the aldehyde function and then Jones oxidation gave the diastereomeric dicarboxylic acid derivatives 18a-d. In a similar fashion, the enantiomeric lactones 21a-d were converted into the two corresponding enantiomeric series of dicarboxylic acid derivatives 22a-d and 23a-d. Inhibitors of aspartic proteinases, of which renin is a typical example, are known to bind to the enzyme active site cleft in an extended conformation. Thus, in order to evaluate the efficacy of 1,2,3-trisubstituted cyclopropanes as rigid replacements of beta-strand secondary structure in pseudopeptidic ligands, 15a-d, 18a-d, 22a-d, and 23a-d were incorporated at the P3 subsite of the potential renin inhibitors 24a-h and 25a-h by coupling with the tripeptide replacement 8. A significant number of substances inhibited renin at nanomolar concentrations. On the basis of this preliminary test, 1,2,3-trisubstituted cyclopropanes do appear to constitute a viable new class of peptide mimics. Since the stereochemistry at each carbon on the cyclopropane ring may be altered, these novel replacements may also function as stereochemical probes to establish the conformation of pseudopeptide ligands bound to their macromolecular targets.

Amino Acid Sequence

The cardiovascular effects of cyclopropane in the intact, decerebrate and pithed rabbit preparations.

1 The anaesthetic cyclopropane was given to intact, decerebrate and pithed unanaesthetized rabbit preparations to determine the relative importance in vivo of its central and peripheral cardiovascular effects. 2 Cyclopropane elevated both the heart rate and the mean arterial pressure in the intact rabbit. 3 In the decerebrate rabbit, cyclopropane elevated the heart rate and efferent cervical preganglionic nerve activity and diminished the magnitude of these components of the aortic baroreceptor reflex, the mean arterial pressure being unaffected. 4 Apart from slight myocardial depression, cyclopropane was largely without effect in the pithed rabbit. 5 It is concluded that cyclopropane produces its cardiovascular effects by supra-collicular activation eliciting an elevation of mean arterial pressure, a central sub-collicular activation producing an increase in heart rate, and that in vivo the peripheral effects of cyclopropane are of minimal importance in comparison to these central effects.

Animals

Properties and biosynthesis of cyclopropane fatty acids in Escherichia coli.

The lipid phase transition of Escherichia coli phospholipids containing cyclopropane fatty acids was compared with the otherwise homologous phospholipids lacking cyclopropane fatty acids. The phase transitions (determined by scanning calorimetry) of the two preparations were essentially identical. Infection of E. coli with phage T3 inhibited cyclopropane fatty acid formation over 98%, whereas infection with mutants which lack the phage coded S-adenosylmethionine cleavage enzyme had no effect on cyclopropane fatty acid synthesis. These data indicate that S-adenosylmethionine is the methylene in cyclopropane fatty acid synthesis.

Coliphages

Effects of low concentrations of cyclopropane and halothane on peak velocity of saccadic eye movements.

We have investigated the effect of 4.7 and 8.8% MAC of cyclopropane, and 5.3 and 9.3% MAC of halothane on the peak velocity of saccadic eye movements (PSV) in six healthy volunteers. Both concentrations of cyclopropane and halothane significantly depressed PSV (P less than 0.01) compared with air, in a dose-related fashion. Halothane depressed PSV significantly more than cyclopropane (P less than 0.05). PSV returned to baseline within 5 min after discontinuation of the agents. There was no significant difference between cyclopropane, halothane and air in subjective assessment of sedation.

Adult

Inhibition by cyclopropane of release od norepinephrine, but not dopamine-beta-hydroxylase, from the guinea-pig vas deferens.

Like halothane, cyclopropane reduces stimulation-induced release of norepinephrine, but not release of dopamine-beta-hydroxylase, from the isolated guinea-pig vas deverens. The dissociation between transmitter release and enzyme release in the presence of cyclopropane may be the result of either an increase in the affinity of norepinephrine for binding sites on the vesicular membrane produced by cyclopropane, or a direct effect of cyclopropane on a mechanism of release of norepinephrine that could be controlled independently of release of dopamine-beta-hydroxylase.

Animals

Effects of end-tidal concentrations of cyclopropane, halothane and diethyl ether on peripheral autonomic neuroeffector systems in the rat.

