| [1] |
Hussain SZ, Naseer B, Qadri T, Fatima T, Bhat TA. 2021. Grapes (Vitis vinifera)—morphology, taxonomy, composition and health benefits. Fruits Grown in Highland Regions of the Himalayas: Nutritional and Health Benefits. Cham: Springer. pp. 103−15 doi: 10.1007/978-3-030-75502-7_8 |
| [2] |
Liu Q, Zhao X, Jiang Z, Han X, Peng S, et al. 2025. Co-evolutionary dynamics of microbial communities and flavor profiles during natural fermentation of Cabernet Sauvignon and Merlot: a comparative study within a single vineyard. |
| [3] |
Maicas S, Mateo JJ. 2023. The life of Saccharomyces and non-Saccharomyces yeasts in drinking wine. |
| [4] |
Thivijan S, Pavalakumar D, Gunathunga CJ, Undugoda LJS, Manage PM, et al. 2024. Influence of indigenous non-Saccharomyces yeast strains on the physicochemical and sensory properties of wine fermentation: a promising approach to enhancing wine quality. |
| [5] |
Thivijan S, Undugoda LJS, Nugara RN, Manage PM, Thambulugala KM, Kannangara, SD. 2023. Quorum sensing capability of wine microbial consortium involved in spontaneous fermentation of regional wine production. |
| [6] |
Albergaria H, Arneborg N. 2016. Dominance of Saccharomyces cerevisiae in alcoholic fermentation processes: role of physiological fitness and microbial interactions. |
| [7] |
Kunyeit L, Rao RP, Anu-Appaiah KA. 2024. Yeasts originating from fermented foods, their potential as probiotics and therapeutic implication for human health and disease. |
| [8] |
Ashraf SA, Elkhalifa AEO, Ahmad MF, Patel M, Adnan M, et al. 2022. Probiotic fermented foods and health promotion. African Fermented Food Products - New Trends, eds Elhadi Sulieman AM, Adam Mariod A. Cham: Springer. pp. 59–88 doi: 10.1007/978-3-030-82902-5_6 |
| [9] |
Gunathunga CJ, Undugoda LJS, Manage PM, Nugara RN, Nilmini AHLR, et al. 2024. Determining probiotic properties and fermented milk production potential of Lactobacillus strains inhabiting traditional buffalo curd. |
| [10] |
Pavalakumar D, Undugoda LJS, Gunathunga CJ, Manage PM, Nugara RN, et al. 2024. Evaluating the probiotic profile, antioxidant properties, and safety of indigenous Lactobacillus spp. inhabiting fermented green tender coconut water. |
| [11] |
Raungrusmee S, Kumar SR, Anal AK. 2022. Probiotic cereal-based food and beverages, their production and health benefits. Probiotics, Prebiotics and Synbiotics: Technological Advancements Towards Safety and Industrial Applications, Panesar PS, Anal AK. US: John Wiley & Sons Ltd. pp. 186–212 doi: 10.1002/9781119702160.ch9 |
| [12] |
Maftei NM, Raileanu CR, Balta AA, Ambrose L, Boev M, et al. 2024. The potential impact of probiotics on human health: an update on their health-promoting properties. |
| [13] |
Tegegne BA, Kebede B. 2022. Probiotics, their prophylactic and therapeutic applications in human health development: a review of the literature. |
| [14] |
Pais P, Almeida V, Yılmaz M, Teixeira MC. 2020. Saccharomyces boulardii: what makes it tick as successful probiotic? |
| [15] |
Boyte ME, Benkowski A, Pane M, Shehata HR. 2023. Probiotic and postbiotic analytical methods: a perspective of available enumeration techniques. |
| [16] |
Fernández-Pacheco P, Pintado C, Briones Pérez A, Arévalo-Villena M. 2021. Potential probiotic strains of Saccharomyces and non-Saccharomyces: functional and biotechnological characteristics. |
| [17] |
