International Journal of Food Microbiology
○ Elsevier BV
All preprints, ranked by how well they match International Journal of Food Microbiology's content profile, based on 11 papers previously published here. The average preprint has a 0.01% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Parente, E.; Pietrafesa, R.; De Filippis, F.; De Vivo, A.; Labella, M. G.; Hidalgo, M.; Lavanga, E.; Ricciardi, A.
Show abstract
Table olives are produced from a large number of olive varieties subjected to different trade preparations, resulting in a highly heterogeneous family of fermented foods. To characterise the diversity of bacterial and fungal communities and its relationship with variety, ripeness, and trade preparation, we surveyed 363 samples from 40 producers across 6 countries, combining physicochemical measurements, viable counts, and amplicon-based metagenomics. This is the largest survey of table olive microbial communities to date and includes the first culture-independent characterisation of microbial communities for several Italian PDO and non-PDO varieties, most notably Oliva di Gaeta. The contrast between alkali-treated and naturally fermented olives was the dominant structuring factor, with HALAB (Halophilic and Alkalophilic Lactic Acid Bacteria) and other halophiles enriched in alkali-treated varieties and a diverse array of Lactobacillaceae and Pseudomonadota characterising naturally fermented olives. Despite these consistent signals, striking variability was observed within the same variety and even within the same producer, driven by stochastic colonization events, house microbiota, and the widespread use of small fermentation vessels. This variability obscured variety-specific microbial signatures and prevented reliable discrimination of Italian PDO varieties from similar non-PDO counterparts using amplicon-based approaches. The ecological and taxonomic complexity documented here, encompassing bacterial and fungal genera with largely untapped starter and flavour potential, provides the foundation for the development of variety-specific microbiome-based starter cultures. HighlightsO_LIWe report a metataxonomic survey of microbial communities in 363 table olive samples C_LIO_LIAlkali treatment and natural fermentation drive distinct microbial community structures C_LIO_LIHouse microbiota and stochastic colonization generate high within-variety variability C_LIO_LIMicrobiome data provide ecological foundations for olive microbiome-based starters C_LI
Jaeger, I.; Kohn, C. R.; Evans, J. D.; Frazzon, J.; Renault, P.; Kothe, C. I.
Show abstract
Plant-based cheese analogs have emerged as a novel global market trend driven by sustainability concerns for our planet. This study examines eleven soft ripened plant-based cheese analogs produced in Europe, primarily with bloomy rinds and cashew nuts as the main ingredient. First, we focused on exploring the macronutrients and salt content stated on the labels, as well a detailed fatty acid analysis of the samples. Compared to dairy cheeses, plant-based cheeses share similarities in lipid content, but their fatty acid profiles diverge significantly, with higher ratio of mono- and polyunsaturated fatty acids such as oleic and linoleic acids. We also investigated the microbiota of these analog products, employing a culture-dependent and -independent approaches. We identified a variety of microorganisms in the plant-based cheeses, with Lactococcus lactis and Leuconostoc mesenteroides being the dominant bacterial species, and Geotrichum candidum and Penicillium camemberti the dominant fungal species. Most of the species characterized are similar to those present in dairy cheeses, suggesting that they have been inoculated as culture starters to contribute to the sensorial acceptance of plant-based cheeses. However, we also identify several species that are possibly intrinsic to plant matrices or originate from the production environment, such as Pediococcus pentosaceus and Enterococcus spp. This coexistence of typical dairy-associated organisms with plant associated species highlights the potential microbial dynamics inherent in the production of plant-based cheese. These findings will contribute to a better understanding of plant-based cheese alternatives, enable the development of sustainable products, and pave the way for future research exploring the use of plant-based substrates in the production of cheese analogues.
Gruet, C.; Di Mattia, J.; Hiaumet, M.; Pestel, D.; Araiz, C.; Saadi, S.; Ducousso, M.; Courot, O.
