Association between Phenotypes of Antimicrobial Resistance, ESBL Resistance Genes, and Virulence Genes of Salmonella Isolated from Chickens in Sichuan, China
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Bacterial Isolates
2.2. Antimicrobial Susceptibility Testing and ESBL Confirmatory Test
2.3. Detection of ESBL and Virulence Genes
2.4. Multilocus Sequence Typing (MLST)
2.5. Plasmid Conjugation
2.6. Statistical Analyses
3. Results
3.1. Antimicrobial Resistance and MDR Patterns
3.2. Distribution of ESBL Genes in the ESBL+ and ESBL− Salmonella Isolates
3.3. Correlation Analysis of ESBL Genotypes and Resistance Phenotypes
3.4. Prevalence of Virulence Genes
3.5. MLST Analysis of Salmonella Isolates
3.6. Transfer Ability of ESBL and spv Genes
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Target Genes | Sequence (5′-3′) | Product Size (bp) | Annealing Temperature (°C) | Reference |
---|---|---|---|---|
blaTEM | F:ATAAAATTCTTGAAGACGAAA R:GACAGTTACCAATGCTTAATC | 1080 | 55 | [17] |
blaSHV | F:TTATCTCCCTGTTAGCCACC R:GATTTGCTGATTTCGCTCGG | 797 | 57 | [17] |
blaCTX-M-1 group | F:GGTTAAAAAATCACTGCGTC R:TTACAAACCGTCGGTGACGA | 874 | 55 | [17] |
blaCTX-M-9 group | F:AGAGTGCAACGGATGATG R:CCAGTTACAGCCCTTCGG | 868 | 57 | [17] |
blaCTX-M-2/8/25 group | F:ACCGAGCCSACGCTCAA R:CCGCTGCCGGTTTTATC | 221 | 60 | [17] |
blaOXA | F:AATGGCACCAGATTCAACTT R:CTTGGCTTTTATGCTTGATG | 595 | 60 | [18] |
invA | F:GTGAAATTATCGCCACGTTCGGGCAA R:TCATCGCACC GTCAAAGGAACC | 284 | 55 | [15] |
avrA | F:GTTATGGACGGAACGACATCGG R:ATTCTGCTTCCCGCCGCC | 389 | 60 | [19] |
ssaQ | F:GAATAGCGAATGAAGAGCGTCC R:CATCGTGTTATCCTCTGTCAGC | 677 | 60 | [15] |
mgtC | F:TGACTATCAATGCTCCAGTGAAT R:ATTTACTGGCCGCTATGCTGTTG | 655 | 60 | [15] |
sopB | F:GATGTGATTAATGAAGAAATGCC R:GCAAACCATAAAAACTACACTCA | 1170 | 60 | [15] |
sopE | F:CGAGTAAAGACCCCGCATAC R:GAGTCGGCATAGCACACTCA | 362 | 58 | [20] |
spvR | F:AGGAAATCGGACCTACGG R:TAACATCGCCAGCCCTTG | 473 | 57 | [15] |
spvB | F:CCTGATGTTCCACCACTTTC R:ATGCCTTATCTGGCGATGT | 590 | 57 | [15] |
spvC | F:ACTCCTTGCACAACCAAATGCGGA R:TGTCTCTGCATTTCGCCACCATCA | 571 | 56 | [15] |
stn | F:CTTTGGTCGTAAAATAAGGCG R:TGCCCAAAGCAGAGAGATTC | 260 | 55 | [21] |
bcfC | F:ACCAGAGACATTGCCTTCC R:TTCTGATCGCCGCTATTCG | 467 | 57 | [22] |
Resistance Rate (%) | |||
---|---|---|---|
Antimicrobials | ESBL− (n = 69) | ESBL+ (n = 48) | All Isolates (n = 117) |
Ampicillin | 86.96 | 100.00 * | 92.31 |
Cefazolin | 55.07 | 100.00 * | 73.50 |
Ceftriaxone | 27.54 | 100.00 * | 57.26 |
Cefotaxime | 26.09 | 100.00 * | 56.41 |
Gentamicin | 31.88 | 6.25 * | 21.37 |
Kanamycin | 28.99 | 10.42 * | 21.37 |
Doxycycline | 23.19 | 66.67 * | 41.03 |
Colistin sulfate | 52.17 | 47.92 | 50.43 |
Nalidixic acid | 95.65 | 100.00 | 97.44 |
Ciprofloxacin | 31.88 | 10.42 * | 23.08 |
Isolates | blaTEM-1 (%) | blaCTX-M (%) | blaOXA-31 (%) |
---|---|---|---|
ESBL− | 38.71 (12/31) | 41.94 (13/31) | 48.39 (15/31) |
ESBL+ | 6.25 (3/48) * | 93.75 (45/48) * | 12.50 (6/48) * |
Total | 18.99 (15/79) | 73.42 (58/79) | 26.58 (21/79) |
Single Factor Effect | Multiple Factors Effect | No Significant Effect | |
---|---|---|---|
avrA | blaCTX-M-55, blaOXA-31, blaTEM-1 | blaCTX-M-65 | |
ssaQ | blaCTX-M-55 | blaCTX-M-65, blaOXA-31, blaTEM-1 | |
mgtC | blaCTX-M-65 | blaCTX-M-55, blaOXA-31, blaTEM-1 | |
sopB | blaCTX-M-55, blaCTX-M-65, blaOXA-31, blaTEM-1 | ||
sopE | blaCTX-M-55, blaOXA-31, blaCTX-M-65, blaTEM-1 | ||
bcfC | blaCTX-M-55, blaCTX-M-65 | blaOXA-31, blaOXA-31 | |
spvR | blaCTX-M-55 | blaOXA-31, blaCTX-M-65, blaTEM-1 | |
