Brettanomyces bruxellensis wine isolates show high geographical dispersal and long persistence in cellars
Authors:
Alice Cibrario aff001; Marta Avramova aff001; Maria Dimopoulou aff001; Maura Magani aff001; Cécile Miot-Sertier aff001; Albert Mas aff003; Maria C. Portillo aff003; Patricia Ballestra aff001; Warren Albertin aff001; Isabelle Masneuf-Pomarede aff001; Marguerite Dols-Lafargue aff001
Authors place of work:
Univ. Bordeaux, ISVV, Unité de recherche Œnologie EA 4577, USC 1366 INRA, Bordeaux INP, Villenave d’Ornon, France
aff001; Department of Food Science and Technology, Faculty of Agriculture, Forestry and Natural Environments, Aristotle University of Thessaloniki, Thessaloniki, Greece
aff002; Biotecnología Enológica. Dept. Bioquímica i Biotecnologia, Facultat d‘Enologia. Universitat Rovira i Virgili. C/ Marcel·lí Domingo, Tarragona, Spain
aff003; ENSCBP, Bordeaux INP, Pessac, France
aff004; Bordeaux Sciences Agro, Gradignan, France
aff005
Published in the journal:
PLoS ONE 14(12)
Category:
Research Article
doi:
https://doi.org/10.1371/journal.pone.0222749
Summary
Brettanomyces bruxellensis is the main wine spoiler yeast all over the world, yet the structure of the populations associated with winemaking remains elusive. In this work, we considered 1411 wine isolates from 21 countries that were genotyped using twelve microsatellite markers. We confirmed that B. bruxellensis isolates from wine environments show high genetic diversity, with 58 and 42% of putative triploid and diploid individuals respectively distributed in 5 main genetic groups. The distribution in the genetic groups varied greatly depending on the country and/or the wine-producing region. However, the two possible triploid wine groups showing sulfite resistance/tolerance were identified in almost all regions/countries. Genetically identical isolates were also identified. The analysis of these clone groups revealed that a given genotype could be isolated repeatedly in the same winery over decades, demonstrating unsuspected persistence ability. Besides cellar residency, a great geographic dispersal was also evidenced, with some genotypes isolated in wines from different continents. Finally, the study of old isolates and/or isolates from old vintages revealed that only the diploid groups were identified prior 1990 vintages. The putative triploid groups were identified in subsequent vintages, and their proportion has increased steadily these last decades, suggesting adaptation to winemaking practices such as sulfite use. A possible evolutionary scenario explaining these results is discussed.
Keywords:
Yeast – Phylogenetic analysis – Population genetics – Phylogeography – Triploidy – Wine – Sulfites
Introduction
Brettanomyces bruxellensis is one of the most infamous wine spoiler yeast, able to contaminate up to 25% of red wines [1, 2]. Indeed, B. bruxellensis is known to produce specific compounds like volatile phenols, associated with unpleasant aromas, usually described as “horse sweat” or “leather” [3]. The contaminated wines have tainted organoleptic perception, decreased fruitiness [4, 5] and consequently are rejected by the consumers [6].
An important bibliography is dedicated to the B. bruxellensis species, with 100 to 200 papers published each year over the last decade (source: Google Scholar). Many papers investigate volatile phenol production [7–10], the biotic and abiotic factors impacting B. bruxellensis growth [11–15] and some peculiarities of the species like the ability to survive in the VNC (Viable Non Culturable) state [7, 16, 17] or the specific oxygen needs during fermentation [18]. Moreover, different detection and quantification methods for Brettanomyces, ranging from direct plating methods through molecular detection and flow cytometry analysis, were examined (see Tubia et al., 2018 for review [19]). The genetic diversity of the species has also been largely investigated, and a plethora of approaches were developed across the years, including RAPD (Random Amplified Polymorphic DNA) [20], AFLP (Amplified Fragment Length Polymorphism)[21], REA-PFGE (pulsed field electrophoresis) [22], Sau-PCR [23], PCR-DGGE [24], mtDNA restriction analysis, ISS-PCR (introns 5′ splice site sequence)[25, 26], etc. In the wine industry, most of these genetic analyses revealed high diversity within the species, at the vineyard, in the winery or at sample levels [8, 23, 27–29]. However, in most cases, only a small subset of isolates (a few dozens) were included, and these markers, although discriminant, were not appropriate for population genetic studies. Recently, a great advance was made with the genome sequencing of different B. bruxellensis strains [30–36], revealing the existence of diploid and allotriploid strains. This genetic oddity prompted the development of microsatellite markers that are codominant and thus can be used to assess the possible ploidy level of an individual (maximum 2 alleles per locus means possible diploid, maximum 3 alleles per locus possible triploid, etc.) [37–39]. Microsatellites are also particularly well-adapted for large-scale population studies [40, 41]. Twelve markers were applied to a unique collection of more than 1500 strains of B. bruxellensis from various countries and different fermentation niches (wine, beer, bioethanol, tequila, kombucha, cider) [41, 42]. The strains were clustered in 6 genetic groups, depending on both their putative ploidy level (diploid versus triploid) and their substrate of isolation [41]. Besides their genetic difference, these populations presented contrasted phenotypes: two different groups of triploid strains, mostly associated with wine substrate, showed tolerance or resistance to sulfur dioxide, the most common preservative used in winemaking [42–44]. A preliminary study on a small subset of 8 strains suggested variability in bioadhesion and colonization properties [45]. Altogether, these results indicate that the genetic diversity of B. bruxellensis is shaped by anthropic activities, including the winemaking process. Though, the precise impact of wine-related activities on B. bruxellensis populations remains to be precisely described. In this work, we focused on the 1411 isolates previously genotyped associated with wine niche (wine, grapes, cellar equipment, etc.). We searched for the geographical and temporal trends underlying wine B. bruxellensis diversity. Finally, a specific attention on ‘clones’ (i.e. isolates displaying identical genotypes) is proposed.