The effects of the inhalation anaesthetics, cyclopropane, halothane and diethyl ether were examined on peripheral neuroeffector systems in the pithed and in the conscious rat. 2 In the absence of a suitable means of accurately quantifying doses of inhalation anaesthetics given to small animals, an apparatus was constructed whereby end-tidal gas samples were collected semi-automatically from the mechanically ventilated rat. 3 Cyclopropane (15.3 and 29.3% end-tidal), halothane (0.20, 0.52 and 0.83% end-tidal) and diethyl ether (2% and 4% end-tidal) lowered the arterial pressure of the pithed rat. Heart rate was increased by diethyl ether 4%, decreased by halothane and unchanged by cyclopropane. 4 While each anaesthetic depressed the pressor responses to sympathetic nerve stimulation, cyclopropane increased and halothane and diethyl ether depressed the pressor responses to exogenous noradrenaline. 5 Each anaesthetic reduced the motor responses of the smooth muscle of the colon to parasympathetic stimulation. 6 The significance of the effects on peripheral neuroeffector systems is discussed in relation to the overall circulatory changes produced by these anaesthetics in the whole animal.

Animals

Gas chromatographic determination of Ostwald solubility coefficients for cyclopropane, halothane and trichloroethene (trichloroethylene).

Gas chromatographic methods using solvent extraction for the analysis of cyclopropane and and trichloroethene (trichloroethylene) are described and evaluated; cyclopropane was extracted into carbon tetrachloride and trichloroethene into carbon disulphide, using chloroform and toluene respectively as the internal standards. Ostwald solubility coefficients were measured for cyclopropane, halothane and trichloroethene in Krebs solution: at 310 K the respective values +/- SEM of the Ostwald coefficients are 0.181 +/- 0.009, 0.78 +/- 0.02 and 1.54 +/- 0.02; over the temperature range 295-310 K the respective temperature coefficients of solubility are -2.27, -4.18 and -3.81 in units of per cent/K at 310 K.

Chromatography, Gas

Effects of general anaesthetics on the pH of gastric contents in man during surgery: a survey of halothane, fluoroxene and cyclopropane anesthesia.

The effect of premedication and three general anaesthetics on gastric content pH was investigated. Neither premedication with pentobarbital-atropine nor morphine-scopolamine given 1-2 h prior to anaesthesia appeared to affect the acidity of the gastric contents. Halothane invaribly increased the pH of the gastric contents; none of the seven patients studied had a gastric pH of less than 2.5 (mean 5.1) after 1 h of anesthesia. Cyclopropane uniformly maintained the acidity of the gastric contents; only one out of seven patients had a gastric content pH above 2.5 (mean 1.7) after 1 h of anaesthesia. This effect of cyclopropane in maintaining the pH of gastric contents was unaffected by the use of premedication and induction with thiopental. Fluorexene affected the pH of the gastric contents much less uniformly. Although the pH for the group as a whole gradually increased (after one hour from 1.7 plus or minus 0.2 (s.e. mean) to 3.1 plus or minus 0.7), some of the seven patients studied reacted to fluroxene with a constant low gastric content pH. The findings are discussed, and it is concluded that the risk of pulmonary complications in case of vomiting and aspiration upon emergence from anaesthesia is greater if the anaesthetic agent is cyclopropane or fluoroxene, than if it is halothane.

Anesthesia, General

Comparative effects of dextroamphetamine and reserpine on halothane and cyclopropane anesthetic requirements.

Cyclopropane minimum alveolar concentration (MAC) values in dogs following intravenous administration of 0.5, 1 or 2 mg/kg of dextroamphetamine were 27.8, 28.4, and 28.4 volumes percent, respectively. Those values did not differ significantly from each other but were 44 percent greater than average control (no dextroamphetamine(MAC values. Halothane MAC values following the same dextroamphetamine doses were 1.51, 1.71, and 1.64 volumes percent. These values were 75 percent greater than average controls, and this increase was significantly more than the 44 percent noted with cyclopropane. In contrast, 2 mg/kg of reserpine decreased halothane MAC 20 percent vut decreased cyclopropane MAC 40 percent- the difference between the two anesthetics again being statistically significant. These results suggest that alteration of anesthetic potency by centrally active adrenergic drugs depends on the sympathetic activity induced by the anesthetic. Conversely, this suggests that anesthetics may influence their own potency by altering central nervous system adrenergic activity.

Animals

Cyclopropane fatty acid synthase of Escherichia coli. Stabilization, purification, and interaction with phospholipid vesicles.

