| Literature DB >> 31330991 |
Maria Vitale1, Paola Galluzzo2, Patrizia Giuseppina Buffa3, Eleonora Carlino1, Orazio Spezia4, Rosa Alduina5.
Abstract
BACKGROUND: The diffusion of antimicrobial resistance is a significant concern for public health worldwide. Staphylococcus aureus represents a paradigm microorganism for antibiotic resistance in that resistant strains appear within a decade after the introduction of new antibiotics.Entities:
Keywords: MRSA; Staphylococcal toxins; Staphylococcus aureus; antibiotic resistance; biofilm activity; mecA
Year: 2019 PMID: 31330991 PMCID: PMC6783831 DOI: 10.3390/antibiotics8030097
Source DB: PubMed Journal: Antibiotics (Basel) ISSN: 2079-6382
Antimicrobial resistance profile of human isolates. The following antibiotics were tested by automatic VITEK® 2 system: benzylpenicillin (PEN), erythromycin (E), clindamycin (CLIN), oxacillin (OXA), cefaclor (FAC), ceftriaxone (CTX), ciprofloxacin (CIP), moxifloxacin (MFA), amoxicillin-clavulanic acid (AMC), gentamicin (GEN), tetracycline (TE), sulfamethoxazole-trimethoprim (SXT), linezolid (LZD), vancomycin (VAN), tigecycline (TIG), and fusidic acid (AF). The susceptible (S), intermediate (I), and resistant (R) phenotypes are reported. P and N indicate the positivity or negativity to the cefoxitin screening. ND = not detected.
| Isolate | Sample | PEN | E | CLIN | OXA | FAC | CTX | CIP | MFA | AMC | GEN | TE | SXT | LZD | VAN | TIG | AF | Cefoxitin Screening |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | Nail injury | R | S | S | S | S | S | S | S | S | S | S | S | S | S | S | S | N |
| 2 | Generic swab | R | R | R | S | S | S | R | R | S | R | S | S | S | S | S | S | N |
| 3 | Endoarticular liquid | R | R | R | R | R | R | R | R | R | S | S | S | S | S | S | S | P |
| 4 | Urine culture | R | S | S | S | S | S | R | R | S | S | S | S | S | S | S | S | N |
| 5 | Sore | R | R | R | R | R | R | R | R | R | R | S | R | S | S | S | S | P |
| 6 | Sputum | S | R | R | S | S | S | S | S | S | R | S | S | S | S | S | S | N |
| 7 | Sputum | R | S | S | S | S | S | R | R | S | S | S | S | S | S | S | S | N |
| 8 | Pharyngeal swab | R | R | S | S | S | S | S | S | S | S | R | S | S | S | S | S | N |
| 9 | Pharyngeal swab | R | S | S | R | R | R | S | S | R | S | S | I | S | S | S | S | P |
| 10 | Pharyngeal swab | R | ND | S | S | S | S | S | S | S | S | S | S | S | S | S | S | N |
| 11 | Pharyngeal swab | R | R | R | R | R | R | S | S | R | S | R | S | S | S | S | S | P |
| 12 | Pharyngeal swab | R | R | R | R | R | R | S | S | R | S | R | S | S | S | S | S | P |
| 13 | Pharyngeal swab | R | S | S | S | S | S | S | S | S | S | S | S | S | S | S | S | N |
| 14 | Pharyngeal swab | S | ND | ND | ND | ND | ND | ND | ND | S | ND | S | ND | ND | S | ND | ND | ND |
Antimicrobial resistance profile of animal-derived isolates. The following antibiotics were tested using the Kirby–Bauer method: penicillin (PEN), erythromycin (E), oxacillin (OXA), ceftriaxone (CTX), gentamicin (GEN), tetracycline (TE), lincomycin (L), and vancomycin (VAN). The susceptible (S), intermediate (I), and resistant (R) phenotypes are reported.
