| Literature DB >> 26973603 |
Abstract
The conversion of grape must into wine involves the development and succession of yeast populations differing in species composition. The initial population is formed by vineyard strains which are washed into the must from the crushed grapes and then completed with yeasts coming from the cellar environment. As the origin and natural habitat of the vineyard yeasts are not fully understood, this study addresses the possibility, that grape yeasts can be preserved in berries left behind on vines at harvest until the spring of the next year. These berries become mummified during the winter on the vines. To investigate whether yeasts can survive in these overwintering grapes, mummified berries were collected in 16 localities in the Tokaj wine region (Hungary-Slovakia) in early March. The collected berries were rehydrated to recover viable yeasts by plating samples onto agar plates. For the detection of minority species which would not be detected by direct plating, an enrichment step repressing the propagation of alcohol-sensitive yeasts was also included in the process. The morphological, physiological, and molecular analysis identified 13 basidiomycetous and 23 ascomycetous species including fermentative yeasts of wine-making relevance among the 3879 isolates. The presence of viable strains of these species demonstrates that the grapes mummified on the vine can serve as a safe reservoir of yeasts, and may contribute to the maintenance of grape-colonizing yeast populations in the vineyard over years, parallel with other vectors and habitats. All basidiomycetous species were known phylloplane yeasts. Three Hanseniaspora species and pigmented Metschnikowia strains were the most frequent ascomycetes. Other fermentative yeasts of wine-making relevance were detected only in the enrichment cultures. Saccharomyces (S. paradoxus, S. cerevisiae, and S. uvarum) were recovered from 13% of the samples. No Candida zemplinina was found. The isolates with Aureobasidium morphology turned out to belong to Aureobasidium subglaciale, Kabatiella microsticta, or Columnosphaeria fagi. The ascomyceteous isolates grew at high concentrations of sugars with Wickerhamomyces anomalus being the most tolerant species. Complex interactions including antagonism (growth inhibition, contact inhibition, competition for nutrients) and synergism (crossfeeding) among the isolates and with Botrytis cinerea shape the composition of the overwintering communities.Entities:
Keywords: Tokaj; antagonism; diversity; grape; molecular taxonomy; wine; yeasts
Year: 2016 PMID: 26973603 PMCID: PMC4770031 DOI: 10.3389/fmicb.2016.00212
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Figure 1Geographic locations of vineyards in which samples were collected. 1. Szegi; 2. Sárazsadány; 3. Hercegkút; 4. Hercegkút; 5. Viničky; 6. Bara; 7. Bara; 8. Černochov; 9. Malá Tŕňa; 10. Malá Tŕňa; 11. Malá Tŕňa; 12. Tolcsva; 13. Tolcsva; 14. Erdöbénye; 15. Abaujszántó; 16. Mád.
Figure 2Yeast-yeast interactions. (A) L. thermotolerans 8/2z-3 (lawn) shows no interaction with Ca. glabrata 14/1z-1 (Cg) but inhibits the growth of H. vineae 11/1z-4 (Hv). (B) Clear inhibition zone in the Ca. glabrata 14/1z-1 lawn around the W. anomalus 15/z-7 colony. (C) Turbid inhibition zone in the H. vineae 11/1z-4 lawn around the W. anomalus 15/z-7 colony. (D) Synergistic effect of the P. scaptomyzae 12/z-4 colony on the T. delbrueckii 1/1/z-10 lawn. (E) Dual effect: inhibition zone and crossfeeding of the Kl. dobzhanskii 9/z-6 lawn by the P. scaptomyzae 12z-4 colony. (F) Crossfeeding of the melibiose-minus P. kluyveri 11/2-104 colony (Pk) by the melibiose-positive Zt. florentina 7z-11 colony (Zf) on the medium containing melibiose as carbon source. (B) and (C) were photographed with transmitted light.
