Effect of storage time on the fermentation quality, bacterial community structure and metabolic profiles of napiergrass (Pennisetum purpureum Schum.) silage

被引:0
作者
Siran Wang
Junfeng Li
Jie Zhao
Zhihao Dong
Tao Shao
机构
[1] Nanjing Agricultural University,Institute of Ensiling and Processing of Grass, College of Agro
来源
Archives of Microbiology | 2022年 / 204卷
关键词
Bacterial community structure; Fermentation characteristics; Napiergrass; Predicted metabolic pathways; Silage;
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学科分类号
摘要
This study was aimed to investigate the effect of storage time on fermentation characteristics, bacterial community structure and predicted metabolic pathways of napiergrass (Pennisetum purpureum Schum.) silage. First-cutting napiergrass was harvested at the vegetative stage and ensiled in laboratory-scale silos (1 L capacity). Triplicate silos were sampled after 1, 3, 7, 15, 30 and 60 days of ensiling, respectively. The bacterial communities on day 3 and 60 were assessed through the high throughput sequencing technology, and metabolic pathways of bacterial community were predicted according to the Kyoto Encyclopedia of Genes and Genomes (KEGG) via Tax4Fun. Napiergrass silage exhibited an acetic acid-type fermentation, indicated by lower lactic acid contents and ratio of lactic acid to acetic acid, and higher pH, ethanol and acetic acid contents. Before ensiling, the predominant genera in fresh napiergrass mainly included Acinetobacter, Enterobacteriaceae, Enterobacter and Lactococcus. After 60 days of ensiling, high proportions of Enterobacteriaceae, Enterobacter and Lactobacillus were found in napiergrass silages. The metabolism of amino acid, energy, cofactors and vitamins were inhibited, whereas metabolism of nucleotide and carbohydrate were promoted during ensiling. Overall, the combination of high throughput sequencing technology and 16S rRNA gene-predicted functional analyses revealed the differences during the initial and late stages of napiergrass silages not only for distinct bacterial community but also for specific functional metabolites. It could provide a comprehensive insight into bacterial community and functional profiles to further improve the silage quality.
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[1]  
Bai J(2021)Different lactic acid bacteria and their combinations regulated the fermentation process of ensiled alfalfa: ensiling characteristics, dynamics of bacterial community and their functional shifts Microb Biotechnol 14 1171-1182
[2]  
Ding Z(2010)Conversion of oxidative energy to reductive power in the citrate cycle Biochem Mol Biol Edu 19 24-26
[3]  
Ke W(1980)Automated simultaneous determination of ammonia and total amino acids in ruminal fluid and in vitro media J Dairy Sci 63 64-75
[4]  
Xu D(2011)Effect of lactic acid bacteria inoculant and beet pulp addition on fermentation characteristics and in vitro ruminal digestion of vegetable residue silage J Dairy Sci 94 3902-3912
[5]  
Wang M(2020)Chemical composition, fermentative characteristics, and in situ ruminal degradability of elephant grass silage containing Trop Anim Health pro 52 3481-3492
[6]  
Huang W(2007) pod meal and urea J Microbiol Meth 69 137-145
[7]  
Zhang Y(2003)Evaluation of Appl Environ Microbiol 69 562-567
[8]  
Liu F(2021) MLVA typing for human brucellosis Anim Feed Sci Technol 275 114766-2211
[9]  
Guo X(2021)Acetic acid increases stability of silage under aerobic conditions J Appl Microbiol 131 2193-1676
[10]  
Banfalvi G(2017)Exploring microbial community structure and metabolic gene clusters during silage fermentation of paper mulberry, a high-protein woody plant Microb Biotechnol 10 1663-290