茅台镇8家酒企高温大曲的群落结构及其空间特征
Community structure and spatial characteristics of high-temperature Daqu in eight Baijiu companies in Maotai town
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摘要: 利用高通量测序技术分析茅台镇8家酒企高温大曲的真菌和细菌群落结构,同时测定其理化指标,结合二者进行冗余分析(RDA);采用固相微萃取技术解析高温大曲主要挥发性成分,并进行主成分分析(PCA)以探究茅台镇高温大曲的空间特征。结果表明:茅台镇8家酒企高温大曲中的细菌数量均较多、真菌数量均较少,主要真菌门是子囊菌门(Ascomycota)、毛霉菌门(Mucoromycota)和担子菌门(Basidiomycota),主要细菌门是厚壁菌门(Firmicutes)和放线菌门(Actinobacteriota);取自距离镇中心较近的酒企的高温大曲,其多项理化指标更高且物种多样性更丰富;8家酒企高温大曲在理化性质上表现出差异性,且理化性质与其微生物群落之间存在一定的相关性,但均不具有显著性(P>0.05);8家酒企高温大曲不能在茅台镇小尺度范围内或以距离茅台镇中心距离的远近进行较好的聚类,且8家酒企高温大曲挥发性成分存在一定的差异。Abstract: Next-generation sequencing technology was used to analyze the fungal and bacterial community structure of high-temperature Daqu from eight Baijiu companies in Maotai town, and their physicochemical indexes were measured, the two were combined for redundancy analysis (RDA). Solid-phase microextraction was used to analyze the main flavor components of high-temperature Daqu and principal component analysis (PCA) was carried out to explore the spatial characteristics of high-temperature Daqu in Maotai town. The results showed that the bacterial content was relatively high and the fungal content was relatively low from eight Baijiu companies in Maotai town. Ascomycota, Mucoromycota, and Basidiomycota were the main fungal phyla, while Firmicutes and Actinobacteria were the main bacterial phyla. The high-temperature Daqu produced by companies located closer to the center of Maotai town had higher physicochemical indexes, and richer species diversity. There were differences in the physicochemical properties of high-temperature Daqu among eight Baijiu companies. And there was a certain correlation between the physicochemical properties of high-temperature Daqu and its microbial community, but not significant (P>0.05). The high-temperature Daqu from eight Baijiu companies could not be well clustered within the small-scale range of Maotai town or at a distance from the center of Maotai town. And there were certain differences in the volatile components of high-temperature Daqu from wight Baijiu companies.
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-
[1]
刘茗铭,赵金松,边名鸿,等.高温大曲中微生物的研究进展[J].酿酒,2021,48(5):8-11.
-
[2]
沈毅,陈波,张亚东,等.影响高温大曲质量的关键控制点[J].酿酒科技,2019(8):17-21.
-
[3]
王晓丹,班世栋,周鸿翔,等.贵州省遵义地区3个酱香型大曲细菌群落的比较分析[J].食品科学,2016,37(7):110-116.
-
[4]
王颖,邱勇,王隆,等.不同产区酱香型高温大曲黑、白、黄曲的理化、挥发性成分差异性分析[J].中国调味品,2022,47(6):155-159.
-
[5]
侯强川,王玉荣,王文平,等.茅台和尧治河高温大曲细菌群落结构差异及功能预测[J].食品与发酵工业,2022,48(1):36-44.
-
[6]
周晨曦,郑福平,李贺贺,等.白酒大曲风味物质研究进展[J].中国酿造,2019,38(5):6-12.
-
[7]
吴树坤,谢军,程铁辕,等.不同地区浓香型大曲质量指标与细菌群落相关性研究[J].食品研究与开发,2019,40(4):158-164.
-
[8]
中华人民共和国工业和信息化部.酿酒大曲通用分析方法:QB/T 4257—2011[S].北京:中国标准出版社,2011.