spvB | blaCTX-M-55 | blaOXA-31, blaCTX-M-65, blaTEM-1 | |
spvC | blaCTX-M-55, blaCTX-M-65 | blaOXA-31, blaTEM-1 |
Isolates | STs | Donor Bacterium | Transconjugants | ||
---|---|---|---|---|---|
Resistance and Virulence Genes | Resistant Phenotype | Resistance and Virulence Genes | Resistant Phenotype | ||
SLZC19-128 | ST92 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55 | AMP |
SLZC19-605 | ST92 | blaCTX-M-55, blaCTX-M-65, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55 | AMP, CFZ, CRO, CTX |
SLZC19-628 | ST92 | blaCTX-M-55, blaCTX-M-65, blaOXA-31, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55 | AMP |
SLZC20-52 | ST11 | blaCTX-M-65, blaOXA-31, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-65, blaOXA-31 | AMP, CFZ, CRO, CTX |
SLZC20-53 | ST11 | blaCTX-M-65, blaOXA-31, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-65 | AMP, CFZ, CRO, CTX |
SDZC21-1 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-3 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-4 | ST3717 | blaCTX-M-55, blaCTX-M-65, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-5 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-8 | ST3717 | blaTEM-1, blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaTEM-1, blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-10 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-11 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-12 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-13 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-14 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-15 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-16 | ST3717 | blaCTX-M-55, blaCTX-M-65, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-18 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-19 | ST3717 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SDZC21-26 | ST155 | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX | blaCTX-M-55, spvR, spvB, spvC | AMP, CFZ, CRO, CTX |
SYBC20-27 | ST2151 | blaTEM-1, blaOXA-31, spvR, spvC | AMP, CFZ, CRO, CTX | blaTEM-1, blaOXA-31 | AMP, CFZ |
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Shu, G.; Qiu, J.; Zheng, Y.; Chang, L.; Li, H.; Xu, F.; Zhang, W.; Yin, L.; Fu, H.; Yan, Q.; et al. Association between Phenotypes of Antimicrobial Resistance, ESBL Resistance Genes, and Virulence Genes of Salmonella Isolated from Chickens in Sichuan, China. Animals 2023, 13, 2770. https://doi.org/10.3390/ani13172770
Shu G, Qiu J, Zheng Y, Chang L, Li H, Xu F, Zhang W, Yin L, Fu H, Yan Q, et al. Association between Phenotypes of Antimicrobial Resistance, ESBL Resistance Genes, and Virulence Genes of Salmonella Isolated from Chickens in Sichuan, China. Animals. 2023; 13(17):2770. https://doi.org/10.3390/ani13172770
Chicago/Turabian StyleShu, Gang, Jianyu Qiu, Yilei Zheng, Lijen Chang, Haohuan Li, Funeng Xu, Wei Zhang, Lizi Yin, Hualin Fu, Qigui Yan, and et al. 2023. "Association between Phenotypes of Antimicrobial Resistance, ESBL Resistance Genes, and Virulence Genes of Salmonella Isolated from Chickens in Sichuan, China" Animals 13, no. 17: 2770. https://doi.org/10.3390/ani13172770
APA StyleShu, G., Qiu, J., Zheng, Y., Chang, L., Li, H., Xu, F., Zhang, W., Yin, L., Fu, H., Yan, Q., Gan, T., & Lin, J. (2023). Association between Phenotypes of Antimicrobial Resistance, ESBL Resistance Genes, and Virulence Genes of Salmonella Isolated from Chickens in Sichuan, China. Animals, 13(17), 2770. https://doi.org/10.3390/ani13172770