4.7 Article

Genomic analysis of antibiotic-resistant Enterococcus spp. reveals novel enterococci strains and the spread of plasmid-borne Tet(M), Tet(L) and Erm (B) genes from chicken litter to agricultural soil in South Africa

期刊

JOURNAL OF ENVIRONMENTAL MANAGEMENT
卷 302, 期 -, 页码 -

出版社

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jenvman.2021.114101

关键词

Antibiotic resistance genes, Soil; Enterococcus species; Chicken litter; Whole-genome sequencing

资金

  1. WHO Advisory Group on Integrated Surveillance of Antimicrobial Resistance (AGISAR) Research Project: Triangulation of Antibiotic Resistance from Humans, the Food Chain and Associated Environments -A One Health Project [204517]
  2. South African Research Chair Initiative of the Department of Science and Technology and National Research Foundation of South Africa [98342]
  3. South African Medical Research Council (SAMRC)
  4. UK Medical Research Council Newton Fund
  5. SAMRC Self-Initiated Research Grant

向作者/读者索取更多资源

The study revealed that bacteria in chicken litter carry various resistance genes, which are introduced into the soil through the application of chicken litter, leading to the emergence of new resistance genes in the soil. These resistance genes are associated with diverse mobile genetic elements, indicating the mobilization and transmission of resistance genes and resistant bacteria.
Manure from food animals exposed to antibiotics is often used as soil fertiliser, potentially releasing antibioticresistant bacteria (ARB) with diverse antibiotic-resistance genes (ARGs) into the soil. To determine the impact of chicken litter application on the soil resistome, Enterococcus spp. isolated from chicken litter and soil samples collected before and after the soil amendment were characterised, using whole-genome sequencing and bioinformatics tools. Nineteen Enterococcus spp. isolates from the three sources were sequenced on Illumina Miseq platform to ascertain the isolates' resistome, mobilome, virulome, clonality, and phylogenomic relationships. Multilocus sequence typing (MLST) analysis revealed eight novel sequence types (STs) (ST1700, ST1752, ST1753, ST1754, ST1755, ST1756, ST1004, and ST1006). The isolates harboured multiple resistance genes including those conferring resistance to inter alia macrolides-lincosamide-streptogramin (erm(B), lnu(B), lnu(G), lsaA, lsaE, eat(A), msr(C)), tetracycline (tet(M), tet(L), tet(S)), aminoglycosides (aac(6')-Ii, aac(6')-Iih, ant(6)-Ia, aph(3')-III, ant(9)-Ia), fluoroquinolones (efmA, and emeA), vancomycin (VanC {VanC-2, VanXY, VanXYC-3, VanXYC-4, VanRC}), and chloramphenicol (cat). The litter-amended soil harboured new ARB (particularly E. faecium) and ARGs (ant(6)-Ia, aac(6')-Ii, aph(3')-III), lnu(G), msr(C), and eat(A), efmA) that were not previously detected in the soil. The identified ARGs were associated with diverse mobile genetic elements (MGEs) such as insertion sequences (IS6, ISL3, IS256, IS30), transposons (Tn3 and Tn916) and plasmids (repUS43, repUS1, rep9b, and rep 22). Twenty-eight virulence genes encoding adherence/biofilm formation (ebpA, ebpB, ebpC), antiphagocytosis (elrA) and bacterial sex pheromones (Ccf10, cOB1, cad, and camE), were detected in the genomes of the isolates. Phylogenomic analysis revealed a close relationship between a few isolates from litter-amended soil and the chicken litter isolates. The differences in the ARG and ARB profiles in the soil before and after the litter amendment and their association with diverse MGEs indicate the mobilisation and transmission of ARGs and ARB from the litter to the soil.

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