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Yeast Strain Development and Process Intensification in High-Gravity Fermentation.

High- and very-high-gravity (HG/VHG) fermentation increases substrate loading and product titers, thereby improving fermenter utilisation and potentially reducing water use and downstream processing requirements. Initially developed for brewing and fuel ethanol production, these approaches are now applied more broadly in food, beverage, and bioproduct manufacturing. This MiniReview summarises operational definitions and industrial drivers of HG/VHG fermentation and examines the associated constraints in rheology, mass and heat transfer, osmotic and ethanol stress, nutrient availability, and oxidative damage. Yeast improvement strategies are reviewed, including adaptive laboratory evolution, mutagenesis, genome shuffling, multiplex genome editing, non-conventional yeasts, and multi-omics-guided selection. Process developments such as no-cook simultaneous liquefaction, saccharification and fermentation (SLSF), enzyme formulation, nutrient management, and in situ product recovery are considered together with applications in alcoholic beverages, organic acids, microbial lipids, and other value-added products. The review also discusses coproduct valorisation and the need to integrate strain development with process design. Current evidence supports HG/VHG fermentation as a useful process-intensification platform, although performance and sustainability depend strongly on feedstock, operating conditions, product requirements, and the basis used to report fermentation outcomes.

circular bioeconomy

Moderate expression and activity of flocculins underlie the characteristic flocculation phenotype of Saccharomyces pastorianus.

Flocculation is a key technological trait in lager brewing, governing fermentation performance, yeast recovery, and beer quality. In the allo-aneuploid hybrid yeast Saccharomyces pastorianus, the genetic basis of flocculation remains poorly resolved due to its complex dual sub-genome architecture. Here, we systematically re-annotated and functionally characterized the complete FLO gene repertoire of the Group II strain CBS 1483. Thirteen FLO genes were identified, including allelic variants and a previously uncharacterized adhesin, Flo12, containing a Hyphal_reg_CWP domain instead of the canonical PA14 lectin-binding domain. Structural modeling revealed strong conservation of Ca²+-binding residues in PA14 domains, alongside repeat-region diversification likely contributing to functional variability. Using optogenetic expression in a FLO-null background, we demonstrated that SpcI-FLO9-1 and SpcI-FLO9-2_1 are the strongest drivers of flocculation, exhibiting NewFlo-like sugar sensitivity. Transcriptomic analysis during 17°P wort fermentation showed dynamic induction of these genes coinciding with flocculation onset. Surprisingly, deletion of both loci in CBS 1483 did not abolish but only delayed sedimentation in wort, accompanied by improved maltose utilization and attenuation. These findings reveal functional redundancy and compensatory mechanisms within the FLO network of lager yeast, highlighting the genetic complexity underlying flocculation, and providing a molecular framework to inform yeast selection, strain development, and optimization of the lager fermentation processes.IMPORTANCEFlocculation, the process by which yeast cells aggregate and settle, is essential for producing clear, high-quality lager beer, and for efficient yeast recovery during brewing. However, the genetic basis of this trait in lager yeast has remained poorly understood because these strains possess unusually complex hybrid genomes. In this study, we systematically identified and characterized the complete set of flocculation genes in the industrial lager yeast Saccharomyces pastorianus CBS 1483. We demonstrated that lager yeast flocculation is not controlled by a single dominant gene, but instead emerges from the combined action of several moderately active adhesion proteins that are expressed at low levels during fermentation. Surprisingly, deleting the two strongest candidate genes only delayed, rather than eliminated, sedimentation, revealing a robust compensatory network that preserves brewing performance. These findings refine the current understanding of yeast flocculation and provide a molecular framework for developing brewing strains with improved fermentation efficiency, product consistency, and flavor quality.

Saccharomyces pastorianus

Breeding of yeast strains with intracellular amino acid accumulation for value-added alcoholic beverages.

