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Binding of tetracyclines to elongation factor Tu, the Tet repressor, and the ribosome: a molecular dynamics simulation study
- Source :
- Biochemistry, Biochemistry, American Chemical Society, 2008, 47 (51), pp.13594-603. ⟨10.1021/bi801726q⟩
- Publication Year :
- 2008
-
Abstract
- International audience; Tetracycline (Tc) is a broad-spectrum antibiotic that kills bacteria by interrupting protein biosynthesis. It is thought that the bacteriostatic action of Tc is associated with its binding to the acceptor site (or A site) in the bacterial ribosome, interfering with the attachment of aminoacyl-tRNA. Recently, however, the crystal structure of a complex between Tc and trypsin-modified elongation factor Tu (tm-EF-Tu) was determined, raising the question of whether Tc binding to EF-Tu has a role in its inhibition of protein synthesis. We address this question using computer simulations. As controls, we first compute relative ribosome binding free energies for seven Tc variants for which experimental data are available, obtaining good agreement. We then consider the binding of Tc to both the trypsin-modified and unmodified EF-Tu-GDP complexes. We show that the direct contribution of EF-Tu to the binding free energy is negligible; rather, the binding can be solely attributed to interactions of Tc with a bridging Mg(2+) ion and the GDP phosphate groups. The effects of trypsin modification are modest. Further, our calculations show that EF-Tu does not exhibit any binding preference for Tc over the nonantibiotic, 4-dedimethyl-Tc, and EF-Tu does not bind the Tc analogue tigecycline, which is a potent antibiotic. In contrast, both the ribosome and the Tet Repressor protein (involved in Tc resistance) do show a binding preference for Tc over 4-dedimethyl-Tc, and the ribosome prefers to bind tigecycline over Tc. Overall, our results provide insights into the binding properties of tetracyclines and support the idea that EF-Tu is not their primary target.
- Subjects :
- MESH: Guanosine Diphosphate
Plasma protein binding
medicine.disease_cause
Crystallography, X-Ray
MESH: Tetracycline
01 natural sciences
Biochemistry
Ribosome
chemistry.chemical_compound
MESH: Magnesium
Protein biosynthesis
Magnesium
0303 health sciences
MESH: Escherichia coli
MESH: Models, Chemical
Trypsin
MESH: Phosphates
Thermodynamics
MESH: Thermodynamics
EF-Tu
medicine.drug
Protein Binding
MESH: Ions
Biology
Peptide Elongation Factor Tu
010402 general chemistry
Guanosine Diphosphate
Models, Biological
Phosphates
03 medical and health sciences
MESH: Computer Simulation
MESH: Peptide Elongation Factor Tu
medicine
Escherichia coli
MESH: Protein Binding
[SDV.BBM]Life Sciences [q-bio]/Biochemistry, Molecular Biology
Computer Simulation
030304 developmental biology
Ions
Bacteria
MESH: Models, Biological
Tetracycline
MESH: Crystallography, X-Ray
0104 chemical sciences
MESH: Bacteria
A-site
chemistry
Models, Chemical
Guanosine diphosphate
Biophysics
MESH: Ribosomes
Ribosomes
Subjects
Details
- ISSN :
- 15204995 and 00062960
- Volume :
- 47
- Issue :
- 51
- Database :
- OpenAIRE
- Journal :
- Biochemistry
- Accession number :
- edsair.doi.dedup.....0fbc95d0fc428abc78570ce0899e45ef
- Full Text :
- https://doi.org/10.1021/bi801726q⟩