[1] |
Dietler M. 2006. Alcohol: anthropological/archaeological perspectives. Annual Review of Anthropology 35(1):229−49 doi: 10.1146/annurev.anthro.35.081705.123120 |
[2] |
Zhu Y, Tramper J. 2013. Koji – where East meets West in fermentation. Biotechnology Advances 31(8):1448−57 doi: 10.1016/j.biotechadv.2013.07.001 |
[3] |
Jin G, Zhu Y, Xu Y. 2017. Mystery behind Chinese liquor fermentation. Trends in Food Science & Technology 63:18−28 doi: 10.1016/j.jpgs.2017.02.016 |
[4] |
Tang Q, He G, Huang J, Wu C, Jin Y, et al. 2019. Characterizing Relationship of Microbial Diversity and Metabolite in Sichuan Xiaoqu. Frontiers in Microbiology 10:696 doi: 10.3389/fmicb.2019.00696 |
[5] |
Zhang W, Si G, Rao Z, Li J, Zhang X, et al. 2019. High yield of tetramethylpyrazine in functional Fuqu using bacillus amyloliquefaciens. Food Bioscience 31:100435 doi: 10.1016/j.fbio.2019.100435 |
[6] |
Kang J, Xue Y, Chen X, Han B. 2022. Integrated multi-omics approaches to understand microbiome assembly in Jiuqu, a mixed-culture starter. Comprehensive Reviews in Food Science and Food Safety 21(5):4076−107 doi: 10.1111/1541-4337.13025 |
[7] |
Yang L, Fan W, Xu Y. 2024. Qu-omics elucidates the formation and spatio-temporal differentiation mechanism underlying the microecology of high temperature Daqu. Food Chemistry 438:137988 doi: 10.1016/j.foodchem.2023.137988 |
[8] |
Wang HY, Xu Y. 2015. Effect of temperature on microbial composition of starter culture for Chinese light aroma style liquor fermentation. Letters in Applied Microbiology 60(1):85−91 doi: 10.1111/lam.12344 |
[9] |
Yv H. 2018. Research Progress on the Volatile Substances of Strong Fragrance Baijiu. Food Safety Guide 2018(29):74−75 |
[10] |
Qian YL, An Y, Chen S, Qian MC. 2019. Characterization of Qingke Liquor Aroma from Tibet. Journal of Agricultural and Food Chemistry 67(50):13870−81 doi: 10.1021/acs.jafc.9b05849 |
[11] |
Li H, He R, Xiong X, Zhang M, Yang T, et al. 2016. Dynamic diversification of bacterial functional groups in the Baiyunbian liquor stacking fermentation process. Annals of microbiology 66(3):1229−1237 doi: 10.1007/s13213-016-1211-9 |
[12] |
Zheng XW, Tabrizi MR, Robert Nout MJ, Han BZ. 2011. Daqu – a traditional Chinese liquor fermentation starter. Journal of the Institute of Brewing 117(1):82−90 doi: 10.1002/j.2050-0416.2011.tb00447.x |
[13] |
Guo W, Zhou J, Fang S, Yv C, Cheng M. 2015. Application and research progress of fortified JiuQu. Brewing Technology 2015(9):98−101 |
[14] |
Pang XN, Chen C, Huang XN, Yan YZ, Chen JY, et al. 2021. Influence of indigenous lactic acid bacteria on the volatile flavor profile of light-flavor Baijiu. LWT 147:111540 doi: 10.1016/j.lwt.2021.111540 |
[15] |
Kargozari M, Moini S, Akhondzadeh Basti A, Emam-Djomeh Z, Gandomi H, et al. 2014. Effect of autochthonous starter cultures isolated from Siahmazgi cheese on physicochemical, microbiological and volatile compound profiles and sensorial attributes of sucuk, a Turkish dry-fermented sausage. Meat Science 97:104−14 doi: 10.1016/j.meatsci.2014.01.013 |
[16] |
Hidalgo C, Torija MJ, Mas A, Mateo E. 2013. Effect of inoculation on strawberry fermentation and acetification processes using native strains of yeast and acetic acid bacteria. Food Microbiology 34(1):88−94 doi: 10.1016/j.fm.2012.11.019 |
[17] |