Material & methods
Yeast strains
We used 1411 isolates of B. bruxellensis associated with the wine production from 21 countries (S1 Table). Agar-YPD medium containing 10 g.L−1 yeast extract (Difco Laboratories, Detroit M1), 10 g.L−1 bactopeptone (Difco Laboratories, Detroit M1), 20 g.L−1 D-glucose (Sigma-Aldrich) and 20 g.L−1 agar (Sigma-Aldrich) was used for day-to-day growth. All isolates were kept at -80°C in glycerol:YPD (50:50) medium.
Microsatellite genotyping
Twelve microsatellites were used for B. bruxellensis genotyping as previously described [41]. Briefly, DNA was extracted by lysing fresh colonies in 30 μL of 20 mM NaOH (99°C, 10 minutes). Touchdown PCR were performed in a final volume of 15 μL containing 1 μL of DNA extract, 0.05 μM of forward primer, 0.5 μM of reverse primer and labelled primer, 1x Taq-&GO (MP Biomedicals, Illkirch, France). The sequences of the primers, PCR program and dilution conditions are detailed in Avramova et al. (2018). The size of PCR fragments were determined using an ABI3730 DNA analyser (Applied Biosystems) and GeneMarker Demo software V2.2.0 (SoftGenetics). More than 17 96-well microplates were needed to analyse the whole population. Thus, control strains (AWRI1499 and/or CBS 2499) were used to check for deviation between microplates and normalized the data. All genotyping analyses were performed in the same laboratory (UR Oenology) to minimize technical variation. Most ofthe microsatellite datasets (1488 isolates encompassing non-wine strains) were published by Avramova et al (2017), with strains addition (from Greek wines) by Dimopoulou et al (2019) and unpublished isolates from Catalonia wines [40, 41].
Data analysis
The microsatellite dataset was analyzed using R and various packages. Principal Component Analysis (PCA) was performed using ade4 package [46]. Not available (NA) data (around 6% missing data) were replaced by the closest neighbour data (only for PCA analysis). The connection network and minimum spanning tree was built using the chooseCN function from adegenet package [47, 48]. In order to determine whether the observed clustering was purely due to the presence of 2 or 3 alleles in putative diploids and triploids respectively, the following simulation was performed: for each strain and each locus showing 3 alleles, we randomly removed one of the three alleles and performed the PCA on this randomly 2N-constrained dataset.
Diversity indexes were calculated using the poppr package [49, 50], and 95% confidence intervals were calculated using 100 bootstrap replicates.
For the geographic distribution, maps were drawn using R maps package and pies using graphics package. Kilometric distances between clones were calculated from longitude and latitude coordinates using the sp package [51].
Results
B. bruxellensis wine isolates show high genetic diversity and distribution varying with the country and the vineyard region
1411 wine isolates from 21 countries were included in our analysis, resulting in 340 genotypes. The isolates’ set is represented as a minimum spanning tree (Fig 1). In a previous study that encompassed other substrates (beer, kombucha, etc), we defined 6 subpopulations that clustered depending on substrate origin and the possible ploidy level of the strains: strains having maximum 2 alleles per locus were considered as possible diploids, while those having maximum 3 alleles per locus were considered as putative triploids [41]. The six previously defined clusters were globally well conserved with this subset of wine isolates, although the position of a few isolates, located at the periphery of the clusters, seemed poorly resolved. Our wine isolates were distributed as follow (Table 1): 521 isolates belong to the so-called diploid wine group (Wine 2N, CBS 2499-like, darkcyan), 551 to a possibly triploid wine group (1st Wine 3N, AWRI1499-like, red), 229 to a possible triploid beer group (Beer 3N, AWRI1608-like, orange), 69 to the kombucha diploid group (Kombucha 2N, L14165-like, green), 40 to a second possible triploid wine group (2nd Wine 3N, L0308-like, turquoise) and 1 from a possible triploid tequila/bioethanol group (blue). To determine whether the observed clustering was due to the presence of additional alleles for the putative triploid strains compared to the diploid ones, a similar analysis was performed on a 2N-constrained dataset (maximum 2 alleles/loci, randomly picked). The resulting minimum spanning tree (S1 Fig) was very close to the one obtained with the complete dataset, indicating that the different populations clustered depending on the quality of their alleles besides their quantity.
Within these groups, contrasting genetic diversity was highlighted, with Shannon’s diversity index ranging from low (0.97) to high (3.73, see Table 1). The lowest diversity was estimated for the Wine 2N group, suggesting high clonal expansion within this group, whereas higher diversity was obtained for the Wine/Kombucha 2N group and 2nd Wine 3N and Wine/beer 3N groups. Wine/Kombucha 2N and 2nd Wine 3N groups showed an equitability index closed to 1, suggesting a more even distribution of the genotypes among the genetic groups compared to Wine 2N group. Simpson’s diversity and Equitability indexes showed the same trend. Overall, the percentage of the putative triploid wine isolates was 58%, indicating that the triploid state, far from being rare, has a large extend.
