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Driving forces of gyrase recognition by the addiction toxin CcdB
Mario Simic1, Natalie De Jonge, Remy Loris
1University of Ljubljana, Faculty of Chemistry and Chemical Technology, 1000 Ljubljana, Slovenia.
Abstract:
Gyrase, an essential bacterial topoisomerase, is the target of several antibiotics (e.g. quinolones) as well as of bacterial toxin CcdB. This toxin, encoded by Escherichia coli toxin-antitoxin module ccd, poisons gyrase by causing inhibition of both transcription and replication. Because the molecular driving forces of gyrase unfolding and CcdB-gyrase binding were unknown, the nature of the CcdB-gyrase recognition remained elusive. Therefore, we performed a detailed thermodynamic analysis of CcdB binding to several fragments of gyrase A subunit (GyrA) that contain the CcdB-binding site. Binding of CcdB to the shorter fragments was studied directly by isothermal titration calorimetry. Its binding to the longer GyrA59 fragment in solution is kinetically limited and was therefore investigated via urea induced unfolding of the GyrA59-CcdB complex and unbound GyrA59 and CcdB, monitored by circular dichroism spectroscopy. Model analysis of experimental data, in combination with the relevant structural information, indicates that CcdB binding to gyrase is an enthalpic process driven mainly by specific interactions between CcdB and the highly stable dimerization domain of the GyrA. The dissection of binding energetics indicates that CcdB-gyrase recognition is accompanied by opening of the tower and catalytic domain of GyrA. Such extensive structural rearrangements appear to be crucial driving forces for the functioning of the ccd toxin-antitoxin module.
Insights
The bacterial toxin CcdB binds to gyrase through specific interactions, driven by enthalpy. This binding causes structural changes in gyrase, crucial for the toxin-antitoxin module
Area of Science:
- Molecular biology
- Biochemistry
- Structural biology
Background:
- Gyrase, a bacterial topoisomerase, is vital for DNA replication and transcription.
- It is targeted by antibiotics and the bacterial toxin CcdB.
- The molecular mechanisms of CcdB-gyrase interaction were previously unclear.
Purpose of the Study:
- To thermodynamically analyze CcdB binding to gyrase A subunit (GyrA) fragments.
- To elucidate the molecular driving forces behind CcdB-gyrase recognition.
- To understand the structural rearrangements involved in CcdB intoxication.
Main Methods:
- Isothermal titration calorimetry (ITC) for CcdB binding to short GyrA fragments.
- Circular dichroism (CD) spectroscopy to monitor urea-induced unfolding of GyrA59-CcdB complex.
- Thermodynamic analysis and modeling combined with structural data.
Main Results:
- CcdB binding to gyrase is an enthalpic process driven by specific interactions with the GyrA dimerization domain.
- Binding involves significant structural rearrangements, including the opening of GyrA's tower and catalytic domains.
- The study identified key energetic contributions to CcdB-gyrase recognition.
Conclusions:
- CcdB-gyrase recognition is primarily driven by specific enthalpic interactions.
- Extensive structural rearrangements in gyrase are essential for CcdB toxin activity.
- These findings provide insights into the mechanism of toxin-antitoxin systems.
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