Yoshikawa S, Yasokawa D, Nagashima K, Yamazaki K, Kurihara H, et al. 2010. Microbiota during fermentation of chum salmon (Oncorhynchus keta) sauce mash inoculated with halotolerant microbial starters: Analyses using the plate count method and PCR-denaturing gradient gel electrophoresis (DGGE). Food Microbiology 27(4):509−14 doi: 10.1016/j.fm.2009.12.008 |
[18] |
Fan G, Fu Z, Teng C, Wu Q, Liu P, et al. 2019. Comprehensive analysis of different grades of roasted-sesame-like flavored Daqu. International Journal of Food Properties 22(1):1205−22 doi: 10.1080/10942912.2019.1635154 |
[19] |
Wang Z, Li P, Luo L, Simpson DJ, Gänzle MG. 2018. Daqu fermentation selects for heat-resistant Enterobacteriaceae and Bacilli. Applied and Environmental Microbiology 84(21):e01483−18 doi: 10.1128/AEM.01483-18 |
[20] |
Liu BL. 1995. Production technology of Daqu for strong fragrance Baijiu. New rural technologies 1995(6):35−36 |
[21] |
Xu Y, Sun B, Fan G, Teng C, Xiong K, et al. 2017. The brewing process and microbial diversity of strong flavour Chinese spirits: a review. Journal of the Institute of Brewing 123(1):5−12 doi: 10.1002/jib.404 |
[22] |
Xiao J, Li JT. 2020. Design and implementation of intelligent temperature and humidity monitoring system based on ZigBee and WiFi. Procedia Computer Science 166:419−22 doi: 10.1016/j.procs.2020.02.072 |
[23] |
Liao J, Hu G, X Q, Zhu W, Bin Q. 2022. Monitoring system of Daqu fermentation humidity based on improved SSA optimization prediction model. Food and Machinery 38(9):93−97 doi: 10.13652/j.spjx.1003.5788.2022.90164 |
[24] |
Luo Y, Wu L, Wu M, Liao H, Yao Y, et al. 2024. Intelligent manufacturing challenges and directions of the baijiu starter culture-Daqu industry: Microbiome and engineering perspectives. Trends in Food Science & Technology 153:104724 doi: 10.1016/j.jpgs.2024.104724 |
[25] |
Wang X, Fan W, Xu Y. 2014. Comparison on aroma compounds in Chinese soy sauce and strong aroma type liquors by gas chromatography–olfactometry, chemical quantitative and odor activity values analysis. European Food Research & Technology 239(5):813−25 doi: 10.1007/s00217-014-2275-z |
[26] |
Mahmud MMC, Keast R, Mohebbi M, Shellie RA. 2022. Identifying aroma-active compounds in coffee-flavored dairy beverages. Journal of Food Science 87(3):982−97 doi: 10.1111/1750-3841.16071 |
[27] |
Zhou C, Zheng F, Li H, Wu J. 2019. Research progress on flavor compounds of Baijiu Daqu. China Brewing 38(5):6−12 doi: 10.11882/j.issn.0254-5071.2019.05.002 |
[28] |
Chen Z, Zhang C, Xu Y. 2020. The Research Progress on the Analysis of Flavor Compounds in Baijiu. China Brewing 39(6):13−16 doi: 10.11882/j.issn.0254-5071.2020.06.003 |
[29] |
Li C, Wang J, Feng P, Zhou H, Zhang C, et al. 2020. Breeding of caproic acid-producing bacteria and application in strong-flavor Baijiu production. China Brewing 39(8):1−6 doi: 10.11882/j.issn.0254-5071.2020.08.001 |
[30] |
Yong X, Zhao T, Liu J, Yuan S, Zhao W, et al. 2020. Research progress on alcohol acyltransferase from Saccharomyces cerevisiae. China Brewing 39(10):30−36 doi: 10.11882/j.issn.0254-5071.2020.10.007 |
[31] |
Huang Y, Yi Z, Jin Y, Huang M, He K, et al. 2017. Metatranscriptomics reveals the functions and enzyme profiles of the microbial community in Chinese nong-flavor liquor starter. Frontiers in microbiology 8:1747−47 doi: 10.3389/fmicb.2017.01747 |
[32] |