The genetic distribution of the wine isolates was then assessed per country, or per wine-producing region when sufficient isolates were available (Fig 2). In France, 5 regions were examined (Fig 2A): Bordeaux, Languedoc, Burgundy, Jura and Cotes-du-Rhone. In Bordeaux, 732 isolates were genotyped and were mainly distributed into two genetic groups: the Wine 2N group (darkcyan, sensitive to SO2, encompassing 345/732 of Bordeaux isolates), and the 1st Wine 3N (red, tolerant to SO2, 373/732). By contrast, in Burgundy, only a small percentage of the 157 isolates belonged to the Wine 2N group (16/157), while the most represented groups were the Beer 3N (orange, 95/157) and the 1st Wine 3N (red, 42/157). Cotes-du-Rhone also displayed a high proportion of isolates belonging to the Beer 3N group (orange, 26/36), beside to the Wine 2N (darkcyan, 6/36) and the 1st Wine 3N (red, 4/36). In Jura, two genetic groups dominated: the 1st Wine 3N (red, 8/16) and the Beer 3N (orange, 8/16). Finally, isolates from Languedoc mostly fell within the Wine 2N group (darkcyan 63/108), the remaining isolates belonging to the 1st Wine 3N group (red, 19/108), the 2nd Wine 3N group (turquoise, 15/108) and the Kombucha 2N group (green, 9/108). In Italy, the three regions tested (Calabria, Campania, Puglia) showed various genetic distributions, Puglia being mostly associated with the Wine 2N group, and Calabria/Campania with the 1st Wine 3N group (red). Denmark was associated with Wine 2N (darkcyan) and Beer 3N groups (orange), while Portugal showed an almost perfect equitable distribution into the five genetic groups. Isolates from Spain (mostly from Catalonia) showed the dominance of the orange group while Greece was mostly associated with the Kombucha 2N group (green) and then with the 1st Wine 3N group (red, Fig 2A). In non-European countries (Fig 2B), the genetic distribution of B. bruxellensis was also contrasted, with the diploid wine group (darkcyan) dominant in USA, Brazil and South Africa, and the 1st Wine 3N group (red) dominant in Australia.
When summing-up all these regional specific distributions, some trends emerged: the Wine 2N (darkcyan) and the 1st Wine 3N (red) groups were isolated in almost every region/country. The Beer 3N group (orange) was more dominant around a meridian crossing Denmark, the east of France and Italy (except for Spain), while the Kombucha 2N group (green) was mostly found around Mediterranean countries. Furthermore, isolates tolerant/resistant to sulfites (belonging to the 1st or 2nd Wine 3N groups), were found in almost all regions/countries.
The temporal distribution of B. bruxellensis wine isolates reveals important evolution over the last century
Most of the studied strains were isolated in the last decade from wines sampled within two years after grapes harvesting (vintage). However, 157 isolates were isolated prior to 2000 and/or were isolated from bottles containing old vintages, mostly from Bordeaux region. For example, three strains were isolated from 1909-wine, five isolates from 1911-wine, etc. Most of the wines with vintages older than 2000 were analyzed several years after bottling (S1 Table).
The genetic distribution of B. bruxellensis strains in wines older than one century, with 20-years intervals, is shown on Fig 3. Without exceptions, isolates from wines produced before-1990 (104 isolates) all belonged to diploid groups, mostly from the Wine 2N group (darkcyan). The Wine 2N group, represented 67% of the isolates from wines produced in 1981–2000, and only 32% of the isolates from wines produced in 2001–2020. For the 1st Wine 3N group (red), tolerant/resistant to sulfite, the older wine displaying such isolate dates back to 1990, and was isolated 15 years after wine elaboration. The proportion of “red” isolates increased from 23% for 1981–2000 period and to 43% for the wines produced during 2001–2020. Similarly, the Beer 3N group that was first isolated from a wine of 1995 vintage represented only 4% of the isolates from wines produced between 1981 and 2000, and 18% of the isolates from wines produced between 2001–2020. For the other genetic groups, the older isolates were found in wine as old as 1956 for Kombucha 2N (and represented around 4–5% of the population), 1994 for 2nd Wine 3N (1% and 3% found in wines produced in 1981–2000 and after 2001 respectively), and 2002 for Tequila/Bioethanol (less than 1%). Unless the late sampling of the wine (>15 years) biases the analyses, the temporal distribution of B. bruxellensis wine isolates shows a clear shift from domination by the 2N darkcyan genetic group in old vintages to 3N red genetic group prevalence among isolates from wines produced over the last decades.
The same B. bruxellensis genotypes can be identified in wines produced in a given cellar over decades
We then focused on B. bruxellensis clones. In this paper ‘clones’ will be defined as genetically identical isolates for all 12 microsatellite markers tested. Over the 1411 isolates, 138 groups of clones were identified, encompassing 2 to 114 isolates. We searched whether some clones were identified repeatedly in the same winery over different vintages. Forty-two groups of clones contained isolates isolated several times in 11 wineries from France and Italy (Fig 4). For example, in winery A1, 9 clone groups were identified: 7 from the Wine 2N and 2 from the 1st Wine 3N (red). Clones from the group n°4 (Wine 2N) were isolated independently in wines of vintages 1909, 1948 and 1970, while clones from the group n°8 were isolated in wines produced in 1990, 2012, 2013 and 2014. Similarly, for winery B1, 15 clone groups were evidenced: clones from the group n°12 (Wine 2N) were isolated repeatedly in wines of vintages 1961, 1985, 1996 and 2014 wines while clones from the group n°22 (1st Wine 3N) were isolated in wines produced in 2003, 2010, 2012, 2013 and 2014. Thus, in several wineries, genetically identical strains were isolated from wines of different vintages, sometimes from different decades. The longer interval (86 years) was found for winery B1, with clones from the group n°3 isolated in wines produced in 1926 and 2012.
Fig 4 also illustrates that, within a given sample, different B. bruxellensis can be isolated. In fact, if we considered the strains isolated from the same samples, our collection contained 57 wine samples for which at least 5 isolates were analysed (mostly from France or Italy). In 45 out of 57 samples, we found isolates from two different genetic groups, highlighting the high diversity of B. bruxellensis at sample level.
