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动物源性病原体的抗菌药物耐药性风险评估模型与数据库系统

Antimicrobial Resistance Risk Assessment Models and Database System for Animal-Derived Pathogens.

作者信息

Li Xinxing, Liang Buwen, Xu Ding, Wu Congming, Li Jianping, Zheng Yongjun

机构信息

Beijing Advanced Innovation Center for Food Nutrition and Human Health, College of Information and Electrical Engineering, China Agricultural University, Beijing 100083, China.

Beijing Advanced Innovation Center for Food Nutrition and Human Health, College of Engineering, China Agricultural University, Beijing 100083, China.

出版信息

Antibiotics (Basel). 2020 Nov 19;9(11):829. doi: 10.3390/antibiotics9110829.

Abstract

(1) Background: The high use of antibiotics has made the issue of antimicrobial resistance (AMR) increasingly serious, which poses a substantial threat to the health of animals and humans. However, there remains a certain gap in the AMR system and risk assessment models between China and the advanced world level. Therefore, this paper aims to provide advanced means for the monitoring of antibiotic use and AMR data, and take piglets as an example to evaluate the risk and highlight the seriousness of AMR in China. (2) Methods: Based on the principal component analysis method, a drug resistance index model of anti- drugs was established to evaluate the antibiotic risk status in China. Additionally, based on the second-order Monte Carlo methods, a disease risk assessment model for piglets was established to predict the probability of disease within 30 days of taking florfenicol. Finally, a browser/server architecture-based visualization database system for animal-derived pathogens was developed. (3) Results: The risk of in the main area was assessed and Hohhot was the highest risk area in China. Compared with the true disease risk probability of 4.1%, the result of the disease risk assessment model is 7.174%, and the absolute error was 3.074%. Conclusions: Taking as an example, this paper provides an innovative method for rapid and accurate risk assessment of drug resistance. Additionally, the established system and assessment models have potential value for the monitoring and evaluating AMR, highlight the seriousness of antimicrobial resistance, advocate the prudent use of antibiotics, and ensure the safety of animal-derived foods and human health.

摘要

(1) 背景:抗生素的大量使用使得抗菌药物耐药性(AMR)问题日益严重,这对动物和人类健康构成了重大威胁。然而,中国在AMR体系和风险评估模型方面与世界先进水平仍存在一定差距。因此,本文旨在提供监测抗生素使用和AMR数据的先进手段,并以仔猪为例评估风险,凸显中国AMR的严重性。(2) 方法:基于主成分分析方法,建立了抗药耐药指数模型以评估中国的抗生素风险状况。此外,基于二阶蒙特卡罗方法,建立了仔猪疾病风险评估模型,以预测服用氟苯尼考后30天内发病的概率。最后,开发了基于浏览器/服务器架构的动物源性病原体可视化数据库系统。(3) 结果:评估了主要地区的风险,呼和浩特是中国风险最高的地区。与真实疾病风险概率4.1%相比,疾病风险评估模型的结果为7.174%,绝对误差为3.074%。结论:以……为例,本文提供了一种快速准确评估耐药性风险的创新方法。此外,所建立的系统和评估模型对AMR的监测和评估具有潜在价值,凸显了抗菌药物耐药性的严重性,倡导谨慎使用抗生素,确保动物源食品的安全和人类健康。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/519e/7699434/93c3e2bdedb2/antibiotics-09-00829-g001.jpg

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