Cai W, Wang Y, Ni H, Liu Z, Liu J, et al. 2021. Diversity of microbiota, microbial functions, and flavor in different types of low-temperature Daqu. Food Research International 150:110734 doi: 10.1016/j.foodres.2021.110734 |
[33] |
Xiao Z, Yu D, Niu Y, Ma N, Zhu J. 2016. Characterization of different aroma-types of Chinese liquors based on their aroma profile by gas chromatography-mass spectrometry and sensory evaluation. Flavour and fragrance journal 31(3):217−27 doi: 10.1002/ffj.3304 |
[34] |
Pham T, Walden E, Huard S, Pezacki J, Fullerton MD, et al. 2022. Fine-tuning acetyl-CoA carboxylase 1 activity through localization: functional genomics reveals a role for the lysine acetyltransferase NuA4 and sphingolipid metabolism in regulating Acc1 activity and localization. Genetics 221(4):iyac086 doi: 10.1093/genetics/iyac086 |
[35] |
Yi Z, Jin Y, Xiao Y, Chen L, Tan L, et al. 2019. Unraveling the contribution of high temperature stage to Jiang-flavor Daqu, a liquor starter for production of Chinese Jiang-flavor Baijiu, with special reference to metatranscriptomics. Frontiers in Microbiology 10:472 doi: 10.3389/fmicb.2019.00472 |
[36] |
Zhang C, Ao Z, Chui W, Shen C, Tao W, et al. 2011. Characterization of volatile compounds from Daqu-a traditional Chinese liquor fermentation starter. International Journal of Food Science & Technology 46(8):1591−99 doi: 10.1111/j.1365-2621.2011.02660.x |
[37] |
Li DN, Huang W, Qiu SY. 2019. Thermoflavimicrobium Daqui sp. nov., a thermophilic microbe isolated from Moutai-flavour Daqu. International Journal of Systematic and Evolutionary Microbiology 69(9):2709 doi: 10.1099/ijsem.0.003528 |
[38] |
Ningtyas DW, Bhandari B, Bansal N, Prakash S. 2019. Flavour profiles of functional reduced-fat cream cheese: Effects of β-glucan, phytosterols, and probiotic L. rhamnosus. LWT 105:16−22 doi: 10.1016/j.lwt.2019.01.063 |
[39] |
Wang L, Huang Y, Hu X, Li Y. 2021. The impact of environmental factors on the environmental bacterial diversity and composition in the Jiang-flavoured Baijiu production region. LWT 149:111784 doi: 10.1016/j.lwt.2021.111784 |
[40] |
Du H, Lu H, Xu Y, Du X. 2013. Community of Environmental Streptomyces Related to Geosmin Development in Chinese Liquors. Journal of Agricultural and Food Chemistry 61(6):1343−48 doi: 10.1021/jf3040513 |
[41] |
Liu S, Zhou Y, Ma D, Zhang S, Dong Y, et al. 2023. Environment microorganism and mature Daqu powder shaped microbial community formation in mechanically strong-flavor Daqu. Food Bioscience 52:102467 doi: 10.1016/j.fbio.2023.102467 |
[42] |
Le VD, Zheng XW, Chen JY, Han BZ. 2012. Characterization of volatile compounds in Fen-Daqu - a traditional Chinese liquor fermentation starter. Journal of the Institute of Brewing 118(1):107−13 doi: 10.1002/jib.8 |
[43] |
Li P, Aflakpui FWK, Yu H, Luo L, Lin WT. 2015. Characterization of activity and microbial diversity of typical types of Daqu for traditional Chinese vinegar. Annals of Microbiology 65(4):2019−27 doi: 10.1007/s13213-015-1040-2 |
[44] |
Liu J, Chen J, Fan Y, Huang X, Han B. 2018. Biochemical characterisation and dominance of different hydrolases in different types of Daqu - a Chinese industrial fermentation starter. Journal of the Science of Food and Agriculture 98(1):113−21 doi: 10.1002/jsfa.8445 |
[45] |
Nout MJ. 2009. Rich nutrition from the poorest - cereal fermentations in Africa and Asia. Food Microbiology 26(7):685−92 doi: 10.1016/j.fm.2009.07.002 |
[46] |