Wines from different countries and/or continents can be spoiled by the same B. bruxellensis clone
Since some clones were able to persist over several years in the cellar, we searched whether wine-producing regions were associated with specific clones. No ‘signature’ was identified, meaning that no specific genotypes were associated with the studied regions. Instead, we found that some clone groups were highly disseminated. For example, the clone group n°16 (Wine 2N, darkcyan) encompassed 96 isolates from Denmark, France, Portugal and USA (Fig 5A). Another example is clone group n°67 (6 isolates), isolated in wines from Italy, Portugal and South Africa. In the other genetic groups also, several examples of dissemination were found (Fig 5B): the clone group n°24 (1st Wine 3N, red) encompassed 29 isolates from France, Italy and USA, while clone group n°35 were found in France, Italy and South Africa.
In order to quantify the level of clonal dissemination, we computed the kilometric distance separating the different isolates belonging to a given clone group (Fig 6). 88% of clone pairs were localized in the same region, with kilometric distance inferior to 100km (‘local clone pairs’), of which 34% had distance inferior to 1km. 4% were separated by ~100-750km, usually associated with inter-country distances, less than 1% were distant of ~750-1000km (intra-continental distances), and 6% were separated by more than 1000km (inter-continental distances). It has to be noted that all isolates were considered here, including clonal isolates from the same wine samples that may drift the distribution toward zero kilometric distance. Thus, B. bruxellensis clones appear to mainly disseminate in short distances, as expected. However, a significant proportion of clones showed high geographic dispersal and these distances (hundred kilometres away) are incompatible with natural dispersion.
Discussion
In this work, we studied the genetic diversity and structure of a large collection (>1400) of wine isolates of B. bruxellensis, from 21 countries across 5 continents. Most of these wine isolates belong to five of the six genetic groups previously described at the species level [41], and confirmed the high genetic diversity of this yeast species [23, 27]. Interestingly, we showed that the distribution of B. bruxellensis wine isolates varied greatly from one country/region to another. At a large scale, our results confirm that the two possible triploid groups showing sulfite resistance/tolerance are widespread worldwide and are identified in 14 regions/countries out of 16, with the notable exceptions of Denmark and Brazil. However, in both cases, the sampling may be non-representative (only 11 isolates from Brazil, and 31 isolates from a unique winery in Denmark). Indeed, for some regions, hundreds of isolates were studied (e.g. Bordeaux region, >700 isolates), while smaller subsets were considered for others (16 isolates for Portugal or Australia, for example). Thus, it will be necessary to validate or invalidate these results with a larger number of isolates for all regions, but also for different vintages to analyze more precisely the distribution over time for each region. At the winery level also, the number of isolates per sample (usually from 10 to 30) was low, and we can’t rule out small sample size bias. Subsequent sampling of a large number of wineries, vintages and larger sample size will help refine these first results.
Still, our data reveal the unequal distribution of the different genetic groups at both the geographical and time level, suggesting that some environmental factors (climate, temperature, grape varieties etc.) leading to specific wine composition (pH, ethanol and polyphenols contents, etc.), and/or oenological practices (sulfur dioxide management, barrel ageing) could be shaping the diversity of these wine isolates. It will be interesting in a near future to identify those environmental/anthropic factors, and to examine the associated phenotypic characteristics.
B. bruxellensis wine isolates show high spatiotemporal dispersion
In this paper, genetically identical isolates for all 12 microsatellites were considered as “clones”. It is possible that the use of additional microsatellite markers would result in the identification of more intra-strains differences. Indeed, only full genome sequencing will assess formally whether these different isolates are actual clones. Nevertheless, the isolates hereby designed as clones, are, if not 100% identical, at least very close genetically. The analysis of these “clones” revealed unexpected patterns: first, it was observed a cellar persistence of clones over decades despite modern hygienic practices, improved cleaning/disinfection protocols and a large choice of products and treatments [52–54]. This long-term persistence of B. bruxellensis wine isolates in a given cellar is remarkable. In Saccharomyces cerevisiae, the persistence of cellar-resident populations was shown, but on smaller period of time (over 20 years maximum) [55]. This exceptional temporal durability remains to be explored, but could be related to the specific survival ability of the species, even in a VNC form and to its bioadhesion/biofilm forming capacity in the winery environment [45, 56]. Secondly, besides its cellar residency, some B. bruxellensis clones showed high geographical dispersal and were independently isolated from wines originated from different producing regions, countries and sometimes even from different continents. At a regional scale, the clonal dispersal could be promoted through yeast vectors like insects and birds for a distance inferior to 100km [57–59]. However, for a significant number of clone groups, the calculated kilometric distance is incompatible with the natural dispersion, indicating the involvement of human activities. Indeed, the exchange of contaminated equipment (barrels, bottling equipment, pumps, etc.), the international wine trade and human transport of goods (fruits, etc.) could probably explain such situation [60]. The possibility to isolate clones in wines from old vintages is another example of the specific ability of the species to survive in wines after bottle aging and possibly explain world dissemination of clones through wine exports. In addition, exchanges may also happen between different industrial processes, allowing also niches dispersal of the species. However, it was previously shown that the dispersal was higher for wine isolates than other processes, suggesting different dispersal patterns for the different fermentation processes. Altogether, these results are consistent with the exchange of contaminated wine-related material, followed by adaptation to local winemaking practices, as suggested before [41]. These results draw an atypical picture of B. bruxellensis opportunistic lifestyle, mostly sedentary with nomad propensities.
Allotriploidisation: a recent adaptation to winemaking practices?