Show abstract
Wine is a complex matrix resulting from a fermentation process carried out by specific microbial communities. These communities can be in competition and the development of some microorganisms, as the yeast Brettanomyces bruxellensis, can impact the fermentation process and lead to organoleptic alterations of wine. To manage this risk, microbiological diagnostic methods as microscopic observations, qPCR or flow cytometry are already used in oenology, but remain either not specific enough, or tedious. In this context, IAGE (Ingenierie et Analyses en Genetique Environnementale) has developed the first digital-PCR system enabling the detection and quantification of B. bruxellensis during the whole winemaking process. Furthermore, wine DNA extraction was optimized to enable a representative and sensitive analysis of B. bruxellensis intact cells, as well as an easy-to-implement protocol to cope with the increasing number of samples to analyze. The IAGE workflow for B. bruxellensis quantification has been proven to be successful when analyzing naturally-contaminated samples during the different steps of the winemaking process and offers a robust method to oenologists for appropriate treatments and risk management in wine cellars. HighlightsO_LIDevelopment of a dPCR method led to a highly-specific analysis of B. bruxellensis intact cells in different steps of the winemaking process. C_LIO_LIDNA extraction method has been optimized to be robust across various types of wine with varying concentrations of inhibitors, as well as throughout different stages of the wine making process. C_LIO_LIThe complete process was proven successful in analyzing a large number of naturally-contaminated samples, giving results in less than 48 hours. C_LI
Gardner, J. M.; Walker, M. E.; Boss, P. K.; Jiranek, V.
Show abstract
The impact of water addition to grape juice in winemaking, on both alcoholic and malolactic fermentation duration and outcome has been examined using commercial wine yeasts, Lalvin EC1118 and Lalvin R2 and malolactic bacteria Lalvin VP41. As expected, dilution with water did not impede fermentation, instead resulted in shortened duration, or in the case of malolactic fermentation enabled completion in these conditions. Addition of complex organic nutrient further shortened alcoholic fermentation by Lalvin R2 and in some conditions also reduced the duration of malolactic fermentation. In general, volatile compounds and some major yeast metabolites were present at lower concentrations at the end of fermentation where juices were diluted and the addition of organic complex nutrient also influenced the concentration of some compounds in wine. These findings are significant to commercial winemaking, highlighting that winemakers should consider potential impacts of juice dilution on processing efficiencies along with wine flavour and aroma. Highlights: Gardner et al. The effect of grape juice dilution on fermentationO_LIGrape juice dilution shortened both alcoholic and malolactic fermentation C_LIO_LIIn some conditions addition of commercial nutrient decreased fermentation duration C_LIO_LIIn general wine volatiles decrease with grape juice dilution C_LIO_LIIsoamyl acetate can be decreased in wine by grape juice dilution C_LI
Nemeth, B.; Kallai, Z.; Toxeitova, A.; Horvath, G.; Antunovics, Z.; Harmath, A.; University of Debrecen Biotechnology BSc class of 2026, ; Sipiczki, M.; Pocsi, I.; Pfliegler, W. P.
Show abstract
We present a comparative analysis of 13 yeasts available for mead (honey wine) fermentation, a source of Saccharomyces cerevisiae diversity that has not yet been analyzed in detail. Using genomic, phenotyping, and analytic methods, we show that currently available mead yeasts belong to various clades of the species, most commonly to the Commercial Wine clade (5 of 13 samples). Mead yeasts in this group displayed genome structure variations and occasional loss of killer activity, despite being closely related. Historic European and traditional African mead isolates with sequenced genomes were found not to be closely related to any contemporary mead yeast product. The 13 yeasts tested here displayed high variability in oenological characteristics and in aroma production. Maximum ethanol tolerance ranged from 15 to 22% v/v, however, the most tolerant strain produced lower ethanol levels and retained high fructose content in experimental meads. The most abundant aroma components produced in meads were ethyl acetate, ethyl caprylate, isoamyl alcohol, and ethyl caprate, with similar aroma profiles in members of the Commercial Wine clade, and pronounced differences among other yeasts. Our results contribute to the knowledge of Saccharomyces yeasts in various fermentation environments, adding mead to the list of alcoholic beverages with a known diversity of starter cultures. Our results may aid strain selection for honey wine fermentations and inspire strain improvement.
Liu, D.; Chen, Q.; Zhang, P.; Chen, D.; Howell, K.