-
[9]
中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会.蛋白酶制剂:GB/T 23527—2009[S].北京:中国标准出版社,2009.
-
[10]
CAPORASO J G,KUCZYNSKI J,STOMNAUGH J,et al.QIIME allows analysis of high-throughput community sequencing data[J].Nature Methods,2010,7(5):335-336.
-
[11]
ZHANG J J,KASSIAN K,FLOVRI T,et al.PEAR:A fast and accurate Illumina Paired-End reAd mergeR[J].Bioinformatics,2014,30(5):614-620.
-
[12]
ROGNES T,FLOURI T,NICHOLS B,et al.VSEARCH:A versatile open source tool for metagenomics[J].Peerj,2016,4:e2584.
-
[13]
EDGAR R C.Search and clustering orders of magnitude faster than BLAST[J].Bioinformatics,2010,26(19):2460-2461.
-
[14]
EDGAR R C,HAAS B J, CLEMENTE J C, et al.UCHIME improves sensitivity and speed of chimera detection[J].Bioinformatics,2011,27(16):2194-2200.
-
[15]
GINESTET C.Ggplot2:Elegant graphics for data analysis[J].Journal of the Royal Satistical Society Series A,2011,174:245.
-
[16]
OKSANEN J,KINDT R,LEGENDRE P,et al.The VEGAN package:Community ecology package[J].Research Gate,2007,10:631-637.
-
[17]
唐玉明,沈才洪,任道群,等.酒曲理化品质指标相关性探讨[J].酿酒科技,2006(7):37-41.
-
[18]
向港兴,陈莹琪,沈毅,等.不同等级浓香型大曲的微生物群落结构与理化性质的比较分析[J].食品科学,2022,43(18):184-191.
-
[19]
炊伟强,敖宗华,张春林,等.泸州老窖大曲感官特征与微生物、理化指标和生化性能的关联研究[J].食品与生物技术学报, 2011,30(5):761-766.
-
[20]
张清玫,赵鑫锐,李江华,等.不同香型白酒大曲微生物群落及其与风味的相关性[J].食品与发酵工业,2022,48(10):1-8.
-
[21]
陈玲,袁玉菊,曾丽云,等.16S rDNA克隆文库法与高通量测序法在浓香型大曲微生物群落结构分析中的对比研究[J].酿酒科技,2015,258(12):33-36
,40. -
[22]
付绍鸿,赵荣寿,杨柳,等.高温大曲发酵过程中微生物多样性研究[J].酿酒科技,2019,297(3):76-79.
-
[23]
朱治宇,黄永光.基于高通量测序对茅台镇酱香白酒主酿区霉菌菌群结构多样性的解析[J].食品科学,2021, 42(8): 150-156.
-
[24]
CHEN W P,HE Y,ZHOU Y X,et al.Edible filamentous fungi from the species monascus:Early traditional fermentations, modern molecular biology,and future genomics[J].Comprehensive Reviews in Food Science and Food Safety,2015,14(5):555-567.
-
[25]
PANG X N,HUANG X N,CHEN J Y,et al.Exploring the diversity and role of microbiota during material pretreatment of light-flavor Baijiu[J].Food Microbiology,2020,91:103514.
-
[26]
郑亚伦,赵婷,王家胜,等.数字化高温大曲发酵过程中微生物群落结构的变化[J].食品科学,2022,43(12):171-178.
-
[27]
姚灿,张倩,张霞,等.古顺大曲微生物群落结构的分析[J].酿酒科技,2020,307(1):20-23.
-
[28]
WANG Y R,CAI W C,WANG W P,et al.Analysis of microbial diversity and functional differences in different types of high-temperature Daqu[J].Food Science & Nutrition,2021,9(2):1003-1016.
-
[29]
范文来,徐岩.酱香型白酒中呈酱香物质研究的回顾与展望[J].酿酒,2012,39(3):8-16.
-
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