One of the most interesting results of this work is the fact that isolates from old vintages mostly belong to a unique group, the so-called “wine diploid” (darkcyan), while, intriguingly, this group represents only ≈31% of nowadays isolates. The oldest isolates for the triploid genetic groups date back the 1981–2000 interval, which is particularly surprising for the 1st Wine 3N (red) group that encompasses ≈45% of recent isolates and in a less extend for the Wine/Beer 3N (orange) group showing ≈16% of recent isolates. It has to be noted that most of the ‘old’ isolates were actually isolated recently from old vintages (eg strain L0626 that was isolated in 2006 from a 1909 vintage). Thus, two main hypotheses can explain this result: either isolates from the Wine 2N group have higher survival or revival rates or the putative triploid groups emerged more recently, during the 1981–2000 period. It is not possible from our data to favor one or the other scenario, and the unequal sampling of the different periods (eg only 11 isolates for 1901–1920 versus 1152 isolates for 2001–2020) may bias our analysis. Subsequent strain isolations will help determine whether the different genetic groups display contrasted ability to survive in wines over decades, thus formally testing the first hypothesis. On the opposite, some elements could be consistent with the second hypothesis: first, wines produced these last decades are characterized by higher ethanol content as a consequence of climate change [61, 62]. Cibrario et al recently showed that some strains of the 1st Wine 3N (red) group were highly tolerant to high ethanol content [63]. It can be hypothesized that the progressive increase in wine alcohol level could have triggered the selection of fitter individuals regarding ethanol content. Second, the two Wine 3N groups (red and turquoise) show an outstanding phenotypic trait related to adaptation to modern winemaking practices, namely sulfite tolerance/resistance. While sulfur dioxide addition is used in winemaking at least since the 18th century, it became the preferred treatment for B. bruxellensis spoilage in the 90’s, when Chatonnet et al. demonstrated formally that the species was the main responsible for ethylphenol production in wine [3]. Subsequently, control strategies encouraging the use of recurrent sulfite treatments at high dosage have emerged [64]. One possible outcome of the adoption of these strategies by the wine industry might have been the selection of tolerant/resistant strains. For example, in Australia where the use of larger quantities of sulfite was promoted [60, 65], 92% of B. bruxellensis wine isolates were SO2-tolerant in 2012 while in Greece the isolates that belong to the tolerant/resistant group were exclusively isolated from sweet red wine where higher doses of SO2 are detected and permitted [66]. Winemaking environments may have supported the existence of specific selective pressure favouring the retaining of fitter allotriploid individuals and their progressive proliferation in the last decades. Indeed, competition experiments between tolerant and sensitive strains showed that the former outcompeted the latter in high SO2 concentrations [44]. Altogether, our results suggest that independent allotriploidisation events in B. bruxellensis may have allowed diversification and subsequent adaptation to winemaking practices. Since most of the old vintages studied here were from Bordeaux region, it will be necessary to analyze old vintages from other regions to confirm or dispel such trend.
Supporting information
S1 Table [csv]
Details of the 1411 strains of used in this study.
S1 Fig [tif]
Minimum spanning tree of wine isolates using a 2N-constrained dataset.
Zdroje
1. Gerbaux V, Jeudy S, Monamy C. Étude des phénols volatils dans les vins de Pinot noir en Bourgogne. Bulletin de l'OIV. 2000:581–99.
2. Conterno L, Joseph CML, Arvik TJ, Henick-Kling T, Bisson LF. Genetic and Physiological Characterization of Brettanomyces bruxellensis Strains Isolated from Wines. AJEV. 2006;57(2):139–47.
3. Chatonnet P, Dubourdieu D, Boidron J-n, Pons M. The origin of ethylphenols in wines. JSFA. 1992;60(2):165–78. doi: 10.1002/jsfa.2740600205
4. Romano A, Perello MC, Lonvaud-Funel A, Sicard G, de Revel G. Sensory and analytical re-evaluation of "Brett character". Food Chemistry. 2009;114(1):15–9. doi: 10.1016/j.foodchem.2008.09.006 ISI:000263216000003.
5. Tempere S, Schaaper MH, Cuzange E, de Lescar R, de Revel G, Sicard G. The olfactory masking effect of ethylphenols: Characterization and elucidation of its origin. Food Quality and Preference. 2016;50:135–44. doi: 10.1016/j.foodqual.2016.02.004
6. Lattey KA, Bramley BR, Francis IL. Consumer acceptability, sensory properties and expert quality judgements of Australian Cabernet Sauvignon and Shiraz wines. Australian Journal of Grape and Wine Research. 2010;16(1):189–202. doi: 10.1111/j.1755-0238.2009.00069.x
7. Agnolucci M, Rea F, Sbrana C, Cristani C, Fracassetti D, Tirelli A, et al. Sulphur dioxide affects culturability and volatile phenol production by Brettanomyces/Dekkera bruxellensis. International Journal of Food Microbiology. 2010;143(1):76–80. doi: 10.1016/j.ijfoodmicro.2010.07.022 20705352
8. Campolongo S, Rantsiou K, Giordano M, Gerbi V, Cocolin L. Prevalence and Biodiversity of Brettanomyces bruxellensis in Wine from Northwestern Italy. Am J Enol Vitic. 2010;61(4):486–91. doi: 10.5344/ajev.2010.10034
9. Dias L, Pereira-da-Silva S, Tavares M, Malfeito-Ferreira M, Loureiro V. Factors affecting the production of 4-ethylphenol by the yeast Dekkera bruxellensis in enological conditions. Food Microbiology. 2003;20(4):377–84. doi: 10.1016/S0740-0020(03)00023-6 ISI:000182882900001.
10. Romano A, Perello MC, Revel Gd, Lonvaud-Funel A. Growth and volatile compound production by Brettanomyces/Dekkera bruxellensis in red wine. Journal of Applied Microbiology. 2008;104(6):1577–85. doi: 10.1111/j.1365-2672.2007.03693.x 18194246
11. Barata A, Caldeira J, Botelheiro R, Pagliara D, Malfeito-Ferreira M, Loureiro V. Survival patterns of Dekkera bruxellensis in wines and inhibitory effect of sulphur dioxide. Int J Food Microbiol. 2008;121(2):201–7. doi: 10.1016/j.ijfoodmicro.2007.11.020 18077036.