D1/D2 sequence differences of selected representatives of the phenotypic groups of isolates from type strains of the most similar species.
| 10–59 | Malá Tŕňa | 0 | |||
| 1/2–11 | Szegi | 0 0 | |||
| 6/1–5 | Bara | 0 0 | |||
| 13/1–4 | Tolcsva | 0 0 | |||
| 14/1z-1 | Erdöbénye | 1 | |||
| 11/1–54 | Malá Tŕňa | 0 | |||
| 11/1-55 | Malá Tŕňa | 0 | |||
| 7-9 | Bara | 3 | |||
| 1/1z-2 | Szegi | 0 | |||
| 2z-22 | Sárazsadány | 0 | |||
| 4–3 | Hercegkút | 0 | |||
| 4z-5 | Hercegkút | 0 | |||
| 5/1z-3 | Vinièky | 0 | |||
| 5/2–6 | Viničky | 1 | |||
| 5/2z-6 | Viničky | 0 | |||
| 5/2z-11 | Viničky | 1 | |||
| 7/2z-1 | Bara | 0 | |||
| 8–3 | Černochov | 0 | |||
| 8z-4 | Černochov | 0 | |||
| 9z-3 | Malá Tŕňa | 0 | |||
| 11/2z-2 | Malá Tŕňa | 0 | |||
| 12/2z-3 | Tolcsva | 0 | |||
| 13/2–90 | Tolcsva | 0 | |||
| 13/2z-5 | Tolcsva | 0 | |||
| 15z-4 | Abaújszántó | 0 | |||
| 1–3 | Szegi | 0 | |||
| 1z-2 | Szegi | 0 | |||
| 1/1–32 | Szegi | 0 | |||
| 2–4 | Sárazsadány | 0 | |||
| 4/1–6 | Hercegkút | 0 | |||
| 7–3 | Bara | 0 | |||
| 7/2–17 | Bara | 0 | |||
| 8/2-28 | Černochov | 0 | |||
| 9/1–3 | Malá Tŕňa | 0 | |||
| 9/1–66 | Malá Tŕňa | 0 | |||
| 11/1–10 | Malá Tŕňa | 0 | |||
| 13/2–4 | Tolcsva | 0 | |||
| 14/1–7 | Erdöbénye | 0 | |||
| 15/1–10 | Abaújszántó | 0 | |||
| 15/2–1 | Abaújszántó | 0 | |||
| 16–5 | Mád | 0 | |||
| 16/2–2 | Mád | 0 | |||
| 1/1–5 | Szegi | 3 | |||
| 11/1z-4 | Malá Tŕňa | 1 | |||
| 12/1z-2 | Tolcsva | 4 | |||
| 12/1z-5 | Tolcsva | 4 | |||
| 5z-9 | Viničky | 0 | |||
| 5z-17 | Viničky | 0 | |||
| 7/1z-5 | Bara | 0 | |||
| 9/z-1 | Malá Tàòa | 0 | |||
| 9z-6 | Malá Tŕňa | 0 | |||
| 10z-4 | Malá Tŕňa | 0 | |||
| 10/1z-1 | Malá Tŕňa | 0 | |||
| 2/2z-8 | Sárazsadány | 0 | |||
| 5/1z-7 | Viničky | 0 | |||
| 8z-1 | Černochov | 0 | |||
| 8/2z-3 | Černochov | 0 | |||
| 9/1-15 | Malá Tŕňa | 0 | |||
| 9/1z-4 | Malá Tŕňa | 0 | |||
| 10/2z-4 | Malá Tŕňa | 0 | |||
| 11–27 | Malá Tŕňa | 0 | |||
| 11z-1 | Malá Tŕňa | 0 | |||
| 11/2–112 | Malá Tŕňa | 0 | |||
| 14/1z-2 | Erdöbénye | 0 | |||
