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The Effect of Different Substrates on the Morphological Features and Polyols Production of Yeast During Long-Lasting Cultivation

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Journal Microorganisms
Specialty Microbiology
Date 2022 Sep 23
PMID 36144311
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Abstract

The study on the influence of different glucose concentrations (2%, 0.5%, and 0.2%) and glycerol (1%) on the morphological and physiological features, as well as the composition of soluble carbohydrates, was performed using yeast. Two-factor analysis of variance with repetitions to process the data of the cell size changes showed that the substrate type affected cell size the most. The cells with 2% glucose were 30-35% larger than those growing on glycerol. The decrease in the initial glucose concentration up to 0.5-0.2% slightly changed the cell length. However, even in the logarithmic growth phase pseudo-mycelium of two to four cells appeared in the cultures when using low glucose, unlike those using glycerol. Throughout the whole experiment, more than 90% of the populations remained viable on all of the substrates tested. The ability for colony formation decreased during aging. Nevertheless, at the three-week stage, upon substrate restriction (0.2% glucose), it was twice higher than those under the other conditions. The respiration rate also decreased and exceeded not more than 10% of that in the logarithmic phase. By the end of the experiment, the cyanide-sensitive respiration share decreased up to 40% for all types of substrates. The study of soluble cytosol carbohydrates showed that the cultures using 2% glucose and 1% glycerol contained mainly arabitol and mannitol, while at low glucose concentrations they were substituted for inositol. The formation of inositol is supposed to be related to pseudo-mycelium formation. The role of calorie restriction in the regulation of carbohydrate synthesis and the composition in the yeast and its biotechnological application is under consideration.

Citing Articles

The Lipid Profile of the Yeast upon the Assimilation of the Substrates of Different Types and upon Calorie Restriction.

Deryabina Y, Kokoreva A, Klein O, Gessler N, Isakova E J Fungi (Basel). 2022; 8(11).

PMID: 36422054 PMC: 9698397. DOI: 10.3390/jof8111233.

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