Development of antibiotic resistance and options to replace antimicrobials in animal diets

被引:85
|
作者
Knudsen, KEB [1 ]
机构
[1] Danish Inst Agr Sci, Dept Anim Nutr & Physiol, DK-8830 Tjele, Denmark
关键词
pigs; antibiotic resistance; carbohydrates; bacteria; parasites;
D O I
10.1079/PNS2001109
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 ;
摘要
As there is a risk of developing antibiotic resistance, a number of commonly-used antimicrobial growth promoters have been banned in the EU member states. This decision has put new emphasis on using the diet to control enteric bacterial infections of pigs. Dietary carbohydrates constitute a major proportion of diets for pigs, and the carbohydrate fraction has a diverse composition, with different properties in the gastrointestinal tract, some of which are of importance to gut health. Findings from different studies indicate that dietary carbohydrate composition influences the expression of swine dysentery and infection with nematode worms after experimental challenge with Brachyspira hyodesenteriae and Oesophagostumum dentatum respectively. In both cases the type, amount and physico-chemical properties of the carbohydrates entering the large intestine played an important role in the infection, and emerging data suggest a synergism between different porcine pathogens. There is also increasing evidence that the feed structure, which relates to the type of plant material in the diet and the way it is processed, can be used to reduce Salmonella prevalence at the herd level. However, it should be stressed that using the diet to manage gut health is not straightforward, since the expression of a pathogen in many cases requires the presence of other components of the commensal biota.
引用
收藏
页码:291 / 299
页数:9
相关论文
共 50 条
  • [22] Use of Antibiotics and Antibiotic Residues in Research Animal Stock Diets
    Slanetz, Charles A.
    AMERICAN JOURNAL OF PUBLIC HEALTH AND THE NATIONS HEALTH, 1954, 44 (03): : 328 - 330
  • [23] COMPARATIVE STUDY OF ANTIMICROBIALS USE AND THE ANTIBIOTIC RESISTANCE OF GRAM NEGATIVE STRAINS
    Voicu, Mirela
    Cristescu, Carmen
    Zbarcea, Cristina Elena
    Voicu, Adrian
    Buda, Valentina
    Suciu, Liana
    Suciu, Maria
    Proks, Maria
    Bild, Veronica
    FARMACIA, 2017, 65 (02) : 225 - 229
  • [24] Probiotic cell-free supernatant as effective antimicrobials against Klebsiella pneumoniae and reduce antibiotic resistance development
    Do, Anh Duy
    Quang, Hoa Pham
    Phan, Quang Khai
    INTERNATIONAL MICROBIOLOGY, 2025, 28 (04) : 623 - 632
  • [25] Antibiotic resistance: learning from animal feeds and animal experimentation
    Moreillon, P
    Entenza, JM
    CLINICAL MICROBIOLOGY AND INFECTION, 2001, 7 : 13 - 18
  • [26] Antibiotic resistance in Pseudomonas aeruginosa and alternative therapeutic options
    Chatterjee, Maitrayee
    Anju, C. P.
    Biswas, Lalitha
    Kumar, V. Anil
    Mohan, C. Gopi
    Biswas, Raja
    INTERNATIONAL JOURNAL OF MEDICAL MICROBIOLOGY, 2016, 306 (01) : 48 - 58
  • [27] Clostridium difficile infection: update on emerging antibiotic treatment options and antibiotic resistance
    Shah, Dhara
    Dang, Minh-Duc
    Hasbun, Rodrigo
    Koo, Hoonmo L.
    Jiang, Zhi-Dong
    DuPont, Herbert L.
    Garey, Kevin W.
    EXPERT REVIEW OF ANTI-INFECTIVE THERAPY, 2010, 8 (05) : 555 - 564
  • [28] Progress in combating antibiotic resistance in animal agriculture
    Xu, Tianming
    Liu, Jing
    Wu, Qian
    Hui, Xiaoran
    Duan, Weidan
    Zhang, Zhaohuan
    Liao, Xinyu
    Zhao, Yong
    CYTA-JOURNAL OF FOOD, 2024, 22 (01)
  • [29] Therapeutic antibiotics in animal feeds and antibiotic resistance
    Tollefson, L
    Altekruse, SF
    Potter, ME
    REVUE SCIENTIFIQUE ET TECHNIQUE DE L OFFICE INTERNATIONAL DES EPIZOOTIES, 1997, 16 (02): : 709 - 715
  • [30] Current status of antibiotic resistance in animal production
    Franklin, A
    ACTA VETERINARIA SCANDINAVICA, 1999, : 23 - 28