The yeast Saccharomyces cerevisiae converts amino acids into volatile compounds with fruity and floral aromas during fermentation. These amino acid-derived aroma compounds play a critical role in defining the taste and flavor of alcoholic beverages such as sake, beer, and wine. The productivity of amino acid-derived aroma compounds depends on the intracellular availability of their precursor amino acids. Therefore, breeding yeast strains that accumulate amino acids provides a practical approach to developing alcoholic beverages with more unique and attractive sensory characteristics. In this minireview, we describe the isolation of yeast strains that overproduce branched-chain amino acids and phenylalanine, obtained through conventional mutagenesis of industrial brewing yeasts. We also discuss the mechanisms responsible for the increased production of these amino acids in the mutant strains, including altered feedback regulation and transcriptional control of key enzymes involved in their biosynthesis. In addition, we briefly introduce a plasmid-free genome editing system that enables precise modification of metabolic pathways without the integration of foreign DNA, allowing the construction of strains that are not classified as genetically modified organisms. This method represents a promising tool that allows flexible and fine-tuned engineering of yeast metabolic pathways, including the development of strains with tailored aroma profiles.

Saccharomyces cerevisiae

[The antibiotic properties of macrocyclic trichothecene mycotoxins].

Some trichotecenic mycotoxins (verrucarine A, roridines A and H, T-2-toxin) have been studied for their antibiotic effect on a wide spectrum of the yeast cultures (761 strains). The studied substances differ both in their activity and the action character. The yeast strains promising for development of microbiological methods of indication and detoxification of mycotoxins have been revealed.

Antifungal Agents

[Therapy of HIV infection (AIDS)].

The stages of human immunodeficiency viruses (HIV) life cycle are described as guide to therapeutic intervention. Practical therapeutic recommendations are given. They should be directed to viruses as the causal agent and to the features of opportunistic infections as well as of associated malignant tumors. Recently 3 progresses could be reached: (1) the application of azidothymidine in the latency phase, when the number of CD4 positive cells decreases below 500/mm3, whereby the progression of the disease can be delayed and side-effects can be reduced; (2) the prophylaxis of pneumocystis carinii pneumonia by inhalation of pentamidin; and (3) the introduction of fluconazole acting against yeast fungus infection, whereby development of resistant yeast strains is still missing and side-effects are smaller than with other antimycotics. In addition, the application of HIV-vaccine in already HIV-infected persons seems to be effective. By combining several drugs their toxicity is to be reduced. Interdisciplinary research and good cooperation among clinicians are conditions for an effective therapy. Last but not least psychosocial aspects and a good psychological guidance and counseling of the affected persons should be considered.

Antiviral Agents

Cardiolipin content of wild type and mutant yeasts in relation to mitochondrial function and development.

The phospholipid composition of various strains of the yeast, Saccharomyces cerevisiae, and several of their derived mitochondrial mutants grown under conditions designed to induce variations in the complement of mitochondrial membranes has been examined. Wild type and petite (cytoplasmic respiratory deficient) yeasts were fractionated into various subcellular fractions, which were monitored by electron microscopy and analyzed for cytochrome oxidase (in wild type) and phospholipid composition. 90% or more of the phospholipid, cardiolipin was found in the mitochondrial membranes of wild type and petite yeast. Cardiolipin content differed markedly under various growth conditions. Stationary yeast grown in glucose had better developed mitochondria and more cardiolipin than repressed log phase yeast. Aerobic yeast contained more cardiolipin than anaerobic yeast. Respiration-deficient cytoplasmic mitochondrial mutants, both suppressive and neutral, contained less cardiolipin than corresponding wild types. A chromosomal mutant lacking respiratory function had normal cardiolipin content. Log phase cells grown in galactose and lactate, which do not readily repress the development of mitochondrial membranes, contained as much cardiolipin as stationary phase cells grown in glucose. Cytoplasmic mitochondrial mutants respond to changes in the glucose concentration of the growth medium by variations in their cardiolipin content in the same way as wild type yeast does under similar growth conditions. It is concluded that cardiolipin content of yeast is correlated with, and is a good indicator of, the state of development of mitochondrial membrane.

Carbon

Karyology and hyphal characters as taxonomic criteria in ascomycetous black yeasts and related fungi.

Mycelial development of seventy-three strains of black yeasts and related fungi were studied, and numbers of nuclei per hyphal cell were counted. Two main patterns were apparent in expanding hyphae, viz. (1) uninucleate expanding hyphal cells, septum formation strictly following mitosis, and (2) multinucleate, branched, aseptate hyphal tips, septa being formed in a later stage, leading to oligo- or uninucleate mature cells. Characteristic genera in the two groups are Exophiala and Aureobasidium, respectively. In Zasmidium and in some Ramichloridium species all mycelial cells are oligonucleate. The character is indicative for relationships at the family level in black yeasts.