| Isolate | Sample | PEN | E | OXA | CTX | GEN | TE | LIN | VAN |
|---|---|---|---|---|---|---|---|---|---|
| 15 | Cow milk | S | S | S | S | S | S | I | S |
| 16 | Cow milk | S | I | S | S | S | I | I | S |
| 17 | Cow milk | R | S | S | I | S | R | S | S |
| 18 | Goat milk | R | S | S | S | S | S | S | S |
| 19 | Goat milk | R | I | S | S | R | S | S | S |
| 20 | Sheep milk | S | I | S | S | S | S | S | S |
| 21 | Sheep milk | S | S | S | R | S | R | S | S |
| 22 | Sheep milk | R | I | S | I | S | R | S | S |
| 23 | Sheep milk | S | I | S | S | S | S | S | S |
| 24 | Sheep milk | R | I | S | R | I | I | I | S |
| 25 | Sheep milk | R | S | S | S | R | S | S | S |
| 26 | Sheep milk | R | S | S | I | S | R | S | S |
| 27 | Cheese | R | I | S | I | R | S | R | S |
| 28 | Cheese | R | S | S | S | S | R | S | S |
| 29 | Cheese | S | S | S | S | S | S | S | S |
| 30 | Cheese | R | I | S | I | I | R | I | S |
| 31 | Cheese | S | S | S | S | S | S | S | S |
| 32 | Cheese | S | S | S | S | S | S | S | S |
| 33 | Tuma (cheese) | R | I | S | S | S | R | S | S |
| 34 | Pecorino (cheese) | S | S | S | S | S | S | S | S |
| 35 | Food preparation | S | S | S | S | S | S | S | S |
Comparison of antibiotic resistance profiles of human and animal isolates.
| Number of Strains | Sensitive to All Antibiotics (%) | Single Resistance (%) | Double Resistance (%) | Multiple (≥3) Resistance (%) | Intermediate Sensitivity (%) | |
|---|---|---|---|---|---|---|
|
| 14 | 1 (7.1) | 2 (14.3) | 0 (0) | 11 (78.6) | 0 (0) |
|
| 21 | 6 (28.5) | 1 (4.8) | 10 (47.6) | 1 (4.8) | 3 (14.3) |
Figure 1Percentage of human- and animal-derived isolates resistant to the antibiotics used in this study.
Figure 2Biofilm production in human- (A) and animal-derived isolates (B). C represents the positive control. Standard deviations are indicated. Each experiment was performed in triplicate. Biofilm production was measured as the absorbance at 600 nm wavelength after crystal violet staining of the tubes containing the cultures.
Presence of the antibiotic resistance mecA gene, virulence (sea-sep, tsst-1, eta, and etb) and biofilm-related (agr, bap, ica, sasC) genes. ND indicates the analyzed genes were not detected with the used primers.
| Internal ID | Sample | Virulence Genes | Biofilm-related Genes | ||
|---|---|---|---|---|---|
|
|
|
|
| ||
| 1 | Nail injury | ND |
| ND | ND |
| 2 | Generic swab | ND | ND | ND |
|
| 3 | Endoarticular liquid | ND |
|
| |
| 4 | Urine culture | ND |
| ND |
|
| 5 | Sore | ND |
|
| ND |
| 6 | Sputum | ND | ND | ND |
|
| 7 | Sputum | ND |
| ND | ND |
| 8 | Pharyngeal swab | ND | ND | ND |
|
| 9 | Pharyngeal swab | ND |
|
| ND |
| 10 | Pharyngeal swab | ND | ND |
|
|
| 11 | Pharyngeal swab | ND |
|
| ND |
| 12 | Pharyngeal swab | ND |
|
|
|
| 13 | Pharyngeal swab |
|
| ND |
|
| 14 | Pharyngeal swab | ND |
| ND | |
| 15 | Cow milk |
| ND | ND |
|
| 16 | Cow milk | ND | ND | ND |
|
| 17 | Cow milk |
| ND | ND |
|
| 18 | Goat milk |
| ND |
|
|
| 19 | Goat milk | ND | ND |
|
|
| 20 | Sheep milk | ND | ND | ND |
|
| 21 | Sheep milk | ND | ND | ND |
|
| 22 | Sheep milk | ND | ND | ND | ND |
| 23 | Sheep milk | ND | ND | ND |
|
| 24 | Sheep milk | ND | ND | ND |
|
| 25 | Sheep milk | ND | ND |
| ND |
| 26 | Sheep milk | ND | ND | ND | ND |
| 27 | Cheese | ND | ND | ND | ND |
| 28 | Cheese |
| ND |
|
|
| 29 | Cheese | ND | ND | ND |
|
| 30 | Cheese |
| ND | ND |
|
| 31 | Cheese | ND | ND | ND |
|
| 32 | Cheese | ND | ND |
|
|
| 33 | Cheese | ND | ND |
|
|
| 34 | Cheese | ND | ND |
|
|
| 35 | Food preparation |
| ND |
|
|
The 35 S. aureus samples collected from different specimens between December 2017 and February 2019.
