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利用 shotgun 测序描述饲粮氧化锌和安普霉素对断奶后一周仔猪肠道微生物组的影响。

Using Shotgun Sequencing to Describe the Changes Induced by In-Feed Zinc Oxide and Apramycin in the Microbiomes of Pigs One Week Postweaning.

机构信息

Pig Development Department, Teagasc Grassland Research and Innovation Centre, Moorepark, Fermoy, County Cork, Ireland.

Grupo de Genómica y Mejora Animal, Departamento de Genética, Facultad de Veterinaria, Universidad de Córdoba, Córdoba, Spain.

出版信息

Microbiol Spectr. 2022 Aug 31;10(4):e0159722. doi: 10.1128/spectrum.01597-22. Epub 2022 Aug 11.

Abstract

Postweaning diarrhea (PWD) is a relevant problem associated with early weaning on pig farms. For decades, in-feed antibiotics and therapeutic zinc oxide (ZnO) have been widely used to prevent PWD in piglets. The European Union is banning both strategies in 2022 due to antimicrobial resistance and environmental contamination concerns, respectively. Understanding the effects of these products on the pig microbiome is crucial for correcting potential microbial disbalances that would prompt PWD. Using shotgun sequencing, three trials were carried out to explore the impact of in-feed apramycin and ZnO, combined with different farm hygiene protocols, on the fecal microbiomes of piglets 7 days postweaning. In trial 1, 28-day-old piglets were allocated to one of three groups: control diet (Ct), Ct + ZnO (Zn), and Ct + apramycin (Ab). In trials 2 and 3, piglets were allocated to the same treatments, but the trials also included different cleaning protocols, achieving different hygiene levels. In-feed treatments impacted the richness, diversity, and relative abundance of the piglets' microbiome more than hygiene. Pigs in the Ct group showed higher species richness than pigs in the Ab and Zn groups. A clustering analysis evidenced a link between in the Ct group; and mainly in the Ct group; and , , , , and in the Ab and Zn groups. Functional data analysis revealed a higher abundance of virulence genes in the Ct group microbiomes and heavy metal and antimicrobial resistance-related functions in the Zn treatment group. The results demonstrate that alternatives to Ab and ZnO should balance the microbial abundance and stimulate the growth of commensals to outcompete potential pathogens. Weaning is a critical period for piglets, during which potentially harmful bacteria such as Escherichia coli can increase in abundance in the intestine, creating digestive problems and diarrhea. In-feed antibiotics, the most frequent administration route for antibiotics in livestock, and therapeutic doses of zinc oxide (ZnO) help to control diarrhea but prompt secondary problems such as antimicrobial resistance and soil pollution from heavy metals. Understanding how these strategies impact the gut microbiota is crucial for establishing health biomarkers and designing successful replacement strategies. Using shotgun sequencing, this study compares the microbiota of pigs after early weaning when treated with in-feed antibiotics, ZnO, or treatment-free diets to describe differences that could define the susceptibility to infections, providing the basis for future research on improving intestinal resilience through microbiota-based strategies.

摘要

断奶后腹泻(PWD)是与养猪场早期断奶相关的一个问题。几十年来,饲料中添加抗生素和治疗性氧化锌(ZnO)一直被广泛用于预防仔猪 PWD。由于抗微生物药物耐药性和环境污染问题,欧盟分别在 2022 年禁止了这两种策略。了解这些产品对猪微生物组的影响对于纠正可能导致 PWD 的潜在微生物失衡至关重要。本研究使用鸟枪法测序,共进行了三项试验,以研究饲料中添加安普霉素和 ZnO 结合不同农场卫生协议对断奶后 7 天仔猪粪便微生物组的影响。在试验 1 中,将 28 日龄仔猪分配到三个组之一:对照组(Ct)、Ct+ZnO(Zn)和 Ct+安普霉素(Ab)。在试验 2 和 3 中,仔猪也被分配到相同的处理组,但试验还包括不同的清洁方案,以达到不同的卫生水平。与卫生相比,饲料处理对仔猪微生物组的丰富度、多样性和相对丰度的影响更大。Ct 组的猪比 Ab 和 Zn 组的猪具有更高的物种丰富度。聚类分析表明,Ct 组的仔猪之间存在关联;主要在 Ct 组;而在 Ab 和 Zn 组中, 、 、 、 、 和 。功能数据分析表明,Ct 组微生物组中毒力基因的丰度更高,Zn 处理组中重金属和抗微生物药物耐药性相关功能的丰度更高。结果表明,替代 Ab 和 ZnO 的方法应平衡微生物丰度并刺激共生体的生长,以抑制潜在的病原体。 断奶是仔猪的一个关键时期,在此期间,大肠杆菌等潜在有害细菌可能在肠道中大量增加,导致消化问题和腹泻。饲料中添加抗生素是畜牧业中最常见的抗生素给药途径,以及治疗剂量的氧化锌(ZnO)有助于控制腹泻,但会引发抗微生物药物耐药性和重金属污染等继发性问题。了解这些策略如何影响肠道微生物组对于建立健康生物标志物和设计成功的替代策略至关重要。本研究使用鸟枪法测序,比较了早期断奶时用饲料中添加抗生素、ZnO 或无处理饮食治疗的仔猪的微生物组,以描述可能定义易感性的差异,为通过微生物组策略提高肠道抵抗力的未来研究提供基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad61/9431492/cd2262b89ce3/spectrum.01597-22-f001.jpg

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