Ascomycota

Effect of elevated temperatures and low levels of trace metals on the growth and phenotypic development of Candida albicans.

A combination of elevated temperatures (within the human febrile range) and trace metal chelation were investigated for their effects on the inhibition of growth and phenotypic development of the dimorphic yeast Candida albicans (strain 3153A). The ability of specific cations to relieve the phenotypic inhibition that occurred also was tested. Elevated temperatures alone (to 41 degrees C) only delayed the timing of the phenotypic development. When compared to the results obtained at 37 degrees C, the recombination of elevated temperature and addition of the trace metal chelator, 1,10-phenanthroline, did not further suppress phenotypic development, but the combination did decrease the viability of C. albicans. When 24 to 48 h stationary phase singlet cells were released into a medium containing 100 microM 1,10-phenanthroline (pH 6.5), supplemental iron (200 microM) alleviated the suppression of mycelium formation at 41 degrees C, whereas under conditions favoring bud formation (pH 4.5), both iron and zinc circumvented suppression and promoted budding. Through studies on the interaction of temperature stress and trace metal availability our data revealed the requirement for iron mycelium formation whereas both iron and zinc may be needed for bud formation.

Candida albicans

A novel screening system for yeast strains capable of secreting tissue plasminogen activator.

We have developed a simple screening procedure that allowed us to identify Saccharomyces cerevisiae strains able to secrete human tissue plasminogen activator (tPA) into the culture medium. The screen can be used to isolate more efficient secretor strains and to look for novel tPA analogs. Employing one of these strains to study the effect of glycosylation on secretion, we show that glycosylation in the catalytic domain of tPA plays an important role in folding and/or secretion of the molecule. Removing this glycosylation site resulted in a 3-5-fold reduction in the level of tPA secretion. We anticipate that this system will prove useful in studying yeast secretory pathway as well as structure-function relationships in the tPA molecule.

Biotechnology

[Historic development of yeast genetics from the beginning to the first gene transformation in brewing yeast strains].

A more intensive use of the potential of brewing yeasts in the biotechnological process of brewing is based on the knowledge of the genetic background of these microorganisms. It is given a review on the stages of genetic manipulation of brewing yeasts including recombinant DNA technology which has proved to be the most successful method for a further improvement of strains.

DNA, Fungal

[Development of an immunoenzyme test system for detecting antibodies to commercial strains of feed yeasts].

ELISA as a specific and highly sensitive test system was used for the examination of large groups of workers employed in the production of fodder protein to detect antibodies to the production strains of fodder yeast. The results yielded by ELISA correlated well with those obtained by the serological luminescent techniques, but antibody titers determined by means of ELISA are 10-20 times higher.

Animal Feed

Development of a strain of Hansenula polymorpha for the efficient expression of guar alpha-galactosidase.

A strain of the methylotrophic yeast Hansenula polymorpha, A16, has been developed that expresses the guar alpha-galactosidase gene to 22.4 mg/g dry cell weight in chemostat cultures at a dilution rate of 0.1 h(-1). This corresponds to more than 13.1% of soluble cell protein, of which 56-62% is secreted into the medium. The alpha-galactosidase gene was flanked by the promoter and terminator sequences of the H.polymorpha mox gene, which can direct expression of the mox gene itself more than 30% of total cell protein under methanol growth. The expression cassette (pUR3510) based on the Saccharomyces cerevisiae plasmid, YEp13, was integrated into the genome. Such transformants were stable in chemostat cultures and exhibited 100% stability for both alpha-galactosidase+ and leu+ phenotypes. Chemostat cultures produced higher levels of alpha-galactosidase with higher specific productivities expressed as mg alpha-galactosidase g(-1) h(-1) compared to batch cultures.

Base Sequence

Unveiling the genetic basis of the low pH response in the acidophilic yeast Maudiozyma bulderi as a potential host for biorefinery.