Show abstract
The flavours of foods and beverages are formed by the agricultural environment where the plants are grown. In the case of wine, the location and environmental features of the vineyard site imprint the wine with distinctive aromas and flavours. Microbial growth and metabolism play an integral role in wine production from the vineyard to the winery, by influencing grapevine health, wine fermentation, and the flavour, aroma and quality of finished wines. The mechanism by which microbial distribution patterns drive wine metabolites is unclear and while flavour has been correlated with bacterial composition for red wines, bacterial activity provides a minor biochemical conversion in wine fermentation. Here, we collected samples across six distinct winegrowing areas in southern Australia to investigate regional distribution patterns of both fungi and bacteria and how this corresponds with wine aroma compounds. Results show that soil and must microbiota distinguish winegrowing regions and are related to wine chemical profiles. We found a strong relationship between microbial and wine metabolic profiles, and this relationship was maintained despite differing abiotic drivers (soil properties and weather/ climatic measures). Notably, fungal communities played the principal role in shaping wine aroma profiles and regional distinctiveness. We found that the soil microbiome is a potential source of grape- and must-associated fungi, and therefore the weather and soil conditions could influence the wine characteristics via shaping the soil fungal community compositions. Our study describes a comprehensive scenario of wine microbial biogeography in which microbial diversity responds to surrounding environments and ultimately sculpts wine aromatic characteristics. These findings provide perspectives for thoughtful human practices to optimise food and beverage flavour and composition through understanding of fungal activity and abundance.
Onetto, C. A.; McCarthy, J.; Schmidt, S.
Show abstract
Hanseniaspora uvarum is consistently observed as the dominant non-Saccharomyces species in spontaneous grape juice fermentations. However, the physiological mechanisms and physicochemical variables influencing the prevalence of H. uvarum over other non-Saccharomyces species remain unclear. We tested the physicochemical parameters contributing to H. uvarum dominance by inoculating a chemically diverse set of grape juices with a mock community whose composition was defined following a comprehensive microbial survey of spontaneous fermentations. Our findings indicated that the chemical composition of grape juice had minimal impact on the microbial dynamics of fermentation, with H. uvarum emerging as the dominant non-Saccharomyces species in nearly all conditions tested. Grape juice composition primarily influenced the total yeast abundance of the mock community. Flow cytometry analysis confirmed that H. uvarum has a faster growth rate than Saccharomyces cerevisiae and several other Hanseniaspora spp.. Moreover, its growth was not affected by the presence of S. cerevisiae, explaining its rapid dominance in spontaneous fermentations. The rapid growth of H. uvarum negatively impacted the growth of S. cerevisiae, with significant implications for fermentation performance and sugar consumption. The results of this study suggest that the fast growth rate of H. uvarum enables it to quickly dominate the grape juice environment during the early stages of fermentation. This physiological advantage indicates that the initial abundance of H. uvarum may be critical to the outcome of spontaneous fermentations, as evidenced by its direct impact on the growth of S. cerevisiae and fermentation performance.
Brown, J. A.; Ricke, S. C.
Show abstract
Molecular-based microbiological approaches have become valuable tools for the food industry. However, even the most advanced molecular techniques are limited in their ability to differentiate based on viability creating the potential for biased results when applied to the food industry. The objective of this study was to generate a viable microbial bio-map of a commercial ready-to-eat (RTE) meat manufacturing process and assess its utility as a diagnostic tool. Product samples were collected from a commercial RTE meat manufacturing facility at various locations throughout processing. Samples were homogenized and aliquoted for culture-based microbial isolation and 16S rRNA gene sequencing. Homogenates were split into pairs and subject to either no treatment (Control) or treated with 25 M PMAxx (PMA) to remove free and non-viable cellular DNA. Overall, PMA treatment resulted in a less rich microbial community compared to Control samples. Paired analysis revealed that the impact of PMA varied by location with the greatest effects being observed at the beginning and end of manufacturing. Both Control and PMA treated samples identified a shift in the microbial population after thermal processing; however, only PMA treated samples identified a secondary shift in the microbial population occurring after slicing. Taxonomic analysis identified Lactobacillus as a predominant genera in sliced and packaged products. These results were further confirmed by the identification of Lactobacillus sakei on packaged product using a culture-based approach. These results suggest PMA treatment provides a higher level of sequencing resolution by removing background DNA. ImportanceMicrobial bio-mapping is a valuable tool for the meat and poultry industry to assess process control and evaluate the efficacy of intervention systems. In recent years it has become more common to incorporate the use of molecular techniques, such as qPCR and 16S rRNA, to quantitatively track target pathogens and gain a more holistic understanding of the microbial community throughout processing. One major limitation we face when applying these DNA-based techniques to the food industry is their inability to differentiate between DNA from viable versus non-viable cells, which may result in the false identification of pathogenic or spoilage microorganisms and bias microbiota results. To practically apply this technology in a ready-to-eat meat manufacturing setting, it is crucial to develop and validate strategies that are capable of differentiating between viable and non-viable cellular DNA.