12. Berbegal C, Garofalo C, Russo P, Pati S, Capozzi V, Spano G. Use of Autochthonous Yeasts and Bacteria in Order to Control Brettanomyces bruxellensis in Wine. Fermentation. 2017;3(4):65. doi: 10.3390/fermentation3040065
13. de Barros Pita W, Tiukova I, Leite FCB, Passoth V, Simões DA, de Morais MA. The influence of nitrate on the physiology of the yeast Dekkera bruxellensis grown under oxygen limitation. Yeast. 2013;30(3):111–7. doi: 10.1002/yea.2945 23440690
14. Moktaduzzaman M, Galafassi S, Capusoni C, Vigentini I, Ling Z, Piskur J, et al. Galactose utilization sheds new light on sugar metabolism in the sequenced strain Dekkera bruxellensis CBS 2499. FEMS Yeast Res. 2015;15(2). doi: 10.1093/femsyr/fou009 25673757.
15. Renouf V, Falcou M, Miot-Sertier C, Perello MC, De Revel G, Lonvaud-Funel A. Interactions between Brettanomyces bruxellensis and other yeast species during the initial stages of winemaking. J Appl Microbiol. 2006;100(6):1208–19. doi: 10.1111/j.1365-2672.2006.02959.x 16696668
16. Capozzi V, Di Toro MR, Grieco F, Michelotti V, Salma M, Lamontanara A, et al. Viable But Not Culturable (VBNC) state of Brettanomyces bruxellensis in wine: New insights on molecular basis of VBNC behaviour using a transcriptomic approach. Food Microbiol. 2016;59:196–204. doi: 10.1016/j.fm.2016.06.007 27375260.
17. Serpaggi V, Remize F, Recorbet G, Gaudot-Dumas E, Sequeira-Le Grand A, Alexandre H. Characterization of the "viable but nonculturable" (VBNC) state in the wine spoilage yeast Brettanomyces. Food Microbiol. 2012;30(2):438–47. doi: 10.1016/j.fm.2011.12.020 22365358.
18. Galafassi S, Capusoni C, Moktaduzzaman M, Compagno C. Utilization of nitrate abolishes the "Custers effect" in Dekkera bruxellensis and determines a different pattern of fermentation products. J Ind Microbiol Biotechnol. 2013;40(3–4):297–303. doi: 10.1007/s10295-012-1229-3 23354425.
19. Tubia I, Prasad K, Perez-Lorenzo E, Abadin C, Zumarraga M, Oyanguren I, et al. Beverage spoilage yeast detection methods and control technologies: A review of Brettanomyces. Int J Food Microbiol. 2018;283:65–76. doi: 10.1016/j.ijfoodmicro.2018.06.020 30099997.
20. Mitrakul CM, Henick-Kling T, Egli CM. Discrimination ofBrettanomyces/Dekkerayeast isolates from wine by using various DNA finger-printing methods. Food Microbiology. 1999;16(1):3–14. doi: 10.1006/fmic.1998.0217
21. Curtin CD, Bellon JR, Henschke PA, Godden PW, De Barros Lopes MA. Genetic diversity of Dekkera bruxellensis yeasts isolated from Australian wineries. FEMS Yeast Research. 2007;7(3):471–81. doi: 10.1111/j.1567-1364.2006.00183.x 17233769
22. Miot-Sertier C, Lonvaud-Funel A. Development of a molecular method for the typing of Brettanomyces bruxellensis (Dekkera bruxellensis) at the strain level. Journal of Applied Microbiology. 2007;102(2):555–62. doi: 10.1111/j.1365-2672.2006.03069.x 17241362
23. Di Toro MR, Capozzi V, Beneduce L, Alexandre H, Tristezza M, Durante M, et al. Intraspecific biodiversity and ‘spoilage potential’ of Brettanomyces bruxellensis in Apulian wines. LWT—Food Science and Technology. 2015;60(1):102–8. doi: 10.1016/j.lwt.2014.06.059
24. Oelofse A, Lonvaud-Funel A, du Toit M. Molecular identification of Brettanomyces bruxellensis strains isolated from red wines and volatile phenol production. Food Microbiol. 2009;26(4):377–85. doi: 10.1016/j.fm.2008.10.011 19376458.
25. Vigentini I, De Lorenzis G, Picozzi C, Imazio S, Merico A, Galafassi S, et al. Intraspecific variations of Dekkera/Brettanomyces bruxellensis genome studied by capillary electrophoresis separation of the intron splice site profiles. International Journal of Food Microbiology. 2012;157(1):6–15. doi: 10.1016/j.ijfoodmicro.2012.02.017 22607811
26. Guzzon R, Larcher R, Guarcello R, Francesca N, Settanni L, Moschetti G. Spoilage potential of brettanomyces bruxellensis strains isolated from Italian wines. Food Research International. 2018;105:668–77. doi: 10.1016/j.foodres.2017.11.078 29433261
27. Agnolucci M, Vigentini I, Capurso G, Merico A, Tirelli A, Compagno C, et al. Genetic diversity and physiological traits of Brettanomyces bruxellensis strains isolated from Tuscan Sangiovese wines. International Journal of Food Microbiology. 2009;130(3):238–44. doi: 10.1016/j.ijfoodmicro.2009.01.025 19237217
28. Oro L, Canonico L, Marinelli V, Ciani M, Comitini F. Occurrence of Brettanomyces bruxellensis on Grape Berries and in Related Winemaking Cellar. Front Microbiol. 2019;10:415. doi: 10.3389/fmicb.2019.00415 30899251; PubMed Central PMCID: PMC6416197.