| Sample | n° |
|---|---|
| Cow milk | 3 |
| Cheese | 8 |
| Endoarticular liquid | 1 |
| Food preparation | 1 |
| Generic swab | 1 |
| Goat milk | 2 |
| Nail injury | 1 |
| Pharyngeal swab | 7 |
| Sheep milk | 7 |
| Sore | 1 |
| Sputum | 2 |
| Urine culture | 1 |
Nucleotide sequences of primers used in this study. The PCR product size is reported.
| Gene | Primer | Oligonucleotide Sequence | Size of Amplified Product (bp) |
|---|---|---|---|
|
| GSEAR-1 | GGTTATCAATGTGCGGGTGG | 102 |
| GSEAR-2 | CGGCACTTTTTTCTCTTCGG | ||
|
| GSEBR-1 | GTATGGTGGTGTAACTGAGC | 164 |
| GSEBR-2 | CCAAATAGTGACGAGTTAGG | ||
|
| GSECR-1 | AGATGAAGTAGTTGATGTGTATGG | 451 |
| GSECR-2 | CACACTTTTAGAATCAACCG | ||
|
| GSEDR-1 | CCAATAATAGGAGAAAATAAAAG | 278 |
| GSEDR-2 | ATTGGTATTTTTTTTCGTTC | ||
|
| GSEER-1 | AGGTTTTTTCACAGGTCATCC | 209 |
| GSEER-2 | CTTTTTTTTCTTCGGTCAATC | ||
|
| GMECAR-1 | ACTGCTATCCACCCTCAAAC | 163 |
| GMECAR-2 | CTGGTGAAGTTGTAATCTGG | ||
|
| GETAR-1 | GCAGGTGTTGATTTAGCATT | 93 |
| GETAR-2 | AGATGTCCCTATTTTTGCTG | ||
|
| GETBR-1 | ACAAGCAAAAGAATACAGCG | 226 |
| GETBR-2 | GTTTTTGGCTGCTTCTCTTG | ||
|
| GTSSTR-1 | ACCCCTGTTCCCTTATCATC | 326 |
| GTSSTR-2 | TTTTCAGTATTTGTAACGCC | ||
|
| icaH-1m | TATACCTTTCTTCGATGTCG | 700 |
| icaH-7c | CTTTCGTTATAACAGGCAAG | ||
|
| sasp-6m | CCCTATATCGAAGGTGTAGAATTGCAC | 1000 |
| sasp-7c | GCTGTTGAAGTTAATACTGTACCTGC | ||
|
| CHsasC1for | GCAACGAATCAAGCATTGG | 600 |
| CHsasC1rev | TGACAGCACTTCGTTAGG | ||
|
| agrB1 | TATGCTCCTGCAGCAACTAA | 1070 |
| agrC2 | CTTGCGCATTTCGTTGTTGA | ||
|
| GFEMAR-1 | AAAAAAGCACATAACAAGCG | 132 |
| GFEMAR-2 | GATAAAGAAGAAACCAGCAG |