Zeng C, Tagawa Y, Yoshizaki Y, Wang T, Yamaguchi M, et al. 2021. The expression profiles of acid-stable α-amylase and acid-labile α-amylase of Aspergillus luchuensis mut. Kawachii effect on the microstructure of koji and alcohol fermentation. LWT 139:110580 doi: 10.1016/j.lwt.2020.110580 |
[47] |
Bai K, Yv GZ, Zhou DY. 1995. Properties and Liquefaction Activity of α-Amylase. China Brewing 1995(5):7−10 |
[48] |
Zhou H, Li Y. 1996. Talking about liquefied amylase. Brewing Technology 1996(6):13−15 |
[49] |
Long X, Wang X, Tan J, Zhang X, Qiu S. 2013. Screening and identification of a high-yield glucoamylase-producing strain. Liquor-Making Science & Technology 2013(8):7−9 |
[50] |
Wang XD, Ban SD, Qiu SY. 2018. Analysis of the mould microbiome and exogenous enzyme production in Moutai-flavor Daqu. Journal of the Institute of Brewing 124(1):91−99 doi: 10.1002/jib.467 |
[51] |
Du H, Wang X, Zhang Y, Xu Y. 2019. Exploring the impacts of raw materials and environments on the microbiota in Chinese Daqu starter. International Journal of Food Microbiology 297:32−40 doi: 10.1016/j.ijfoodmicro.2019.02.020 |
[52] |
Wang JW, Han PJ, Han DY, Zhou S, Li K, et al. 2021. Genetic diversity and population structure of the amylolytic yeast Saccharomycopsis fibuligera associated with Baijiu fermentation in China. Journal of Microbiology 59(8):753−62 doi: 10.1007/s12275-021-1115-7 |
[53] |
Gan SH, Yang F, Sahu SK, Luo RY, Liao SL, et al. 2019. Deciphering the composition and functional profile of the microbial communities in Chinese moutai liquor starters. Frontiers in Microbiology 10:1540 doi: 10.3389/fmicb.2019.01540 |
[54] |
Wang C, Yang L, Luo L, Tang S, Wang Q. 2020. Purification and characterization of glucoamylase of Aspergillus oryzae from Luzhou-flavour Daqu. Biotechnology Letters 42(11):2345−55 doi: 10.1007/s10529-020-02956-4 |
[55] |
Zhang XH, Ma B, Kong J, Zhao JL. 2012. Analysis of starch hydrolytic enzymes of Fen-flavor Daqu. Liquor-Making Science & Technology 11:46−50 |
[56] |
Xiao C, Lu ZM, Zhang XJ, Wang ST, Ao L, et al. 2017. Bio-heat is a key environmental driver shaping the microbial community of medium-temperature Daqu. Applied Environmental Microbiology 83(23):e01550-17 doi: 10.1128/AEM.01550-17 |
[57] |
Zheng XW, Yan Z, Robert Nout MJ, Boekhout T, Han BZ, et al. 2015. Characterization of the microbial community in different types of Daqu samples as revealed by 16S rRNA and 26S rRNA gene clone libraries. World Journal of Microbiology & Biotechnology 31(1):199−208 doi: 10.1007/s11274-014-1776-z |
[58] |
Yao S, Liu Y, Li H, Ge YY, Zhang MJ, et al. 2015. Bacterial communities during the process of high-temperature Daqu production of roasted sesame-like flavour liquor: bacterial communities during high-temperature Daqu production. Journal of the Institute of Brewing 121(3):440−48 doi: 10.1002/jib.235 |
[59] |
Xia Y, Luo H, Wu Z, Zhang W. 2023. Microbial diversity in jiuqu and its fermentation features: saccharification, alcohol fermentation and flavors generation. Applied microbiology and biotechnology 107(1):25−41 doi: 10.1007/s00253-022-12291-5 |
[60] |
Trincone A. 2018. Update on marine carbohydrate hydrolyzing enzymes: biotechnological applications. Molecules 23(4):901 doi: 10.3390/molecules23040901 |
[61] |
Li Z, Chen L, Bai Z, Wang D, Gao L, et al. 2015. Cultivable bacterial diversity and amylase production in two typical light-flavor Daqus of Chinese spirits. Frontiers in Life Science 10:1540 doi: 10.1080/21553769.2015.1041188 |