Crequer, E.; COTON, E.; Cueff, G.; Cristiansen, J. V.; Frisvad, J. C.; Rodriguez de la Vega, R.; Giraud, T.; Jany, J.-L.; Coton, M.
Show abstract
Fungi are known to produce many chemically diversified metabolites, yet their ecological roles are not always fully understood. The blue cheese making fungus Penicillium roqueforti thrives in different ecological niches and is known to produce a wide range of metabolites, including mycotoxins. Three P. roqueforti populations have been domesticated for cheese production and two populations thrive in other anthropized environments, i.e., spoiled food, lumber and silage. Here, we looked for differences in targeted and untargeted metabolite production profiles between populations using HPLC-HR-Q-TOF and UHPLC-Q-TOF-HR-MS/MS. The non-cheese populations produced several fatty acids and different terpenoids, lacking in cheese strains. The Termignon cheese population displayed intermediate metabolite profiles between cheese and non-cheese populations, as previously shown for other traits. The non-Roquefort population, the cheese population with the strongest domestication syndrome, produced the lowest quantities of measured metabolites, including known mycotoxins such as mycophenolic acid (MPA), andrastin A and PR toxin. Its inability to produce MPA was due to a deletion in the mpaC gene, while a premature stop codon in ORF 11 of the PR toxin gene cluster explained its absence and the accumulation of its eremofortin A & B intermediates. In the Roquefort population, we detected no PR toxin nor eremofortins A or B, but found no indel or frameshift mutation, suggesting downregulation. Our results suggest that domesticated cheese populations were selected for lower toxin production while populations from other anthropized environments maintained high metabolite diversity, the bioactivities of these compounds being likely important in these ecological niches.
O'Donnell, S.; Rezende, G.; Vernadet, J.-P.; Snirc, A.; Labat, A.; Coton, M.; Poirier, E.; Weber, B.; Schnitzler, J.-P.; Giraud, T.; Ropars, J.
Show abstract
Domestication of molds for cheese production has repeatedly shaped Penicillium fungi, most notably giving rise to the emblematic P. camemberti lineage, derived from P. biforme. Here, we identified a new P. biforme lineage, named cheesy, likely selected from P. biforme for food fermentation, including cheese and sausage production. This lineage exhibits evidence of a severe bottleneck, with little nucleotide polymorphism and a single mating type. The cheesy lineage has evolved advantageous traits for cheesemaking: compared to other P. biforme strains and its wild relative P. fuscoglaucum, it displays faster growth on cheese, galactose and lactose media, higher sporulation and germination rates on cheese, elevated lipolytic activity, enhanced inhibition capacities, and produced specific volatile organic compounds. Additionally, P. camemberti and P. biforme cheesy differ in their content of Starship mobile elements, acquired through horizontal transfers. These elements carry cargo genes potentially relevant for adaptation to cheese. Notably, the cheesy lineage has acquired a 20 kb Starship element (Rattus), nested within a much larger 160 kb Starship (Bilge), and carrying cargo genes with predicted functions involved in antagonistic interactions among micro-organisms. SignificanceO_LIWe identified a new Penicillium biforme lineage, named cheesy, which was likely selected from P. biforme for food fermentation (cheese and sausage), genetically and phenotypically different from the emblematic P. camemberti lineage. This lineage suffered from a severe bottleneck, displaying very little nucleotide polymorphism and a single mating type. C_LIO_LIThis newly identified lineage has evolved advantageous traits for cheesemaking; compared to other P. biforme strains and its wild relative P. fuscoglaucum, it displayed faster growth on cheese, galactose and lactose media, higher sporulation and germination rates on cheese, higher lipolytic activity, better inhibition capacities and specific volatile organic compounds. C_LIO_LIPenicillium camemberti and P. biforme cheesy also differed by their content in Starship mobile elements, acquired through horizontal transfers, and carrying cargo genes potentially relevant for adaptation to cheese. C_LIO_LINotably, the cheesy lineage has acquired a specific 20 kb Starship nested within a much larger 160 kb Starship, and likely involved in antagonistic interactions. C_LI
Sumerta, I. N.; Ruan, X.; Howell, K.