Nonconventional yeasts represent a great genetic and phenotypic diversity with potential for industrial strain development in the bio-production of green chemicals. In recent years, mass genome sequencing of nonconventional yeasts has opened avenues to improved understanding of transcriptional networks and phenotypic plasticity and gene function, including the discovery of novel genes. Here, we investigated the expressional and morphological changes at low-pH in three strains of the acidophilic yeast Maudiozyma bulderi (previously Kazachstania bulderi and Saccharomyces bulderi): CBS 8638, CBS 8639, and NRRL Y-27205. The comparison of the transcriptome of cells growing in a bioreactor at pH = 5.5 vs pH = 2.5, primarily showed dysregulation of genes involved in cell wall integrity, with NRRL Y-27205 the least acidophilic strain, showing the largest transcriptional response when compared to the other strains. We identified four uncharacterized genes, unique to M. bulderi, and predicted function as transporters, upregulated at low pH. Microscopy studies showed that M. bulderi cell wall is not damaged in acidic environment, and the membrane lipid composition remains stable at low pH, unlike Saccharomyces cerevisiae. Overall, our data on transcriptional variability in M. bulderi highlights genes and cellular pathways involved in the acidophilic adaptation of this species and can aid further strain development.

Hydrogen-Ion Concentration

Transfer of genes for utilization of starch (sta2) and melibiose (mel) to industrial strains of Saccharomyces cerevisiae by single-chromosome transfer, using a kar1 mutant as vector.

A method has been developed for the transfer of genes from other yeast strains and species to industrial yeast strains, using a haploid, kar1-1 mutant strain of Saccharomyces cerevisiae as a vector. The sta2 gene, conferring the ability to metabolize starch was transferred from an auxotrophic haploid strain of S. cerevisiae (S. diastaticus) and the melibiose-metabolism (mel) gene(s), from S. kluyveri, to the kar1-1 mutant [K5-5A; (alpha ade2 his4 can1 gal) by normal mating and protoplast fusion. From this strain, the genes were transferred to baker's yeast and brewing yeast strains, which did not utilize starch, and to baker's yeast strains, which did not utilize melibiose, by protoplast fusion, spore-cell pairing, or rare-mating. Strains that utilized starch or melibiose were obtained by all three methods. Pulsed-field gel electrophoresis preparations showed little change in the mobility of the chromosomes of the hybrids. The most probable explanation for the results obtained is that single chromosomes were transferred, first, from the donor strains to the kar1-1 haploid mutant strain, and then from the kar1-1 vector to the recipient industrial strain of S. cerevisiae. The transfer of the genes is probably accomplished through formation of disomic strains and then, in the case of the hybrids that metabolize starch, by integration of the sta2 gene into the genome of the industrial yeast strains.

Chromosomes, Fungal

Improvement of sporulation in the yeast Yarrowia lipolytica.

Strains of Yarrowia lipolytica forming exclusively spherical ascospores were developed through inbreeding. These strains are more suitable for micromanipulation than other inbred strains forming helm-shaped ascospores. External factors affecting sporulation frequency and tetrad formation in this yeast were investigated. Optimal formation of complete tetrads occurred at a narrow range of pH values around 6.0. Citrate was found to stimulate sporulation strongly. A synthetic medium containing citrate was developed to obtain standard conditions for maximum sporulation.

Ascomycota

Mutants of Paracoccidioides brasiliensis strain IVIC Pb9 affected in dimorphism.

Morphological mutants were isolated after nitrosoguanidine treatment of Paracoccidioides brasiliensis strain IVIC Pb9. Two of these mutants, Pb257 and Pb258, developed a typical mycelia at 23 degrees C, however, the yeast cells which developed at 37 degrees C were indistinguishable from those of the parental strain. A third mutant, strain Pb267, was thermosensitive, grew as yeast-like cells at 23 degrees C, but was unable to survive at 37 degrees C. Morphological observations as well as serological and segregation tests confirmed that the mutant strains originated from P. brasiliensis. Cell wall chemical analyses of the mutant strains grown at 23 degrees C indicated the presence of alkali-soluble, acid-insoluble polysaccharides absent in the parental wild-type strain Pb9 grown under the same conditions. The phenotypes shown by the mutant strains may be related to deficiencies in the proper synthesis of cell wall components of the mycelial phase of this fungus.

Amino Acids

CRISPR-Cas9 Genome Editing in Auxotrophic and Non-auxotrophic Fission Yeast Strains.

The CRISPR/Cas system is a very powerful genome-editing tool that has been developed over the past decade to optimize genome editing for many organisms. Here, we describe a rapid genome-editing method for fission yeast using the CRISPR-Cas9 system. It allows rapid generation of desired auxotrophic and non-auxotrophic strains without perturbing the local genome content by avoiding the insertion of selection markers at target loci.

CRISPR-Cas Systems