29. Renouf V, Lonvaud-Funel A. Development of an enrichment medium to detect Dekkera/Brettanomyces bruxellensis, a spoilage wine yeast, on the surface of grape berries. Microb Research. 2007;162(2):154–67. doi: 10.1016/j.micres.2006.02.006 16595174
30. Piškur J, Ling Z, Marcet-Houben M, Ishchuk OP, Aerts A, LaButti K, et al. The genome of wine yeast Dekkera bruxellensis provides a tool to explore its food-related properties. Int J Food Microbiol. 2012;157(2):202–9. doi: 10.1016/j.ijfoodmicro.2012.05.008 22663979
31. Curtin CD, Borneman AR, Chambers PJ, Pretorius IS. De-Novo Assembly and Analysis of the Heterozygous Triploid Genome of the Wine Spoilage Yeast Dekkera bruxellensis AWRI1499. PLoS One. 2012;7(3). doi: 10.1371/journal.pone.0033840 ISI:000304489000038. 22470482
32. Fournier T, Gounot JS, Freel K, Cruaud C, Lemainque A, Aury JM, et al. High-Quality de Novo Genome Assembly of the Dekkera bruxellensis Yeast Using Nanopore MinION Sequencing. G3 (Bethesda). 2017;7(10):3243–50. doi: 10.1534/g3.117.300128 28983066; PubMed Central PMCID: PMC5633375.
33. Valdes J, Tapia P, Cepeda V, Varela J, Godoy L, Cubillos FA, et al. Draft genome sequence and transcriptome analysis of the wine spoilage yeast Dekkera bruxellensis LAMAP2480 provides insights into genetic diversity, metabolism and survival. FEMS Microbiol Lett. 2014;361(2):104–6. doi: 10.1111/1574-6968.12630 25328076.
34. Olsen RA, Bunikis I, Tiukova I, Holmberg K, Lotstedt B, Pettersson OV, et al. De novo assembly of Dekkera bruxellensis: a multi technology approach using short and long-read sequencing and optical mapping. GigaScience. 2015;4:56. doi: 10.1186/s13742-015-0094-1 26617983; PubMed Central PMCID: PMC4661999.
35. Borneman AR, Zeppel R, Chambers PJ, Curtin CD. Insights into the Dekkera bruxellensis Genomic Landscape: Comparative Genomics Reveals Variations in Ploidy and Nutrient Utilisation Potential amongst Wine Isolates. PLoS Genet. 2014;10(2):e1004161. doi: 10.1371/journal.pgen.1004161 24550744
36. Crauwels S, Zhu B, Steensels J, Busschaert P, De Samblanx G, Marchal K, et al. Assessing Genetic Diversity among Brettanomyces Yeasts by DNA Fingerprinting and Whole-Genome Sequencing. Applied and Environmental Microbiology. 2014;80(14):4398–413. doi: 10.1128/AEM.00601-14 PMC4068659. 24814796
37. Albertin W, Marullo P, Aigle M, Bourgais A, Bely M, Dillmann C, et al. Evidence for autotetraploidy associated with reproductive isolation in Saccharomyces cerevisiae: towards a new domesticated species. J Evol Biol. 2009;22(11):2157–70. Epub 2009/09/22. doi: 10.1111/j.1420-9101.2009.01828.x 19765175. 19765175
38. Feng B, Yi SV, Zhang M, Zhou X. Development of novel EST-SSR markers for ploidy identification based on de novo transcriptome assembly for Misgurnus anguillicaudatus. PloS one. 2018;13(4):e0195829–e. doi: 10.1371/journal.pone.0195829 29649332.
39. Dalton NJ, Horsburgh GJ, Dawson DA. The characterisation of microsatellite markers reveals tetraploidy in the Greater Water Parsnip, Sium latifolium (Apiaceae). BMC Res Notes. 2017;10(1):204–. doi: 10.1186/s13104-017-2528-6 28606172.
40. Albertin W, Panfili A, Miot-Sertier C, Goulielmakis A, Delcamp A, Salin F, et al. Development of microsatellite markers for the rapid and reliable genotyping of Brettanomyces bruxellensis at strain level. Food Microbiol. 2014;42:188–95. doi: 10.1016/j.fm.2014.03.012 24929736
41. Avramova M, Cibrario A, Peltier E, Coton M, Coton E, Schacherer J, et al. Brettanomyces bruxellensis population survey reveals a diploid-triploid complex structured according to substrate of isolation and geographical distribution. Scientific reports. 2018;8(4136). doi: 10.1038/s41598-018-22580-7 29515178
42. Dimopoulou M, Hatzikamari M, Masneuf-Pomarede I, Albertin W. Sulfur dioxide response of Brettanomyces bruxellensis strains isolated from Greek wine. Food Microbiol. 2019;78:155:63. doi: 10.1016/j.fm.2018.10.013 30497597
43. Avramova M, Vallet-Courbin A, Maupeu J, Masneuf-Pomarède I, Albertin W. Molecular Diagnosis of Brettanomyces bruxellensis’ Sulfur Dioxide Sensitivity Through Genotype Specific Method. Frontiers in Microbiology. 2018;9(1260). doi: 10.3389/fmicb.2018.01260 29942296
44. Avramova M, Varela C, Grbin P, Borneman A, Albertin W, Masneuf-Pomarede I. Competition experiments between Brettanomyces bruxellensis strains reveal specific adaptation to SO2. FEMS Yeast Res. 2019;19(3). doi: 10.1093/femsyr/foz010 30721945
45. Dimopoulou M, Renault M, Dols-Lafargue M, Albertin W, Herry JM, Bellon-Fontaine MN, et al. Microbiological, biochemical, physicochemical surface properties and biofilm forming ability of Brettanomyces bruxellensis. Ann Microbiol. 2019;In press. doi: 10.1101/579144v1
46. Dray S, Dufour A. The ade4 Package: Implementing the Duality Diagram for Ecologists. Journal of Statistical Software. 2007;22(4):1–20. doi: 10.18637/jss.v022.i04
47. Jombart T. adegenet: a R package for the multivariate analysis of genetic markers. Bioinformatics. 2008;24(11):1403–5. doi: 10.1093/bioinformatics/btn129 18397895.