The cyclopropane fatty acid (CFA) synthase of Escherichia coli catalyzes the methylenation of the unsaturated moieties of phospholipids in a phospholipid bilayer. The methylene donor is S-adenosyl-L-methionine. The enzyme is loosely associated with the inner membrane of the bacterium and binds to and is stabilized by phospholipid vesicles. The enzyme has been purified over 500-fold by flotation with phospholipid vesicles and appears to be a monomeric protein having a molecular weight of about 90 000. The enzyme binds only to vesicles of phospholipids which contain either unsaturated or cyclopropane fatty acid moieties. CFA synthase is active on phosphatidylglycerol, phosphatidylethanolamine, and cardiolipin, the major phospholipids of E. coli, and also has some activity on phosphatidylcholine. The enzyme is equally active on phospholipid vesicles in the ordered or the disordered states of the lipid phase transition. Studies with a reagent that reacts only with the phosphatidylethanolamine molecules of the outer leaflet of a phospholipid bilayer indicate that CFA synthase reacts with phosphatidylethanolamine molecules of both the outer and the inner leaflets of phospholipid vesicles.

Cyclopropanes

Stereochemical analogs of a muscarinic, ganglionic stimulant. 2. Cis and trans olefinic, epoxide, and cyclopropane analogs related to 4-[N-(3-chlorophenyl)carbamoyloxy]-2-butynyltrimethylammonium chloride (McN-A-343).

Preparation of analogs of 4-[N-(3-chlorophenyl) carbamoyloxy]-2-butynyltrimethylammonium chloride [1 (McN-A-343)], cis- and trans-4-[N-(4-chlorophenyl)carbamoyloxy]-2-butenyltrimethylammonium iodides (5 and 6), and the corresponding epoxides and cyclopropanes is reported. Pharmacological testing for ganglion-stimulating activity demonstrated that the trans olefin 6 and trans epoxide 8 have properties similar to 1, while the trans cyclopropane analog 10 was inactive. All cis compounds were inactive. The muscarinic ganglion-stimulating properties of the active compounds are interpreted in terms of similar fit at the receptor level by the alkyltrimethylammonium ion and the ether oxygen 5.7 A distant, as well as an electron-rich center midway between groups in the form of a double bond or unshared electron pairs. Comparison of smooth muscle and ganglion-stimulating properties of the compounds showed that trans epoxide 8 was the most selective for muscarinic ganglionic sites.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy

Cyclopropane and Caesarean section.

In a prospective study 589 patients were anaesthetized by the inhalation of cyclopropane 40% for 2--3 min. Relaxation was provided with suxamethonium and anaesthesia was maintained with cyclopropane 7.5%. The series was divided into four groups: patients in optimal condition (96 elective (group 1), 164 emergency (group 3)) and those not in optimal condition (75 elective (group 2), 254 emergency (group 4)). All infants from groups 1 and 3 had high Apgar scores, and all survived. Infants in groups 2 and 4 had lower Apgar scores, eight and 96 respectively were depressed, and 10 and 20 died because of obstetric and neonatal factors unrelated to the anaesthesia. Respiratory distress syndrome (RDS) developed in 44 infants. Among 29 infants in whom the birth weight was less than 2.5 kg the mortality was 31%, whereas no death occurred in mature infants. RDS was significantly more frequent after elective than after emergency surgery. Neonatal depression was independent of the length of the induction-delivery interval, which averaged 13.3 min. The frequency of awareness was 1.5%.

Anesthesia, Inhalation

Mutagenicity of inhalation anaesthetics: trichloroethylene, divinyl ether, nitrous oxide and cyclopropane.

The mutagenic potential of trichloroethylene, divinyl ether, nitrous oxide and cyclopropane was assessed in vitro by microbial assay employing two histidine-dependent strains of Salmonella typhimurium, TA1535 and TA100. Anaesthetic agents in various concentrations were incubated with bacteria in the presence or absence of an enzyme system prepared from enzyme-induced rat liver. Nitrous oxide and cyclopropane were not mutagenic, whereas divinyl ether gave a strongly positive response. Results for trichloroethylene were equivocal. These and previous studies with the salmonella system, together with mutagenicity studies using different test systems, indicate that modern inhalation anaesthetic agents are unlikely to be mutagenic.

Anesthesia, Inhalation

Measuring the lipid content of live animals using cyclopropane gas.

The cyclopropane technique was validated, and it accurately estimated the lipid mass of six pond turtles (Trachemys scripta). This technique provided more accurate estimates of lipid mass and lipid-free mass (by difference) than other nonfatal techniques. This technique was accurate despite the turtles' low lipid contents (0.71-3.5% of body mass), variable water contents (65-74% of body mass), and variable body temperatures (approximately 23-31 degrees C). A computer model of the cyclopropane technique revealed that an analytical error of 1% in variables measured (e.g., body water content and body temperature) may cause errors of less than 1-6% in lipid estimates.

Animals