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The food safety perspective of antibiotic resistance.

机译:食品安全性对抗生素耐药性的观点。

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Bacterial antimicrobial resistance in both the medical and agricultural fields has become a serious problem worldwide. Antibiotic resistant strains of bacteria are an increasing threat to animal and human health, with resistance mechanisms having been identified and described for all known antimicrobials currently available for clinical use. There is currently increased public and scientific interest regarding the administration of therapeutic and sub-therapeutic antimicrobials to animals, due primarily to the emergence and dissemination of multiple antibiotic resistant zoonotic bacterial pathogens. This issue has been the subject of heated debates for many years, however, there is still no complete consensus on the significance of antimicrobial use in animals, or resistance in bacterial isolates from animals, on the development and dissemination of antibiotic resistance among human bacterial pathogens. In fact, the debate regarding antimicrobial use in animals and subsequent human health implications has been going on for over 30 years, beginning with the release of the Swann report in the United Kingdom. The latest report released by the National Research Council (1998) confirmed that there were substantial information gaps that contribute tothe difficulty of assessing potential detrimental effects of antimicrobials in food animals on human health. Regardless of the controversy, bacterial pathogens of animal and human origin are becoming increasingly resistant to most frontline antimicrobials, including expanded-spectrum cephalosporins, aminoglycosides, and even fluoroquinolones. The lion's share of these antimicrobial resistant phenotypes is gained from extra-chromosomal genes that may impart resistance to an entire antimicrobial class. Inrecent years, a number of these resistance genes have been associated with large, transferable, extra-chromosomal DNA elements, called plasmids, on which may be other DNA mobile elements, such as transposons and integrons. These DNA mobile elements havebeen shown to transmit genetic determinants for several different antimicrobial resistance mechanisms and may account for the rapid dissemination of resistance genes among different bacteria. The increasing incidence of antimicrobial resistant bacterialpathogens has severe implications for the future treatment and prevention of infectious diseases in both animals and humans. Although much scientific information is available on this subject, many aspects of the development of antimicrobial resistance still remain uncertain. The emergence and dissemination of bacterial antimicrobial resistance is the result of numerous complex interactions among antimicrobials, microorganisms, and the surrounding environments. Although research has linked the use of antibiotics in agriculture to the emergence of antibiotic-resistant foodborne pathogens, debate still continues whether this role is significant enough to merit further regulation or restriction.
机译:在医学和农业领域,细菌的抗药性已成为世界范围内的严重问题。细菌的抗生素抗性菌株对动物和人类健康的威胁日益增加,已经确定并描述了目前可用于临床的所有已知抗药性的耐药机制。当前,关于对动物施用治疗性和亚治疗性抗微生物剂的公众和科学兴趣日益增加,这主要是由于多种抗药性的人畜共患细菌病原体的出现和传播。多年来,这个问题一直是激烈辩论的主题,但是,关于在动物中使用抗菌素或从动物中分离出细菌的耐药性对人类细菌病原体发展和传播抗生素耐药性的重要性仍未达成完全共识。 。实际上,关于抗菌素在动物中的使用及其对人类健康的影响的辩论已经持续了30多年,从在英国发布Swann报告开始。国家研究委员会(National Research Council,1998)发布的最新报告证实,存在巨大的信息空白,导致难以评估食用动物中抗生素对人体健康的潜在有害影响。无论争议如何,动物和人类起源的细菌性病原体对大多数一线抗菌剂(包括广谱头孢菌素,氨基糖苷类,甚至是氟喹诺酮类)的耐药性都越来越高。这些抗微生物耐药性表型的最大份额来自染色体外基因,这些基因可能对整个抗菌素类产生耐药性。近几年来,许多这些抗性基因与大型的,可转移的染色体外DNA元件(称为质粒)相关,在其上可能是其他DNA移动元件,如转座子和整合子。这些DNA可移动元件已显示出传递几种不同抗药性耐药机制的遗传决定因素,并可能解释了耐药基因在不同细菌之间的快速传播。抗菌素耐药细菌病原体的发病率不断上升,对动物和人类感染性疾病的未来治疗和预防产生了严重影响。尽管有许多关于该主题的科学信息,但是抗菌素耐药性发展的许多方面仍然不确定。抗菌素耐药性的出现和传播是抗菌素,微生物和周围环境之间众多复杂相互作用的结果。尽管研究已将农业中使用抗生素与抗药性食源性病原体的出现联系起来,但仍在继续争论这一作用是否足够显着以至于值得进一步调节或限制。

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