| 3z-1 | Hercegkút | 11 | |||
| 5z-6 | Viničky | 2 | |||
| 5z-10 | Viničky | 2 | |||
| 5z-12 | Viničky | 1 | |||
| 11/2–104 | Malá Tŕňa | 1 | |||
| 4/1–34 | Hercegkút | 3 | |||
| 15/1z-9 | Abaújszántó | 3 | |||
| 12z-4 | Tolcsva | 0 | |||
| 12z-14 | Tolcsva | 0 | |||
| 3/1z-5 | Hercegkút | 0 | |||
| 14/z-1 | Erdöbénye | 0 | |||
| 3z-28 | Hercegkút | 2 | |||
| 3/2z-5 | Hercegkút | 2 | |||
| 5z-7 | Viničky | 2 | |||
| 7/2z-2 | Bara | 2 | |||
| 7/2z-3 | Bara | 2 | |||
| 10z-2 | Malá Tŕňa | 2 | |||
| 4/2z-11 | Hercegkút | 0 | |||
| 1/1z-1 | Szegi | 0 | |||
| 1/1z-10 | Szegi | 0 | |||
| 15z-7 | Abaújszántó | 0 | |||
| 8z-2 | Černochov | 0 | |||
| 4–24 | Hercegkút | 0 | |||
| 8–29 | Černochov | 0 | |||
| 2z-30 | Sárazsadány | 0 | |||
| 3/2–1 | Hercegkút | 0 | |||
| 7z-11 | Bara | 0 | |||
| 9/2z-9 | Malá Tŕňa | 0 | |||
| 13/1–34 | Tolcsva | 0 | |||
| 6/2–10 | Bara | 0 | |||
| 7/2–10 | Bara | 0 | |||
| 10/2–3 | Malá Tŕňa | 0 | |||
| 8–30 | Černochov | 0 | |||
| 12/2–18 | Tolcsva | 0 | |||
| 13/1–29 | Tolcsva | 0 | |||
| 6–13 | Bara | 24 | |||
| 6–21 | Bara | 0 0 0 | |||
| 7/1–40 | Bara | 0 0 0 | |||
| 7/1–55 | Bara | 1 1 1 | |||
| 10/2–10 | Malá Tŕňa | 0 | |||
| 11/2–10 | Malá Tŕňa | 2 | |||
| 12/2–50 | Tolcsva | 2 | |||
| 13/2–49 | Tolcsva | 8 8 | |||
| 13/1–37 | Tolcsva | 0 | |||
| 7/1–56 | Bara | 6 | |||
| 8/1–14 | Černochov | 0 | |||
| 10–10 | Malá Tŕňa | 0 | |||
| 10–20 | Malá Tŕňa | 0 | |||
| 15–23 | Abaújszántó | 0 | |||
| 15–25 | Abaújszántó | 1 | |||
| 6–23 | Bara | 0 1 | |||
| 7/1–1 | Bara | 0 1 | |||
| 7/1–2 | Bara | 0 1 | |||
| 7/1–50 | Bara | 0 1 | |||
| 9–25 | Malá Tŕňa | 1 2 | |||
| 9–50 | Malá Tŕňa | 0 1 | |||
| 11–2 | Malá Tŕňa | 0 1 | |||
| 13/1z-1 | Tolcsva | 0 1 | |||
| 13/1–16 | Tolcsva | 0 | |||
| 6/2–4 | Bara | 1 1 | |||
, Type strain;
, neotype strain;
, contains one ambiguous nucleotide: N (A, G, C or T);
, isolate contains two ambiguous nucleotides: S (G or C) and Y (C or T);
, isolate contains one ambiguous nucleotide: Y (C or T);
, contains one ambiguous nucleotide: Y (C or T);
.