[62] |
Xia Y, Zhu M, Du Y, Wu Z, Gomi K, et al. 2022. Metaproteomics reveals protein composition of multiple saccharifying enzymes in nongxiangxing Daqu and jiangxiangxing Daqu under different thermophilic temperatures. International Journal of Food Science & Technology 57(8):5102−13 doi: 10.1111/ijfs.15818 |
[63] |
Gou M, Wang H, Yuan H, Zhang W, Tang Y, et al. 2015. Characterization of the microbial community in three types of fermentation starters used for Chinese liquor production. Journal of the Institute of Brewing 121(4):620−27 doi: 10.1002/jib.272 |
[64] |
Wang H, Gu Y, Zhou W, Zhao D, Qiao Z, et al. 2021. Adaptability of a Caproate-Producing Bacterium Contributes to Its Dominance in an Anaerobic Fermentation System. Applied and environmental microbiology 87(20):e0120321 doi: 10.1128/AEM.01203-21 |
[65] |
Liu Y, Fu J, Wang L, Zhao Z, Wang H, et al. 2022. Isolation, identification, and whole-genome sequencing of high-yield protease bacteria from Daqu of ZhangGong Laojiu. PLoS One 17(4):e0264677 doi: 10.1371/journal.pone.0264677 |
[66] |
Zhou M, Bu T, Zheng J, Liu L, Yu S, et al. 2021. Peptides in brewed wines: formation, structure, and function. Journal of Agricultural and Food Chemistry 69(9):2647−57 doi: 10.1021/acs.jafc.1c00452 |
[67] |
Wang F, LI J, Zhao Y, Tang J, Liu Z, et al. 2022. Screening of high-temperature actinomycetes in sauce-flavor Daqu and optimization of protease production conditions. China Brewing 41(8):132−36 doi: 10.11882/j.issn.0254-5071.2022.08.022 |
[68] |
Deng L, Mao X, Liu D, Ning XQ, Shen Y, et al. 2020. Comparative Analysis of Physicochemical Properties and Microbial Composition in High-Temperature Daqu with Different Colors. Frontiers in microbiology 11:588117 doi: 10.3389/fmicb.2020.588117 |
[69] |
Hu Y, Dun Y, Li S, Fu B, Xiong X, et al. 2017. Changes in microbial community during fermentation of high-temperature Daqu used in the production of Chinese ‘Baiyunbian’ liquor. Journal of the Institute of Brewing 123(4):594−99 doi: 10.1002/jib.455 |
[70] |
Pan Q, Huang J, Zhang S, Qin H, Wang X, et al. 2022. Response of microbiota to exogenous inoculation improved the enzymatic activities of medium-temperature Daqu. Frontiers in Microbiology 13:1047041 doi: 10.3389/fmicb.2022.1047041 |
[71] |
Wu X, Jiang Q, Wang Z, Xu Y, Chen W, et al. 2021. Diversity, enzyme production and antibacterial activity of Bacillus strains isolated from sesame-flavored liquor Daqu. Archives of Microbiology 203(9):5831−39 doi: 10.1007/s00203-021-02552-8 |
[72] |
Li Z, Bai Z, Wang D, Zhang W, Zhang M, et al. 2014. Cultivable bacterial diversity and amylase production in three typical Daqus of Chinese spirits. International Journal of Food Science & Technology 49(3):776−86 doi: 10.1111/ijfs.12365 |
[73] |
Wu Q, Ling J, Xu Y. 2014. Starter culture selection for making Chinese Sesame-flavored liquor based on microbial metabolic activity in mixed-culture fermentation. Applied and Environmental Microbiology 80(14):4450−59 doi: 10.1128/AEM.00905-14 |
[74] |
Zhang R, Wu Q, Xu Y. 2013. Aroma characteristics of Moutai-flavour liquor produced with Bacillus licheniformis by solid-state fermentation. Letters in Applied Microbiology 57(1):11−18 doi: 10.1111/lam.12087 |
[75] |