48. Jombart T, Ahmed I. adegenet 1.3–1: new tools for the analysis of genome-wide SNP data. Bioinformatics. 2011;27(21):3070–1. doi: 10.1093/bioinformatics/btr521 21926124; PubMed Central PMCID: PMC3198581.
49. Kamvar ZN, Brooks JC, Grunwald NJ. Novel R tools for analysis of genome-wide population genetic data with emphasis on clonality. Frontiers in genetics. 2015;6:208. doi: 10.3389/fgene.2015.00208 26113860; PubMed Central PMCID: PMC4462096.
50. Kamvar ZN, Tabima JF, Grunwald NJ. Poppr: an R package for genetic analysis of populations with clonal, partially clonal, and/or sexual reproduction. PeerJ. 2014;2:e281. doi: 10.7717/peerj.281 24688859; PubMed Central PMCID: PMC3961149.
51. Bivand RS, Pebesma E, Gomez-Rubio V. Applied spatial data analysis with R. New York: Springer-Verlag; 2013.
52. Lustrato G, Vigentini I, De Leonardis A, Alfano G, Tirelli A, Foschino R, et al. Inactivation of wine spoilage yeasts Dekkera bruxellensis using low electric current treatment (LEC). Journal of Applied Microbiology. 2010;109(2):594–604. doi: 10.1111/j.1365-2672.2010.04686.x 20148995
53. Buzrul S. High hydrostatic pressure treatment of beer and wine: A review. Innovative Food Science & Emerging Technologies. 2012;13:1–12. doi: 10.1016/j.ifset.2011.10.001
54. Fabrizio V, Vigentini I, Parisi N, Picozzi C, Compagno C, Foschino R. Heat inactivation of wine spoilage yeast Dekkera bruxellensis by hot water treatment. Letters in Applied Microbiology. 2015;61(2):186–91. doi: 10.1111/lam.12444 25989358
55. Borlin M, Venet P, Claisse O, Salin F, Legras JL, Masneuf-Pomarede I. Cellar-associated Saccharomyces cerevisiae population structure revealed high diversity and perennial persistence in Sauternes wine estates. Appl Environ Microbiol. 2016. Epub 2016/03/13. doi: 10.1128/AEM.03627-15 26969698.
56. Joseph CML, Kumar G, Su E, Bisson LF. Adhesion and Biofilm Production by Wine Isolates of Brettanomyces bruxellensis. AJEV. 2007;58(3):373–8.
57. Goddard MR, Anfang N, Tang R, Gardner RC, Jun C. A distinct population of Saccharomyces cerevisiae in New Zealand: evidence for local dispersal by insects and human-aided global dispersal in oak barrels. Environmental Microbiology. 2010;12(1):63–73. doi: 10.1111/j.1462-2920.2009.02035.x 19691498
58. Francesca N, Canale DE, Settanni L, Moschetti G. Dissemination of wine-related yeasts by migratory birds. Environmental microbiology reports. 2012;4(1):105–12. doi: 10.1111/j.1758-2229.2011.00310.x 23757236.
59. Stefanini I, Dapporto L, Legras JL, Calabretta A, Di Paola M, De Filippo C, et al. Role of social wasps in Saccharomyces cerevisiae ecology and evolution. Proc Natl Acad Sci U S A. 2012;109(33):13398–403. Epub 2012/08/01. doi: 10.1073/pnas.1208362109 22847440; PubMed Central PMCID: PMC3421210.
60. Licker JL, Acree TE, Henick-Kling T. What Is "Brett" (Brettanomyces) Flavor?: A Preliminary Investigation. Chemistry of Wine Flavor. ACS Symposium Series. 714: American Chemical Society; 1998. p. 96–115.
61. Bock A, Sparks TH, Estrella N, Menzel A. Climate-Induced Changes in Grapevine Yield and Must Sugar Content in Franconia (Germany) between 1805 and 2010. PLOS ONE. 2013;8(7):e69015. doi: 10.1371/journal.pone.0069015 23894395
62. Gaidos S. Grape expectations: Climate change is already transforming the wine industry. Science News. 2014;185(3):20–4. doi: 10.1002/scin.5591850316
63. Cibrario A, Miot-Sertier C, Paulin M, Bullier B, Riquier L, Perello MC, et al. Brettanomyces bruxellensis phenotypic diversity, tolerance to wine stress and spoilage ability. Submitted to Food Microbiology.
64. Chatonnet P, Boidron JN, Dubourdieu D. Influence des conditions d'élevage et de sulfitage des vins rouges en barriques sur leur teneur en acide acétique et en ethyl-phenols1993. 277–98 p.
65. Curtin C, Borneman A, Zeppel R, Cordente T, Kievit R, Chambers P, et al. AWRI: Staying a step ahead of 'Brett' Wine & Viticulture Journal. 2014;29(5):34–7.
66. Curtin C, Kennedy E, Henschke PA. Genotype-dependent sulphite tolerance of Australian Dekkera (Brettanomyces) bruxellensis wine isolates. Lett Appl Microbiol. 2012;55(1):56–61. doi: 10.1111/j.1472-765X.2012.03257.x 22537453
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