Osmotolerance of representative isolates of ascomyceteous yeast species.
| 14/1z-1 | +++ | +++ | ++ | + | |
| 11/1–55 | +++ | +++ | ++ | + | |
| 8-3 | +++ | +++ | ++ | + | |
| 9/1-66 | +++ | +++ | + | (+) | |
| 11/1z-4 | +++ | +++ | +(+) | (+) | |
| 9z-6 | +++ | +++ | ++(+) | – | |
| 8/2z-3 | +++ | +++ | ++(+) | + | |
| 11/1-3 | +++ | +++ | ++ | + | |
| 5z-6 | +++ | +++ | – | – | |
| 11/2–104 | +++ | +++ | + | – | |
| 4/1-34 | +++ | +++ | ++(+) | – | |
| 12z-4 | +++ | +++ | + | – | |
| 14z-1 | +++ | +++ | ++ | – | |
| 10z-2 | +++ | +++ | ++ | – | |
| 4/2z-11 | +++ | +++ | ++ | – | |
| 1/1z-10 | +++ | +++ | ++ | + | |
| 15z-7 | +++ | +++ | ++(+) | ++ | |
| 8z-2 | +++ | +++ | + | – | |
| 4–24 | +++ | +++ | ++ | – | |
| 7z-11 | +++ | +++ | ++ | – | |
+, growth; (+), weak growth; –, no growth.
Yeast antagonism.
| 14/1z-1 | – | – | – | – | – | 1 | 1 | 0.5 | – | – | – | – | – | – | – | – | 2 | – | – | – | |
| 11/1–55 | – | – | – | – | – | 0.5 | – | – | – | – | – | – | – | – | – | – | 1 | – | – | – | |
| 8–3 | ± | 2 | – | – | ± | – | – | – | ± | – | – | – | – | – | – | ± | – | – | – | – | |
| 9/1–66 | – | – | + | – | – | – | – | – | – | – | – | – | – | – | – | – | – | – | – | – | |
| 11/1z-4 | – | – | – | – | – | – | – | – | – | – | – | – | – | – | – | 1t | 3t | – | – | – | |
| 9z-6 | – | – | – | – | – | – | – | 2t | 2 | 1 | – | 0.5 | 1 | 1 | 0.5 | – | 1 | – | 0.5 | 1.5 | |
| 8/2z-3 | – | – | – | – | – | 1 | – | – | 1 | ± | – | – | – | – | – | – | 0.5 | – | – | – | |
| 11/1–3 | – | – | – | – | – | 2 | 1 | – | 1 | – | – | – | 0.5 | – | 0.5 | 1 | 1 | 0.5 | – | – | |
| 5z-6 | – | – | – | – | – | 0.5 | – | – | ± | ± | – | – | – | – | – | – | – | – | – | – | |
| 11/2–104 | – | – | – | – | – | – | – | – | 1 | – | – | – | – | – | – | – | – | – | – | – | |
| 4/1–34 | – | – | ± | ± | ± | 2 | 3 | – | – | – | – | – | – | – | – | – | 2t | – | – | – | |
| 12z-4 | – | – | – | – | – | 1 | – | – | – | – | – | – | – | – | – | – | 0.5t | – | – | – | |
| 14z-1 | – | – | – | – | – | 0.5 | 0.5 | – | – | – | – | – | – | – | – | – | 2.5t | – | – | – | |
| 10z-2 | – | – | – | – | – | 2 | – | 1 | – | – | – | – | – | – | – | – | 2 | – | – | – | |
| 4/2z-11 | – | – | – | – | – | 1 | – | 1.5 | – | ± | – | – | – | – | – | – | 1 | – | – | – | |
| 1/1z-10 | – | – | – | – | – | 0.5 | – | – | – | ± | – | – | – | – | – | – | 2 | – | – | – | |
| 15z-7 | – | – | – | – | – | – | 0.5 | 2 | 3 | – | – | – | 1 | 2 | 0.2 | 1 | – | 1 | – | – | |
| 8z-2 | – | – | – | – | – | 0.5 | – | – | – | – | – | – | – | – | – | – | 1t | – | – | – | |
| 4–24 | – | – | – | – | – | 1 | 0.5 | – | – | – | – | – | – | – | – | – | 1t | – | – | – | |
| 7z–11 | – | – | – | – | – | 2 | – | – | – | – | – | – | – | – | – | – | – | – | – | – | |
Numerals, width of the inhibition zone in mm; –, no interaction is detected; +, crossfeeding (stronger lawn growth around the yeast colony);
, colony does not grow or grow poorly on the background lawn;
, the inhibition zone is turbid.