Feng L, Li S, Liu P, Yan F, Zhang X. 2018. Isolation, identification, and application research of neutral protease producing bacteria in Qingxiang Daqu. Food Science and Technology 43(11):1−6 doi: 10.13684/j.cnki.spkj.2018.11.001 |
[76] |
He G, Huang J, Zhou R, Wu C, Jin Y. 2019. Effect of Fortified Daqu on the Microbial Community and Flavor in Chinese Strong-Flavor Liquor Brewing Process. Frontiers in Microbiology 10:56 doi: 10.3389/fmicb.2019.00056 |
[77] |
Yan C, Li Z, Zhang J, Li B, Lin Y. 2020. Optimization of technological conditions for lipase esterification of yellow water in Baijiu. Modern Food Science and Technology 36(1):220−26 doi: 10.13982/j.mfst.1673-9078.2020.1.031 |
[78] |
Fan G, Sun B, Xu D, Teng C, Fu Z, et al. 2018. Isolation and Identification of High-Yield Ethyl Acetate-Producing Yeast from Gujinggong Daqu and Its Fermentation Characteristics. Journal of the American Society of Brewing Chemists 76(2):117−124 doi: 10.1080/03610470.2017.1396849 |
[79] |
Zhao C, Yan X, Yang S, Chen F. 2017. Screening of Bacillus strains from Luzhou-flavor liquor making for high-yield ethyl hexanoate and low-yield propanol. LWT 77:60−66 doi: 10.1016/j.lwt.2016.11.035 |
[80] |
Yang F, Chen L, Liu Y, Li J, Wang L, et al. 2019. Identification of microorganisms producing lactic acid during solid-state fermentation of Maotai flavour liquor. Journal of the Institute of Brewing 125(1):171−77 doi: 10.1002/jib.537 |
[81] |
Wang Y, Cai W, Wang W, Shu N, Zhang Z, et al. 2021. Analysis of microbial diversity and functional differences in different types of high-temperature Daqu. Food Science & Nutrition 9(2):1003−16 doi: 10.1002/fsn3.2068 |
[82] |
Xie M, Lv F, Ma G, Farooq A, Li H, et al. 2020. High throughput sequencing of the bacterial composition and dynamic succession in Daqu for Chinese sesame flavour liquor. Journal of the Institute of Brewing 126(1):98−104 doi: 10.1002/jib.592 |
[83] |
Mu Y, Huang J, Zhou R, Zhang S, Qin H, et al. 2023. Comprehensive analysis for the bioturbation effect of space mutation and biofortification on strong-flavor Daqu by high-throughput sequencing, volatile analysis and metabolomics. Food Chemistry 403:134440 doi: 10.1016/j.foodchem.2022.134440 |
[84] |
Yao C, Li GY, Zhang B, Hao CF, Yang T. 2019. Isolation and identification of thermophilic fungi from moderate/high temperature Daqu and determination of enzyme activity. Liquor-Making Science & Technology 46(5):32−35 doi: 10.3969/j.issn.1002-8110.2019.05.009 |
[85] |
Tian N, Guo X, Wang M, Chen C, Cui H, et al. 2020. Bacterial community diversity of shilixiang baijiu Daqu based on metagenomics. Journal of Food Biochemistry 44(10):e13410 doi: 10.1111/jfbc.13410 |
[86] |
Huang X, Fan Y, Meng J, Sun S, Wang X, et al. 2021. Laboratory-scale fermentation and multidimensional screening of lactic acid bacteria from Daqu. Food Bioscience 40:100853 doi: 10.1016/j.fbio.2020.100853 |
[87] |
Wang B, Wu Q, Xu Y, Sun B. 2020. Synergistic Effect of Multiple Saccharifying Enzymes on Alcoholic Fermentation for Chinese Baijiu Production. Applied and Environmental Microbiology 86(8):e00013-20 doi: 10.1128/AEM.00013-20 |
[88] |
Huang Y, Li D, Mu Y, Zhu Z, Wu Y, et al. 2024. Exploring the heterogeneity of community and function and correspondence of "species-enzymes" among three types of Daqu with different fermentation peak-temperature via high-throughput sequencing and metagenomics. Food Research International 176:113805 doi: 10.1016/j.foodres.2023.113805 |
