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Biomedical subjects

L W Parks

Publications and source records attributed to L W Parks.

At least 91 records · Page 5Linked to original sources

Metabolic interconversion of free sterols and steryl esters in Saccharomyces cerevisiae.

The interconversion of free and esterified sterols was followed radioisotopically with [U-14C]acetate and [methyl-14C]methionine. In pulse-chase experiments, radioactivity first appeared mainly in unesterified sterols in exponential-phase cells. Within one generation time, the label equilibrated between the free and esterified sterol pools and subsequently accumulated in steryl esters in stationary-phase cells. When the sterol pools were prelabeled by growing cells aerobically to the stationary phase and the cells were diluted into unlabeled medium, the prelabeled steryl esters returned to the free sterol form under several conditions. (i) During aerobic growth, the prelabeled sterols decreased from 80% to 45% esters in the early exponential phase and then returned to 80% esters as the culture reached the stationary phase. (ii) Under anaerobic conditions, the percentage of prelabeled steryl esters declined continuously. When growth stopped, only 15% of the sterols remained esterified. (iii) In the presence of an inhibitor of sterol biosynthesis, which causes accumulation of a precursor to ergosterol, prelabeled sterols decreased to 40% steryl esters while the precursor was found preferentially in the esterified form. These results indicate that the bulk of the free sterol and steryl ester pools are freely interconvertible, with the steryl esters serving as a supply of free sterols. Furthermore, there is an active cellular control over what types of sterol are found in the free and esterified sterol pools.

Aerobiosis↗

Acid-labilization of sterols for extraction from yeast.

A wild type strain of yeast, Saccharomyces cerevisiae, pretreated with a mild acid hydrolysis, exhibited a 4-fold increase in sterol yield upon saponification and extraction. This increased yield is reflected in both major and minor sterols (ergosterol; zymosterol) and sterol esters.

Cell Cycle↗

Accumulation of ergosta-8,14-dien-3beta-ol by Saccharomyces cerevisiae cultured with an azasterol antimycotic agent.

15-Aza-25-methylene-D-homocholesta-8,14-dien-3beta-ol, an antimycotic agent, at a concentration of 75 ng/ml inhibited ergosterol biosynthetis in Saccharomyces cerevisiae strain 3701B resulting in the accumulation of an unusual sterol. Experimental data presented indicate that this sterol is ergosta-8,14-dien-3beta-ol. The accumulation of the compound is supportive of current models of biosynthetic pathways for sterols in yeast and is consistent with inhibition by the azasterol of the delta14 sterol reductase.

Antifungal Agents↗

Physiological effects of an antimycotic azasterol on cultures of Saccharomyces cerevisiae.

The yeast Saccharomyces cerevisiae has been studied during cultivation with a naturally occurring antimycotic azasterol. At very low concentrations (1.0 to 10.0 ng/ml), where growth retardation is not observed, an unusual sterol, ergosta-8,14-dien-3beta-ol, accumulates in high concentrations. Upon removal of the azasterol from the culture, the 8,14-diene is converted to ergosterol. Much smaller amounts of another 8,14-sterol, but with an additional unsaturation, have also been observed. Total sterol accumulation is higher in cultures containing subinhibitory levels of the antimycotic agent than the amounts of normal sterol accumulation in control cultures. With between 10 and 100 ng of azasterol per ml a transitory cessation of growth is observed from which the culture is able to recover. At much higher concentrations growth inhibition and even cell lysis results. Competitive inhibition of sterol 24(28)methylene reductase is demonstrated.

Antifungal Agents↗

Sterol 24(28) methylene reductase in Saccharomyces cerevisiae.

Optimal conditions for the 24(28)methylene reductase were obtained. The enzyme assay provided for unusually high activity; the Km was determined to be 10.8 mum. The enzyme activity was increased in cells grown with ethanol as the substrate.

Adenosine Triphosphate↗

Genetic and biochemical studies on mannose-negative mutants with colonial morphological alterations.

Four mannose mutants of Saccharomyces cerevisiae are described. In addition to their inability to grow on mannose as sole carbon and energy source, the mutants exhibit a distinct colonial morphological alteration. The isolates form hard colonies when grown on agar and exhibit extreme flocculation in broth. These organisms can catabolize mannose, but only form one-half the mannan found in the wild-type yeasts.

Cell Division↗

Enzymatic analysis of C27 sterol-accumulating yeast strains.

Several strain of bakers' yeast that accumulate only C27 sterols were analyzed for sterol methyltransferase activity, with no activity being found. Cholesta-5,7,22,24-tetraene-3beta-ol, one of the mutants' sterol products, was found to be an unacceptable substrate for in vitro transmethylation.

Ergosterol↗

Homoazasterol-mediated inhibition of yeast sterol biosynthesis.

A naturally occurring azasterol has been shown to inhibit sterol transmethylation in both in vitro and in vivo in the yeast Saccharomyces cerevisiae. The inhibition was competitive, with a calculated dissociation constant of 43 muM. The compound prevented the accumulation of ergosterol in aerobically adapting cells. Cultures forced to gain energy by respiration were found to be much more sensitive to growth inhibition by the azasterol than those cells fermenting glucose. The growth inhibition is reversible at low concentrations of the azasterol.

Azasteroids↗

Yeast sterol esters and their relationship to the growth of yeast.

Variation in the percentage of sterols esterified to long-chain fatty acids during cellular growth has been examined. Under all conditions, a constant percentage of sterol esters was maintained during exponential growth. This maintenance level was found to vary with different growth conditions. A sharp increase in the rate of esterification was observed upon entry of the culture into the stationary growth phase. The minor cellular sterol components were found to accumulate after this period of rapid sterol ester synthesis, with a relative decrease in the size of the ergosterol pool. Evidence is presented that sterol esters of ergosterol precursors are unable to be metabolized to ergosterol. Once esterified, the fatty acids do not appear to be scavenged during starvation conditions.

Aerobiosis↗

Effect of altered sterol composition on growth characteristics of Saccharomyces cerevisiae.

The function of sterols in mitochondrial structures of yeast was examined. Sterol mutant strains were employed to examine the effects of altered sterolic content on optimal and permissive growth temperatures in respiring and fermenting cultures. Although fermentative growth was unaffected by sterol composition, a definite decrease in both the optimal and the permissive growth temperatures of respiring cultures was observed when ergosterol was replaced by Delta(8(9), 22)-ergostadiene-3beta-ol. In vitro studies showed a similar decrease in membrane phase transition temperatures of the mitochondrial enzyme S-adenosylmethionine: Delta(24)-sterol methyltransferase in the mutant strains. Increased sterol and methyltransferase levels were detected in strains incapable of synthesizing ergosterol. A possible control function governing sterol synthesis is proposed for ergosterol.

Cell-Free System↗