Vilela A, Cosme F, Inês A. 2020. Wine and non-dairy fermented beverages: a novel source of pro-and prebiotics. |
| [18] |
Romero-Luna HE, Hernández-Sánchez H, Ribas-Aparicio RM, Cauich-Sánchez PI, Dávila-Ortiz G. 2019. Evaluation of the probiotic potential of Saccharomyces cerevisiae strain (C41) isolated from Tibicos by in vitro studies. |
| [19] |
Abduxukur D, Tursuntay A, Zhu X, Wang X, Rahman N. 2023. Antioxidant capacity of lactic acid bacteria and yeasts from Xinjiang traditional fermented dairy products. |
| [20] |
Menezes AGT, Ramos CL, Cenzi G, Melo DS, Dias DR, et al. 2020. Probiotic potential, antioxidant activity, and phytase production of indigenous yeasts isolated from indigenous fermented foods. |
| [21] |
Chaudhary P, Janmeda P, Docea AO, Yeskaliyeva B, Abdull Razis AF, et al. 2023. Oxidative stress, free radicals and antioxidants: potential crosstalk in the pathophysiology of human diseases. |
| [22] |
Chen CC, Lai CC, Huang HL, Huang WY, Toh HS, et al. 2019. Antimicrobial activity of Lactobacillus species against carbapenem-resistant Enterobacteriaceae. |
| [23] |
Khushboo, Karnwal A, Malik T. 2023. Characterization and selection of probiotic lactic acid bacteria from different dietary sources for development of functional foods. |
| [24] |
Meena KK, Taneja NK, Jain D, Ojha A, Kumawat D, et al. 2022. In vitro assessment of probiotic and technological properties of lactic acid bacteria isolated from indigenously fermented cereal-based food products. |
| [25] |
Kruasuwan W, Puseenam A, Am-In S, Trakarnpaiboon S, Sornlek W, et al. 2023. Evaluation of thermotolerant and ethanol-tolerant Saccharomyces cerevisiae as an alternative strain for bioethanol production from industrial feedstocks. |
| [26] |
Alkalbani NS, Osaili TM, Al-Nabulsi AA, Obaid, RS, Olaimat AN, et al. 2022. In vitro characterization and identification of potential probiotic yeasts isolated from fermented dairy and non-dairy food products. |
| [27] |
Kim S, Lee JY, Jeong Y, Kang CH. 2022. Antioxidant activity and probiotic properties of lactic acid bacteria. |
| [28] |
Baliyan S, Mukherjee R, Priyadarshini A, Vibhuti A, Gupta A, et al. 2022. Determination of antioxidants by DPPH radical scavenging activity and quantitative phytochemical analysis of Ficus religiosa. |
| [29] |
Zheng Z, Wei L, Zhu M, Qian Z, Liu J, Zhang L, et al. 2023. Effect of lactic acid bacteria co-fermentation on antioxidant activity and metabolomic profiles of a juice made from wolfberry and longan. |
| [30] |
Łepecka A, Szymański P, Okoń A, Zielińska D. 2023. Antioxidant activity of environmental lactic acid bacteria strains isolated from organic raw fermented meat products. |
| [31] |
Datta S, Timson DJ, Annapure US. 2017. Antioxidant properties and global metabolite screening of the probiotic yeast Saccharomyces cerevisiae var. boulardii. |
| [32] |
Wu Y, Li B, Miao B, Xie C, Tang YQ. 2022. Saccharomyces cerevisiae employs complex regulation strategies to tolerate low pH stress during ethanol production. |
| [33] |
Offei B, Vandecruys P, De Graeve S, Foulquié-Moreno MR, Thevelein JM. 2019. Unique genetic basis of the distinct antibiotic potency of high acetic acid production in the probiotic yeast Saccharomyces cerevisiae var. boulardii. |
| [34] |
Samakkarn W, Vandecruys P, Moreno MRF, Thevelein J, Ratanakhanokchai K, et al. 2024. New biomarkers underlying acetic acid tolerance in the probiotic yeast Saccharomyces cerevisiae var. boulardii. |
