Unravelling Antimicrobial Resistance in Mycoplasma hyopneumoniae: Genetic Mechanisms and Future Directions

被引:0
|
作者
Jafari Jozani, Raziallah [1 ]
Al Khallawi, Mauida F. Hasoon [1 ]
Trott, Darren [1 ]
Petrovski, Kiro [1 ]
Low, Wai Yee [2 ]
Hemmatzadeh, Farhid [1 ]
机构
[1] Univ Adelaide, Fac Sci Engn & Technol, Australian Ctr Antimicrobial Resistance Ecol, Sch Anim & Vet Sci, Adelaide, SA 5005, Australia
[2] Univ Adelaide, Davies Livestock Res Ctr, Sch Anim & Vet Sci, Adelaide, SA 5005, Australia
关键词
<italic>Mycoplasma hyopneumoniae</italic>; antimicrobial resistance; pigs; enzootic pneumonia; resistance mechanisms; MACROLIDE-RESISTANCE; ANTIBIOTIC-RESISTANCE; DECREASED SUSCEPTIBILITY; STREPTOCOCCUS-PNEUMONIAE; INHIBITORY CONCENTRATION; ACQUIRED-RESISTANCE; IN-VITRO; MUTATIONS; PROTEIN; PERSISTENCE;
D O I
10.3390/vetsci11110542
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
Antimicrobial resistance (AMR) in Mycoplasma hyopneumoniae, the causative agent of Enzootic Pneumonia in swine, poses a significant challenge to the swine industry. This review focuses on the genetic foundations of AMR in M. hyopneumoniae, highlighting the complexity of resistance mechanisms, including mutations, horizontal gene transfer, and adaptive evolutionary processes. Techniques such as Whole Genome Sequencing (WGS) and multiple-locus variable number tandem repeats analysis (MLVA) have provided insights into the genetic diversity and resistance mechanisms of M. hyopneumoniae. The study underscores the role of selective pressures from antimicrobial use in driving genomic variations that enhance resistance. Additionally, bioinformatic tools utilizing machine learning algorithms, such as CARD and PATRIC, can predict resistance traits, with PATRIC predicting 7 to 12 AMR genes and CARD predicting 0 to 3 AMR genes in 24 whole genome sequences available on NCBI. The review advocates for a multidisciplinary approach integrating genomic, phenotypic, and bioinformatics data to combat AMR effectively. It also elaborates on the need for refining genotyping methods, enhancing resistance prediction accuracy, and developing standardized antimicrobial susceptibility testing procedures specific to M. hyopneumoniae as a fastidious microorganism. By leveraging contemporary genomic technologies and bioinformatics resources, the scientific community can better manage AMR in M. hyopneumoniae, ultimately safeguarding animal health and agricultural productivity. This comprehensive understanding of AMR mechanisms will be beneficial in the adaptation of more effective treatment and management strategies for Enzootic Pneumonia in swine.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Proteomic and Genetic Diversity of Mycoplasma hyopneumoniae Isolates from South Korea
    Barate, Abhijit K.
    Jang, Gyu-Seong
    Cho, Seongbeom
    Hahn, Tae-Wook
    JOURNAL OF PURE AND APPLIED MICROBIOLOGY, 2013, 7 (04): : 3125 - 3129
  • [32] MYCOPLASMA-HYOPNEUMONIAE INFECTION IN PIGS - DURATION OF THE DISEASE AND RESISTANCE TO REINFECTION
    KOBISCH, M
    BLANCHARD, B
    LEPOTIER, MF
    VETERINARY RESEARCH, 1993, 24 (01) : 67 - 77
  • [33] Effect of vaccination against Mycoplasma hyopneumoniae on divergent pig genetic groups
    Sousa, Katiene Regia Silva
    Dantas, Waleska de Melo Ferreira
    de Oliveira, Leandro Licursi
    Cardoso, Silvia Almeida
    Araujo, Renan dos Santos
    Guimaraes, Simone Eliza Facioni
    RESEARCH IN VETERINARY SCIENCE, 2024, 180
  • [34] Genetic and structural basis of colistin resistance in Klebsiella pneumoniae : Unravelling the molecular mechanisms
    Alousi, Sahar
    Saad, Jamal
    Panossian, Balig
    Makhlouf, Rita
    Al Khoury, Charbel
    Rahy, Kelven
    Thoumi, Sergio
    Araj, George F.
    Khnayzer, Rony
    Tokajian, Sima
    JOURNAL OF GLOBAL ANTIMICROBIAL RESISTANCE, 2024, 38 : 256 - 264
  • [35] Antimicrobial Resistance in Clinical Ureaplasma spp. and Mycoplasma hominis and Structural Mechanisms Underlying Quinolone Resistance
    Yang, Ting
    Pan, Lianlian
    Wu, Ningning
    Wang, Lin
    Liu, Zhen
    Kong, Yingying
    Ruan, Zhi
    Xie, Xinyou
    Zhang, Jun
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2020, 64 (06)
  • [36] Antimicrobial Resistance in Mycoplasma spp.
    Gautier-Bouchardon, Anne V.
    MICROBIOLOGY SPECTRUM, 2018, 6 (04):
  • [37] Genetic transformation of Neisseriae as a tool to study antimicrobial resistance mechanisms
    Müller, M
    Nolte, O
    INTERNATIONAL JOURNAL OF MEDICAL MICROBIOLOGY, 2004, 294 : 108 - 109
  • [38] Infection dynamics and genetic variability of Mycoplasma hyopneumoniae in self-replacement gilts
    Takeuti, Karine L.
    de Barcellos, David E. S. N.
    de Andrade, Caroline P.
    de Almeida, Laura L.
    Pieters, Maria
    VETERINARY MICROBIOLOGY, 2017, 208 : 18 - 24
  • [39] Unravelling the linkages between conflict and antimicrobial resistance
    Aula Abbara
    Clare Shortall
    Richard Sullivan
    Wim Zwijnenburg
    Krystel Moussally
    Reem Aboshamr
    Carine Naim
    Angela Uyen
    Muhammad H. Zaman
    Nabil Karah
    Ahmad Kejah
    Marwan Osman
    Antoine Abou Fayad
    Omar Dewachi
    npj Antimicrobials and Resistance, 3 (1):
  • [40] Unravelling the menace: detection of antimicrobial resistance in aquaculture
    Preena, P. G.
    Swaminathan, T. Raja
    Kumar, V. J. Rejish
    Singh, I. S. Bright
    LETTERS IN APPLIED MICROBIOLOGY, 2020, 71 (01) : 26 - 38