Show abstract
Palm wine is an alcoholic beverage that has existed for centuries and has important economic and socio-culture values in many tropical and sub-tropical countries. Lesser known than other types of wines, palm wine is made by spontaneous fermentation of palm sap by naturally occurring microbial communities. The palm sap ecosystem has unique microbial composition and diversity, which determines the composition of the eventual wine and is likely affected by geographical distinctiveness. While these features are well understood in grape and rice wine, these features have not been understood in palm wine. In this review, we gather information of microbial communities and metabolite profiles from published studies, covering a wide range of methodologies and regions, to better understand the causal links between the principal microbial species and major metabolites of palm wine. We assess palm wine quality across production regions and local practices to provide general characteristics of palm wine and identify specific regional information. These will provide better understandings to the function of microbial communities and metabolite diversity, the contribution of regional variations and to ensure product quality in this important and widespread, yet overlooked, fermented beverage. One sentence summaryreview and synthesis of microbial ecology and metabolites in palm wine fermentation across geography and their contribution to cultural food systems
Bossaert, S.; Kocijan, T.; Winne, V.; Van Opstaele, F.; Schlich, J.; Herrera-Malaver, B.; Verstrepen, K. J.; De Rouck, G.; Lievens, B.; Crauwels, S.
Show abstract
Wood-ageing of conventionally fermented beers is gaining increased attention in the production of sour beers with a noteworthy balance between sourness, wood aroma and flavour complexity. Besides the extraction of wood-derived compounds into the beer, wood-aged sours owe their layered flavour profile to the activity of a variety of wild microorganisms that reside in the barrels or that emerge from the brewing or maturation environment. However, until now wood-ageing of craft beers largely remains a process of trial and error that often generates unexpected or undesirable results. Therefore, to better understand the process and develop control strategies to improve the consistency, predictability and overall quality of the resulting beer, more insight is needed into the interactions between the wood, the microorganisms and the maturing beer. Nevertheless, as studying these interactions on an industrial scale is highly challenging, the objective of this study was to develop a reproducible and easy-to-manipulate experimentally tractable system that can be used to study wood-ageing of beer on a lab scale. Barrel-ageing was mimicked in a 0.5 liter glass jar filled with beer and closed off by a wooden disk. Furthermore, the system was equipped with a synthetic community composed of four bacterial species (Acetobacter malorum, Gluconobacter oxydans, Lactobacillus brevis and Pediococcus damnosus) and four fungal species (Brettanomyces bruxellensis, Candida friedrichii, Pichia membranifaciens and Saccharomyces cerevisiae) that represented key microbes previously identified in wood-ageing experiments with 225-liter barrels. In order to test the hypothesis that the barrel-ageing process of beer can be replicated in the simplified in-vitro system, the system was subjected to 60 days of ageing and microbial community dynamics and beer chemistry were compared with a 38-week industrial barrel-ageing experiment using the same beer. Beer samples were collected at regular time points and subjected to both qPCR assays targeting the eight selected species and chemical analysis. Results revealed that in vitro ageing showed similar trends in the temporal dynamics of the microbial populations and beer chemistry as those observed during 38-weeks of barrel-ageing in 225-liter barrels. Furthermore, results were found to be highly reproducible. Altogether, the in-vitro system was found to be a robust and reproducible system that has great potential to perform more in-depth research about the intricate interactions between microbes, wood and maturing beer and to develop control strategies to improve the consistency, predictability and overall quality of the resulting beer.
Li, Y.; Fu, S.; Klein, M. S.; Wang, H.