| [35] |
Kimani BG, Kerekes EB, Szebenyi C, Krisch J, Vágvölgyi C, et al. 2021. In vitro activity of selected phenolic compounds against planktonic and biofilm cells of food-contaminating yeasts. |
| [36] |
Youn HY, Kim DH, Kim HJ, Bae D, Song KY, et al. 2022. Survivability of Kluyveromyces marxianus isolated from Korean kefir in a simulated gastrointestinal environment. |
| [37] |
Zeng X, Fan J, He L, Duan Z, Xia W. 2019. Technological properties and probiotic potential of yeasts isolated from traditional low-salt fermented Chinese fish Suan yu. |
| [38] |
Chen A, Qu T, Smith JR, Li J, Du G, et al. 2024. Osmotic tolerance in Saccharomyces cerevisiae: implications for food and bioethanol industries. |
| [39] |
Walker GM, Basso TO. 2020. Mitigating stress in industrial yeasts. |
| [40] |
Mendonça AA, de Paula Pinto-Neto W, da Paixão GA, da Silva Santos D, De Morais MA, et al. 2023. Journey of the probiotic bacteria: survival of the fittest. |
| [41] |
Bustos AY, Taranto MP, Gerez CL, Agriopoulou S, Smaoui S, et al. 2025. Recent advances in the understanding of stress resistance mechanisms in probiotics: relevance for the design of functional food systems. |
| [42] |
Poloni VL, Bainotti MB, Vergara LD, Escobar F, Montenegro M, et al. 2021. Influence of technological procedures on viability, probiotic and anti-mycotoxin properties of Saccharomyces boulardii RC009, and biological safety studies. |
| [43] |
Krausova G, Hyrslova I, Hynstova I. 2019. In vitro evaluation of adhesion capacity, hydrophobicity, and auto-aggregation of newly isolated potential probiotic strains. |
| [44] |
Wang R, Liu Y, Wen Y, Chen S, Zhang X, et al. 2025. Unraveling the secrets of probiotic adhesion: an overview of adhesion-associated cell surface components, adhesion mechanisms, and the effects of food composition. |
| [45] |
Isenring J, Geirnaert A, Lacroix C, Stevens MJA. 2021. Bistable auto-aggregation phenotype in Lactiplantibacillus plantarum emerges after cultivation in in vitro colonic microbiota. |
| [46] |
Diguță CF, Mihai C, Toma RC, Cîmpeanu C, Matei F. 2023. In vitro assessment of yeasts strains with probiotic attributes for aquaculture use. |
| [47] |
Fu J, Liu J, Wen X, Zhang G, Cai J, et al. 2023. Unique probiotic properties and bioactive metabolites of Saccharomyces boulardii. |
| [48] |
Gupta AK, Versteeg SG, Shear NH. 2018. Common drug-drug interactions in antifungal treatments for superficial fungal infections. |
| [49] |
Moghadam S, Zarrinfar H, Naseri A, Sadeghi J, Najafzadeh, MJ, et al. 2025. Investigating the susceptibility profiles and in vitro combinations of caspofungin, itraconazole, fluconazole, voriconazole, clotrimazole, and amphotericin B against clinical isolates causing fungal keratitis. |
| [50] |
Bibi Sadeer N, Montesano D, Albrizio S, Zengin G, Mahomoodally MF. 2020. The versatility of antioxidant assays in food science and safety—chemistry, applications, strengths, and limitations. |
| [51] |
Bao Y, Zhang M, Chen W, Chen H, Chen W, et al. 2021. Screening and evaluation of suitable non-Saccharomyces yeast for aroma improvement of fermented mango juice. |
| [52] |
Gaisawat MB, Iskandar MM, MacPherson CW, Tompkins TA, Kubow S. 2019. Probiotic supplementation is associated with increased antioxidant capacity and copper chelation in C. difficile-infected fecal water. |