[89] |
He M, Jin Y, Liu M, Yang G, Zhou R, et al. 2023. Metaproteomic investigation of enzyme profile in Daqu used for the production of Nongxiangxing baijiu. International Journal of Food Microbiology 400:110250 doi: 10.1016/j.ijfoodmicro.2023.110250 |
[90] |
Yv WM, Zeng Z, Wu SW, Zhang ZM. 2012. Influence of Monascus on flavor and style substances of special flavor Baijiu. China Brewing 31(3):87−91 doi: 10.3969/j.issn.0254-5071.2012.03.024 |
[91] |
Cui XX, Bai FR, Yu XJ, Bai XB, Xu L, et al. 2019. Aroma characteristics of Eurotium chevalieri CICC 41584 and its application in aroma Baijiu Daqu production. Food and Fermentation Industries 45(21):60−67 doi: 10.13995/j.cnki.11-1802/ts.021012 |
[92] |
Luo HB, Yang XD, Yang YH, Ye GB, Li DY. 2013. Isolation, identification and phylogenetic analysis of culturable fungi in Luzhouflavor Daqu. Modern Food Science and Technology 29(9):2047−52 |
[93] |
Xu Y, Huang H, Lu H, Wu M, Lin M, et al. 2022. Characterization of an aspergillus niger for efficient fatty acid ethyl ester synthesis in aqueous phase and the molecular mechanism. Frontiers in Microbiology 12:820380 doi: 10.3389/fmicb.2021.820380 |
[94] |
Yang JG, Dou X, Han PJ, Bai FY, Zhou J, et al. 2017. Microbial diversity in Daqu during production of Luzhou flavored liquor. Journal of the American Society of Brewing Chemists 75(2):136−44 doi: 10.1094/asbcj-2017-2879-01 |
[95] |
Yi Z, Chen L, Jin Y, Shen Y, Liu N, et al. 2023. Insight into broad substrate specificity and synergistic contribution of a fungal α-glucosidase in Chinese Nong-flavor Daqu. Microbial Cell Factories 22(1):114 doi: 10.1186/s12934-023-02124-z |
[96] |
Zhao QS, Yang JG, Zhang KZ, Wang MY, Zhao XX, et al. 2020. Lactic acid bacteria in the brewing of traditional Daqu liquor. Journal of the Institute of Brewing 126(1):14−23 doi: 10.1002/jib.593 |
[97] |
Yang Y, Wang ST, Lu ZM, Zhang XJ, Chai LJ, et al. 2021. Metagenomics unveils microbial roles involved in metabolic network of flavor development in medium-temperature Daqu starter. Food Research International 140:110037 doi: 10.1016/j.foodres.2020.110037 |
[98] |
Chi Z, Chi Z, Liu G, Wang F, Ju L, et al. 2009. Saccharomycopsis fibuligera and its applications in biotechnology. Biotechnology Advances 27(4):423−31 doi: 10.1016/j.biotechadv.2009.03.003 |
[99] |
Sun SJ, Zhai L, Xv L, Yv PP, Bai XS, et al. 2018. Application of Saccharomyces cingulata CICC 33077 in the production of high-temperature Daqu for sesame flavor Baijiu. Liquor-Making Science & Technology 2018(7):76−82 doi: 10.13746/j.njkj.2018160 |
[100] |
Wang ZM, Wang CT, Shen CH, Wang ST, Mao JQ, et al. 2020. Microbiota stratification and succession of amylase-producing Bacillus in traditional Chinese Jiuqu (fermentation starters). Journal of the Science of Food and Agriculture 100(8):3544−53 doi: 10.1002/jsfa.10405 |
[101] |
Liu P, Xiong X, Wang S, Miao L. 2017. Population dynamics and metabolite analysis of yeasts involved in a Chinese miscellaneous-flavor liquor fermentation. Annals of microbiology 67(8):553−65 doi: 10.1007/s13213-017-1286-y |
[102] |
Zhang J, Hou Y, Liu Q, Zhang Y, Gao B, et al. 2023. Fortified Jiuqu of the Chinese Baijiu: A review on its functional microorganisms, strengthening effects, current challenges, and perspectives. Food bioscience 55:103045 doi: 10.1016/j.fbio.2023.103045 |
[103] |