Show abstract
Disrupted gut microbiota as a critical risk factor for many noncommunicable diseases is largely driven by gut microbiota-impacting drugs, especially orally administrated as well as biliary excreted antibiotics. Fermented food consumption has been encouraged to replenish disrupted gut microbiota, but its overall impact on host gut health remains to be elucidated. This study examined retail traditionally fermented foods and gut microbiota of consumers of fermented foods for antibiotic resistome. Dietary intervention by fermented foods was found leading to a surge of the antibiotic resistome in gut microbiota of most human subjects. Antibiotic resistome was further illustrated in traditionally fermented food samples, and viable antibiotic resistant (AR) bacteria were recovered and highly prevalent in retail kimchi and artisan cheeses assessed in this pilot screening. Identified AR isolates included pathogens of importance in nosocomial infections such as Klebsiella pneumoniae, Enterococcus, etc., as well as commensals and lactic acid bacteria, some exhibited extremely high minimum inhibitory concentration (MIC) against antibiotics of clinical significance. Exposing fermented food microbiota to representative antibiotics further led to a boost of the corresponding antibiotic and multidrug-resistance gene pools and disturbed microbiota. These results revealed an underestimated public health risk associated with fermented foods intervention, particularly to susceptible population with gastrointestinal tract symptoms and compromised immune functions seeking gut microbiota rescue. The findings call for more comprehensive investigation and investment on the benefits and potential safety challenges associated with traditionally fermented foods, productive intervention of foodborne antibiotic resistance, and strategic movements to mitigate unnecessary damages to the host gut microbiota.
Ito, K.; Yamaguchi, M.
Show abstract
Miso is a Japanese traditional fermented food with soybeans, salt and koji, and has gained attention among people for its sophisticated flavor and preservability. Koshu miso is a unique miso made by mixing two types of koji (rice and barley), and is produced primarily in Yamanashi Prefecture, Japan. We characterized the microbiota of Koshu miso at three distinct fermentation stages. Our analysis revealed that the genus Staphylococcus dominated across all miso samples. Notably, Staphylococcus sequences in the miso matched those found in rice and barley koji, indicating the influence of raw ingredients on the initial microbial community. Additionally, analysis of the manufacturing environment suggested similarities between the environmental surfaces and miso, highlighting the importance of the manufacturing environment in serving as a medium for microbial transfer. These findings underscore the critical importance of both raw ingredients and manufacturing equipment in shaping the microbial composition and evolution of miso throughout the fermentation process.
Rodriguez, J. A.; Santos-Bay, L.; Narechania, A.; Caroe, C.; Siren, K.; Mak, S. S. T.; Broman Nielsen, I.; Ramsoe, M.; Ponten, T. S.; Lillevang, S.; Tranberg Andersen, L.; Gilbert, M. T. P.
Show abstract
One of the biggest challenges for dairy producers is the substantial variability in final product properties caused by changes in the production environment. In cheese production, this variation is influenced by several factors, particularly the milk base and its pretreatment, which shape the microbiome throughout the process and ultimately affect the cheeses organoleptic characteristics. To examine the impact of three different pre-treatments for pasteurised milk-- microfiltration, protein fortification, and only pasteurisation (control)-- on microbiome dynamics, we generated metagenome sequencing data from 14 cheese production steps across these three production trials at a Danish dairy factory. We constructed three metagenomic co-assemblies, identifying nine high-quality metagenome-assembled genomes (MAGs). Our analysis revealed that a specific strain of Lactococcus lactis dominates the process, while other minor bacterial species persist at very low abundances (<1%), contributing non-negligibly to product properties. Notably, Clostridium tyrobutyricum, a known dairy spoilage bacterium, was present at low levels in pasteurised-only and protein-fortified milk trials but was nearly absent in microfiltered milk. To enhance our analyses, we implemented KHILL, a novel k-mer-based method applied directly to raw sequencing reads, which facilitates metagenomic co-assembly and enables early detection of unwanted microorganisms. Our findings provide industrial dairy producers with a comprehensive view of microbial dynamics during cheese production, offering insights to improve process consistency and product quality.
Cubillos, F. A.; Zavaleta, V.; Perez-Traves, L.; Saona, L. A.; Villarroel, C. A.; Querol, A.