Figure 3Yeast- Inhibition of the growth of B. cinerea around the Metschnikowia sp. 11/1–3 colony on YEA after 5 days of incubation. (B) Growth of the Botrytis mycelium into the inhibition zone after 11 days of incubation. Note that the contact with the yeast colony halts the growth of the mycelium. (C) Reduced mycelial growth around the P. kluyveri 11/2–104 colony on YEA after 5 days of incubation. (D) Contact inhibition: the Botrytis mycelium stops growing at the contact with the P. fermentans 5z-6 colony. (E) Gradual invasion of the H. osmophila 5/1z-3 colony by the Botrytis mycelium on YEA after 5 days of incubation. (F) Growth of the Botrytis mycelium on the L. thermotolerans 2/2z-8 colony. Note that the mycelium is thicker on the yeast colony.
Antagonistic effect of representative isolates of ascomyceteous yeast species on .
| 14/1z-1 | – | – | – | – | (+) | (+) | |
| 11/1–55 | 3 | – | – | – | (+) | – | |
| 4–3 | 3 | – | + | + | + | + | |
| 8–3 | – | – | + | + | + | + | |
| 9/1–66 | 5 | – | + | + | + | + | |
| 1/1–5 | – | – | – | – | (+) | (+) | |
| 11/1z-4 | 3 | – | + | – | + | + | |
| 12/1z-2 | 3 | – | + | – | + | – | |
| 5z-9 | 1 | – | – | – | + | (+) | |
| 9z-6 | – | – | – | – | + | – | |
| 2/2z-8 | – | – | + | + | + | + | |
| 8/2z-3 | 4 | – | + | + | + | + | |
| 14/1z-2 | 2 | – | + | + | + | + | |
| 11/1–3 | 4 | 1 | – | – | – | – | |
| 15–8 | 3 | – | – | – | – | – | |
| 5z-6 | 4 | 4 | – | – | (+) | – | |
| 11/2–104 | 5 | 5 | – | – | (+) | – | |
| 4/1–34 | 2 | – | (+) | – | + | (+) | |
| 15/1z-9 | 2 | – | – | – | + | (+) | |
| 12z-4 | – | – | (+) | – | + | (+) | |
| 3/1z-5 | – | – | – | – | + | + | |
| 14z-1 | – | – | – | – | (+) | (+) | |
| 3z-28 | – | – | – | – | (+) | – | |
| 7/2z-2 | 3 | – | – | – | + | + | |
| 10z-2 | 3 | 3 | – | – | (+) | – | |
| 4/2z-11 | 2 | 2 | – | – | + | + | |
| 1/1z-10 | – | – | – | – | (+) | – | |
| 15z-7 | – | – | – | – | – | (+) | |
| 8z-2 | 4 | 4 | – | – | + | – | |
| 4–24 | 3 | 3 | – | – | (+) | (+) | |
| 8–29 | 2 | 2 | – | – | (+) | – | |
| 2z-30 | – | – | – | – | – | – | |
| 3/2–1 | – | – | + | (+) | + | + | |
| 7z-11 | 3 | 1 | – | – | (+) | – | |
| 9/2z-9 | 3 | 1 | – | – | (+) | (+) | |
YEA and PDA are media (see Materials and Methods for description); numerals, width of inhibition zone in mm; +, growth; (+), weak growth; –, no growth;
, inhibition zone is turbid.