Xu Fengru, Tang Mengmeng, Yang Zhihao, Liao Chengshui, Yu Zuhua, Guo Rongxian, Shang Ke, Chen Songbiao, Yang Ke, Li Jing, Ding Ke, Jia Yanyan
College of Animal Science and Technology/Laboratory of Functional Microbiology and Animal Health, Henan University of Science and Technology, Luoyang, China.
Luoyang Key Laboratory of Live Carrier Biomaterial and Animal Disease Prevention and Control, Luoyang, China.
Front Microbiol. 2024 Dec 18;15:1497860. doi: 10.3389/fmicb.2024.1497860. eCollection 2024.
Ochratoxin A (OTA) is a significant global contaminant that poses severe challenges to food safety and public health. This study aims to isolate the OTA-degrated probiotics and evaluate genetic and biological characteristic. Here, The degradation rate of a new strain named MM35 isolated from soil was the highest (87.10% within 48 h), and its culture supernatant was the main component of OTA degradation (63.95%) by high performance liquid chromatography. Further investigation revealed that the extracellular enzyme that degrades OTA in the culture supernatant of MM35 may be a small molecule enzyme with certain heat resistance. Genome-wide analysis showed that MM35 contains a cluster of carboxypeptidases encoding OTA-degrading potential, and had good metabolic and catalytic synthesis ability, and strong application potential in the synthesis and degradation of carbohydrates and proteins. A variety of secondary metabolites with antibacterial properties, such as non-ribosomal peptide synthetase and terpenoids, were identified in its metabolites. Consistent with the predicted results, MM35 showed various enzyme production characteristics such as cellulase and xylanase. Furthermore, MM35 could inhibit the growth of a variety of pathogenic bacteria, and showed high co-aggregation ability to and . In addition, MM35 has certain tolerance to harsh environments such as strong acid, bile salt, and high temperature. Additionally, the adhesion rate of MM35 was 5.4%, and the invasion rate was 2.1% in IPEC-J2 cells. In summary, the data suggest MM35 isolated strain has high OTA degradation efficiency, antibacterial activity and intestinal colonization, which provided a new way for the treatment of OTA contamination in food and feed industries.
赭曲霉毒素A(OTA)是一种严重的全球性污染物,对食品安全和公众健康构成严峻挑战。本研究旨在分离OTA降解益生菌并评估其遗传和生物学特性。在此,从土壤中分离出的新菌株MM35的降解率最高(48小时内为87.10%),通过高效液相色谱法测定其培养上清液是OTA降解的主要成分(63.95%)。进一步研究表明,MM35培养上清液中降解OTA的胞外酶可能是一种具有一定耐热性的小分子酶。全基因组分析表明,MM35含有一组编码OTA降解潜力的羧肽酶,具有良好的代谢和催化合成能力,在碳水化合物和蛋白质的合成与降解方面具有很强的应用潜力。在其代谢产物中鉴定出多种具有抗菌特性的次生代谢产物,如非核糖体肽合成酶和萜类化合物。与预测结果一致,MM35表现出多种产酶特性,如纤维素酶和木聚糖酶。此外,MM35能够抑制多种病原菌的生长,并对[具体细菌1]和[具体细菌2]表现出高共聚集能力。此外,MM35对强酸、胆盐和高温等恶劣环境具有一定的耐受性。另外,MM35在IPEC-J2细胞中的黏附率为5.4%,侵袭率为2.1%。综上所述,数据表明分离出的MM35菌株具有高OTA降解效率、抗菌活性和肠道定植能力,为食品和饲料行业中OTA污染的治理提供了新途径。