Show abstract
Hybridization between Saccharomyces cerevisiae and Saccharomyces eubayanus resulted in the emergence of S. pastorianus, a crucial yeast for lager fermentation. However, our understanding of hybridization success and hybrid vigour between these two species remains limited due to the scarcity of S. eubayanus parental strains. Here, we explore hybridization success and the impact of hybridization on fermentation performance and volatile compound profiles in newly formed lager hybrids. By selecting parental candidates spanning a diverse array of lineages from both species, we reveal that the Beer and PB-2 lineages exhibit high rates of hybridization success in S. cerevisiae and S. eubayanus, respectively. Polyploid hybrids were generated through rare mating techniques, revealing a prevalence of triploids and diploids over tetraploids. Despite the absence of heterosis in fermentative capacity, hybrids displayed phenotypic variability, notably influenced by maltotriose consumption. Interestingly, ploidy levels did not significantly correlate with fermentative capacity, although triploids exhibited greater phenotypic variability. The S. cerevisiae parental lineages primarily influenced volatile compound profiles, with significant differences in aroma production. Interestingly, hybrids emerging from the Beer S. cerevisiae parental lineages exhibited a volatile compound profile resembling the corresponding S. eubayanus parent. This pattern may result from the dominant inheritance of the S. eubayanus aroma profile, as suggested by the over-expression of genes related to alcohol metabolism and acetate synthesis in hybrids including the Beer S. cerevisiae lineage. Our findings suggest complex interactions between parental lineages and hybridization outcomes, highlighting the potential for creating yeasts with distinct brewing traits through hybridization strategies.
Kits, D.; Garshol, L. M.
Show abstract
Norwegian kveik are a recently described family of domesticated Saccharomyces cerevisiae brewing yeasts used by farmhouse brewers in western Norway for generations to produce traditional Norwegian farmhouse ale. Kveik ale yeasts have been domesticated by farmhouse brewers through serial repitching of the yeast in warm wort (>30{degrees}C) punctuated by long periods of dry storage. Kveik yeasts are alcohol tolerant, flocculant, capable of utilizing maltose/maltotriose, phenolic off flavour negative, and exhibit elevated thermotolerance when compared to other modern brewers yeasts belonging to the Beer 1 clade. However, the optimal fermentation and growth temperatures (Topt) for kveik ale yeasts and the influence of fermentation temperature of the production of flavour-active metabolites like fusel alcohols and sulfur compounds (H2S, SO2) are not known. Here we show that kveik ale yeasts have an elevated optimal fermentation temperature (Topt) when compared to commercial American Ale yeast (SafAle US-05) and that they produce fewer off-flavours at high temperatures (>30{degrees}C) when compared to commercial American Ale yeasts. The tested kveik yeasts show significantly higher maximum fermentation rates than American Ale yeast not only at elevated temperatures (>30{degrees}C), but also at typical ale fermentation temperatures (20{degrees}C-25{degrees}C). Finally, we demonstrate that kveik ale yeasts are heterogeneous in their Topt and that they attenuate standard wort robustly above their Topt unlike our control American Ale yeast which showed very poor apparent attenuation in our standard wort at temperatures >> Topt. Our results provide further support that kveik yeasts may possess favourable fermentation kinetics and sensory properties compared to American Ale yeasts. The observations here provide a roadmap for brewers to fine tune their commercial fermentations using kveik ale yeasts for optimal performance and/or flavour impact.
Vicente, J.; Navascues, E.; Benito, S.; Marquina, D.; Santos, A.
Show abstract
Climate change is causing a lack of acidity during winemaking and oenologists use several solutions to cope with such a problem. Lachancea thermotolerans, which has the potential to tolerate the harsh physicochemical conditions of wine, has emerged as a promising alternative for pH management during winemaking and, currently, it is the most valuable yeast used for acidity control in wine. In this work an amenable method for L. thermotolerans genotyping based on a multiplexed microsatellite amplification in 6 different loci was developed. This specific and sensitive method was used to distinguish between 103 collection strains obtained from different geographical and isolation sources, and then challenged against a 429 L. thermotolerans isolates from several wineries and harvests. The procedure was also tested for fermentation monitoring and strain implantation. The procedure was conceived to simplify the methodology available for L. thermotolerans genotyping, making it easy for applying in wine-related laboratories. This method can be applied to distinguish between L. thermotolerans strains in selection programs and to follow implantation of inoculated strains during winemaking with optimal results.
