Elongation Factor-G (fusA) Mutations That Confer Fusidic Acid Resistance in Staphylococcus haemolyticus
Abstract
1. Introduction
2. Results
2.1. Comparison of EF-G (FusA) Between S. aureus and S. haemolyticus
2.2. Mutation Analysis of In Vitro-Induced FA-Resistant Strains
2.3. Doubling Time of EF-G (FusA) Mutant Isolates Compared with Wild-Type Strains
3. Discussion
4. Materials and Methods
4.1. Bacterial Strains
4.2. In Vitro Induction of Fusidic Acid Resistance
4.3. fusA Mutation Analysis
4.4. Growth Assay and Doubling Time Determination
4.5. Statistical Analysis
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| FA | fusidic acid |
| EF-G | elongation factor-G |
| MSSA | methicillin-susceptible Staphylococcus aureus |
| MRSA | methicillin-resistant Staphylococcus aureus |
| CLSI | Clinical and Laboratory Standards Institute |
| EUCAST | European Committee on Antimicrobial Susceptibility Testing |
| MIC | minimal inhibitory concentration |
| ST | sequence type |
| MHB | Mueller–Hinton broth |
| OD | optical density |
| MHA | Mueller–Hinton agar |
| PCR | polymerase chain reaction |
| TSB | tryptic soy broth |
| CFU | colony forming unit |
| DT | doubling time |
| SD | standard deviation |
| SPSS | Statistical Package for the Social Sciences |
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| Residue | S. aureus (AJ237696.1) | S. haemolyticus (CP045187.2) a,b | ||
|---|---|---|---|---|
| Amino Acid | Codon | Amino Acid | Codon | |
| 4 | Glu (E) | GAA | Asp (D) | GAC |
| 8 | Glu (E) | GAA | Lys (K) | AAA |
| 9 | Lys (K) | AAA | Asn (N) | AAC |
| 71 | Ala (A) | GCT | Gln (Q) | CAA |
| 73 | Glu (E) | GAA | Asp (D) | GAT |
| 145 | Glu (E) | GAA | Asp (D) | GAC |
| 156 | Gln (Q) | CAA | Asp (D) | GAT |
| 195 | Glu (E) | GAA | Asp (D) | GAC |
| 204 | Leu (L) | TTA | Lys (K) | AAA |
| 205 | Asp (D) | GAT | Glu (E) | GAA |
| 212 | Ala (A) | GCT | Ser (S) | TCT |
| 213 | Ser (S) | AGC | Asn (N) | AAT |
| 222 | Ser (S) | AGC | Asn (N) | AAC |
| 238 | Ser (S) | TCT | Ala (A) | GCA |
| 242 | Glu (E) | GAA | Asn (N) | AAT |
| 250 | Asn (N) | AAC | Asp (D) | GAC |
| 272 | Asp (D) | GAC | Asn (N) | AAC |
| 288 | Ile (I) | ATT | Val (V) | GTA |
| 293 | Ser (S) | AGC | Glu (E) | GAA |
| 303 | Ala (A) | GCA | Pro (P) | CCA |
| 335 | Met (M) | ATG | Leu (L) | TTA |
| 341 | Val (V) | GTT | Ile (I) | ATT |
| 347 | Gly (G) | GGT | Asp (D) | GAC |
| 488 | Ser (S) | TCA | Gln (Q) | CAA |
| 527 | Ala (A) | GCT | Ser (S) | TCT |
| 567 | Tyr (Y) | TAT | Phe (F) | TTT |
| 625 | Ser (S) | TCT | Ala (A) | GCT |
| 684 | Glu (E) | GAA | Asp (D) | GAT |
| Amino Acid Changes in EF-G (FusA) | Isolates (No.) | FA MICs (µg/mL) | Mutations of fusA a |
|---|---|---|---|
| Wild Type | 5 | <=1 | N/A |
| Q115L | 3 | 64 | A344T (CAA → CTA) |
| L430S | 1 | 16 | T1289C (TTA → TCA) |
| E433G | 1 | 16 | A1298G (GAA → GGA) |
| G452C | 2 c | 32 | G1354T (GGT → TGT) |
| H457Y | 14 b | 64–128 | C1369T (CAC → TAC) |
| H457N | 1 | >256 | C1369A (CAC → AAC) |
| H457L | 1 | 128 | A1370T (CAC → CTC) |
| H457Q | 2 | 16 | C1371A (CAC → CAA) |
| R464L | 2 | 16 | G1391T (CGT → CTT) |
| A655G | 1 | 32 | C1964G (GCA → GGA) |
| Silent Mutations of EF-G (FusA) | |||
| I176I | 10 b | N/A | C528T (ATC → ATT) |
| G386G | 10 b | N/A | T1158C (GGT → GGC) |
| G451G | 1 c | N/A | T1353A (GGT → GGA) |
| Strain (ST) | Amino Acid Changes in EF-G (FusA) | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| WT | Q115L | L430S | E433G | G452C | H457Y | H457N | H457L | H457Q | R464L | A655G | |
| SH53(ST3) | 43.1 | 58.4 a | 63.1 | 57.0 | 60.8 b | 54.7 | - | - | 60.6 c | 48.9 d | 52.3 |
| SH54(ST3) | 41.9 | - | - | - | - | 54.7 e | - | - | - | - | - |
| SH43(ST42) | 40.2 | - | - | - | - | 47.6 | - | 41.7 | - | - | - |
| SH141(ST1) | 34.0 | - | - | - | - | 63.2 f | - | - | - | - | - |
| SH29(ST29) | 44.7 | - | - | - | - | - | 56.1 | - | - | - | - |
| Comparison of the DT between WT isolates (n = 5) and EF-G (FusA) mutant isolates (n = 28) | |||||||||||
| Test | Statistic | df | p value | Effect size | 95% CI (difference) | ||||||
| Welch two-sample t | t = −6.34 | ≈10.0 | <0.0001 * | Cohen’s d = 2.02 | 9.71 to 20.23 min | ||||||
| Mann–Whitney U | U = 6.5 | - | ≈0.0015 * | - | - | ||||||
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Ho, C.-M.; Lin, L.-C.; Ou, Y.-H.; Lin, K.-H.; Lu, J.-J. Elongation Factor-G (fusA) Mutations That Confer Fusidic Acid Resistance in Staphylococcus haemolyticus. Antibiotics 2026, 15, 589. https://doi.org/10.3390/antibiotics15060589
Ho C-M, Lin L-C, Ou Y-H, Lin K-H, Lu J-J. Elongation Factor-G (fusA) Mutations That Confer Fusidic Acid Resistance in Staphylococcus haemolyticus. Antibiotics. 2026; 15(6):589. https://doi.org/10.3390/antibiotics15060589
Chicago/Turabian StyleHo, Cheng-Mao, Lee-Chung Lin, Yu-Hsiang Ou, Kai-Hsiang Lin, and Jang-Jih Lu. 2026. "Elongation Factor-G (fusA) Mutations That Confer Fusidic Acid Resistance in Staphylococcus haemolyticus" Antibiotics 15, no. 6: 589. https://doi.org/10.3390/antibiotics15060589
APA StyleHo, C.-M., Lin, L.-C., Ou, Y.-H., Lin, K.-H., & Lu, J.-J. (2026). Elongation Factor-G (fusA) Mutations That Confer Fusidic Acid Resistance in Staphylococcus haemolyticus. Antibiotics, 15(6), 589. https://doi.org/10.3390/antibiotics15060589