Li P, Lin W, Liu X, Wang X, Luo L. 2016. Environmental factors affecting microbiota dynamics during traditional solid-state fermentation of Chinese Daqu Starter. Frontiers in Microbiology 7:1237 doi: 10.3389/fmicb.2016.01237 |
[104] |
Wang HY, Gao YB, Fan QW, Xu Y. 2011. Characterization and comparison of microbial community of different typical Chinese liquor Daqus by PCR – DGGE. Letters in applied microbiology 53(2):134−40 doi: 10.1111/j.1472-765X.2011.03076.x |
[105] |
Yan S, Tong Q, Guang J. 2019. Yeast dynamics and changes in volatile compounds during the fermentation of the traditional Chinese strong-flavor Daqu. LWT 106:57−63 doi: 10.1016/j.lwt.2019.02.058 |
[106] |
Wang P, Wu Q, Jiang X, Wang Z, Tang J, et al. 2017. Bacillus licheniformis affects the microbial community and metabolic profile in the spontaneous fermentation of Daqu starter for Chinese liquor making. International Journal of Food Microbiology 250:59−67 doi: 10.1016/j.ijfoodmicro.2017.03.010 |
[107] |
Yang Y, Zou Y, Zeng K, Chen D, Li Z, et al. 2022. Effect of Bacillus subtilis fortified inoculation on the microbial communities in different niches of Daqu. Journal of Bioscience and Bioengineering 134(5):407−15 doi: 10.1016/j.jbiosc.2022.07.017 |
[108] |
He G, Dong Y, Huang J, Wang X, Zhang S, et al. 2019. Alteration of microbial community for improving flavor character of Daqu by inoculation with Bacillus velezensis and Bacillus subtilis. LWT 111:1−8 doi: 10.1016/j.lwt.2019.04.098 |
[109] |
Chen X, Huang X, Sun S, Han B. 2023. Effect of Fortified Inoculation with Indigenous Lactobacillus brevis on Solid-State Fermentation of Light-Flavor Baijiu. Foods 12(23):4198 doi: 10.3390/foods12234198 |
[110] |
Li W, Fan G, Fu Z, Wang W, Xu Y, et al. 2020. Effects of fortification of Daqu with various yeasts on microbial community structure and flavor metabolism. Food Research International 129:108837 doi: 10.1016/j.foodres.2019.108837 |
[111] |
Zhu Y, Liu S, Ma D, Xu Y, Yang C, et al. 2023. Stabilization of jiuyao quality for huangjiu brewing by fortifying functional strains based on core microbial community analysis. Food Bioscience 52:102370 doi: 10.1016/j.fbio.2023.102370 |
[112] |
Li P, Lin W, Liu X, Wang X, Gan X, et al. 2017. Effect of bioaugmented inoculation on microbiota dynamics during solid-state fermentation of Daqu starter using autochthonous of Bacillus, Pediococcus, Wickerhamomyces and Saccharomycopsis. Food Microbiology 61:83−92 doi: 10.1016/j.fm.2016.09.004 |
[113] |
Song J, Tang H, Liang H, Luo L, Lin W. 2019. Effect of bioaugmentation on biochemical characterisation and microbial communities in Daqu using Bacillus, Saccharomycopsis and Absidia. International Journal of Food Science & Technology 54(8):2639−51 doi: 10.1111/ijfs.14176 |
[114] |
Guan T, Wu X, Hou R, Tian L, Huang Q, et al. 2023. Application of Clostridium butyricum, Rummeliibacillus suwonensis, and Issatchenkia orientalis for Nongxiangxing baijiu fermentation: Improves the microbial communities and flavor of upper fermented grain. Food Research International 169:112885 doi: 10.1016/j.foodres.2023.112885 |
[115] |
Fu G, Cai W, Dong B, Wan Y, Pan F, et al. 2023. Effects of bio-augmented Daqu on microbial community, aroma compounds and physicochemical parameters of fermented grains during the brewing of Chinese special-flavor baijiu. Journal of the Science of Food and Agriculture 103(1):273−82 doi: 10.1002/jsfa.12139 |