Microbiome-metabolomics analysis reveals abatement effects of itaconic acid on odorous compound production in Arbor Acre broilers

衣康酸 代谢组学 生物 英亩 微生物群 生物技术 化学 农学 生物信息学 有机化学 共聚物 聚合物
作者
Xin Zhu,Yinhang Zhang,Haiying Liu,Guiqin Yang,Lin Li
出处
期刊:BMC Microbiology [BioMed Central]
卷期号:23 (1): 183-183 被引量:7
标识
DOI:10.1186/s12866-023-02914-w
摘要

Abstract Background Public complaints concerning odor emissions from intensive livestock and poultry farms continue to grow, as nauseous odorous compounds have adverse impacts on the environment and human health. Itaconic acid is a metabolite from the citric acid cycle of the host and shows volatile odor-reducing effects during animal production operations. However, the specific role of itaconic acid in decreasing intestinal odorous compound production remains unclear. A total of 360 one-day-old chicks were randomly divided into 6 treatment groups: control group (basal diet) and itaconic acid groups (basal diet + 2, 4, 6, 8 and 10 g/kg itaconic acid). The feeding experiment lasted for 42 d. Results Dietary itaconic acid supplementation linearly and quadratically decreased ( P < 0.05) the cecal concentrations of indole and skatole but did not affect ( P > 0.05) those of lactic, acetic, propionic and butyric acids. The cecal microbial shift was significant in response to 6 g/kg itaconic acid supplementation, in that the abundances of Firmicutes, Ruminococcus and Clostridium were increased ( P < 0.05), while those of Bacteroidetes, Escherichia-Shigella and Bacteroides were decreased ( P < 0.05), indicative of increased microbial richness and diversity. Furthermore, a total of 35 significantly ( P < 0.05) modified metabolites were obtained by metabolomic analysis. Itaconic acid decreased ( P < 0.05) the levels of nicotinic acid, nicotinamide, glucose-6-phosphate, fumatic acid and malic acid and increased ( P < 0.05) 5-methoxytroptomine, dodecanoic acid and stearic acid, which are connected with the glycolytic pathway, citrate acid cycle and tryptophan metabolism. Correlation analysis indicated significant correlations between the altered cecal microbiota and metabolites; Firmicutes, Ruminococcus and Clostridium were shown to be negatively correlated with indole and skatole production, while Bacteroidetes, Escherichia-Shigella and Bacteroides were positively correlated with indole and skatole production. Conclusions Itaconic acid decreased cecal indole and skatole levels and altered the microbiome and metabolome in favor of odorous compound reduction. These findings provide new insight into the role of itaconic acid and expand its application potential in broilers.
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