Raad, R.; Mann, A.; Pal, A.; Parra, A.; Strawn, L.; Hamilton, A.; Critzer, F.; den Bakker, H. C.
Show abstract
DAnjou pears are routinely stored for up to nine months under controlled atmosphere (CA) conditions to meet market demands. While this practice maintains fruit quality, limited information exists on pears natural microbiota throughout storage. The objective of this study was to describe fungal and bacterial composition on marketable and unmarketable conventional, whole, intact pears under two storage practices (bulk vs wrapped) at 3, 6, and 9 months in long-term CA cold storage. Storage practices had a significant effect on the composition and succession of both fungal and bacterial communities. Overall, fungal communities exhibited lower estimated Chao1 alpha diversity (mean 18.3) compared to bacterial communities (mean 166.4). No significant differences in Chao1 index were found between the bacterial and fungal communities on marketable or unmarketable pears. Trends in Chao1 indices of fungal and bacterial communities peaked at mid-storage and declined by 9 months, with wrapped pears showing parallel trends and bulk pears exhibiting a sharper late-stage reduction. No distinct clusters could be found for 3- and 6-month fungal communities, irrespective of marketability or being bulk or wrapped. The principal coordinate analysis of the bacterial communities showed tight clustering by time point for the individually wrapped pears, irrespective of their marketability. Bacterial communities included genera common in food-processing and plant environments, such as Pseudomonas and Acinetobacter. Fungal communities shifted over time, with spoilage-associated genera like Aureobasidium, Penicillium, Botrytis, and Mucor present at different storage stages. SignificanceThis study highlights the influence of storage duration and packaging on microbial succession, establishing initial benchmarks of pear surface microbiomes. The observed lack of significant differences in microbial diversity between marketable and unmarketable pears suggests that these baseline community profiles can serve as critical reference points for identifying other influential factors. Variables such as handling practices may exert a more direct effect on microbial dynamics and, consequently, product quality. Establishing these baselines is essential because they provide a foundation for detecting deviations linked to spoilage or safety risks. Moreover, understanding these patterns can guide the development of targeted microbial control strategies in postharvest systems, enabling interventions that maintain fruit quality, reduce losses, and improve food safety throughout the supply chain.
Bolten, S.; Lott, T. T.; Ralyea, R. D.; Gianforte, A.; Trmcic, A.; Orsi, R. H.; Martin, N. H.; Wiedmann, M.
Show abstract
Small and medium sized dairy processing plants (SMDPs) may face unique challenges with respect to controlling Listeria in their processing environments, e.g., due to limited resources. The aim of this study was to implement and evaluate environmental monitoring programs (EMPs) for Listeria control in eight SMDPs in a [~]1-year longitudinal study; this included a comparison of pre-operation (i.e., after cleaning and sanitation and prior to production) and mid-operation (i.e., at least 4 h into production) sampling strategies. Among 2,072 environmental sponge samples collected across all plants, 272 (13%) were positive for Listeria. Listeria prevalence among pre- and mid-operation samples (15 and 17%, respectively), was not significantly different. Whole genome sequencing (WGS) performed on select isolates to characterize Listeria persistence patterns revealed repeated isolation of closely related Listeria isolates (i.e., [≤]20 high quality single nucleotide polymorphism [hqSNP] differences) in 5/8 plants over >6 months, suggesting Listeria persistence and/or re-introduction was relatively common among the SMDPs evaluated here. WGS furthermore showed that for 41 sites where samples collected pre- and mid- operation were positive for Listeria, Listeria isolates obtained were highly related (i.e., [≤]10 hqSNP differences), suggesting that pre-operation sampling alone may be sufficient and more effective for detecting sites of Listeria persistence. Importantly, our data also showed that only 1/8 plants showed a significant decrease in Listeria prevalence over 1 year, indicating continued challenges with Listeria control in at least some SMDPs. We conclude that options for simplified Listeria EMP programs (e.g., with a focus on pre-operation sampling, which allows for more rapid identification of likely persistence sites) may be valuable for improved Listeria control in SMDPs.