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Published on: June 12, 2019
Regulation of the ordinal DNA translocation cycle in bacteriophage Φ29 through trans-subunit interactions
Rokas Dargis1, Joshua Pajak2, Pavan Ariyawansa1
1Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708.
Abstract:
Certain viruses such as tailed bacteriophages and herpes simplex virus package double-stranded DNA into empty procapsids via powerful, ring-shaped molecular motors. High-resolution structures and force measurements on the DNA packaging motor of bacteriophage Φ29 revealed that its five ATPase subunits coordinate ATP hydrolysis with each other to maintain the proper cyclic sequence of DNA translocation steps about the ring. Here, we explore how the Φ29 motor regulates translocation by timing key events, namely ATP binding/hydrolysis and DNA gripping, through trans-subunit interactions. We used subunit dimers bound to DNA as our model system, a minimal system that still captures the conformation and trans-subunit interactions of the full pentameric motor complex. Molecular dynamics simulations of all-ATP and mixed ATP-ADP dimers revealed that the nucleotide occupancy of one subunit strongly affects the ability to hydrolyze ATP in the adjacent subunit by altering the free energy landscape of its catalytic glutamate approaching the gamma phosphate of ATP. Specifically, one ATP-bound subunit donates residues in trans that sterically block the neighboring subunit's catalytic glutamate. This steric hindrance is resolved when the first subunit hydrolyzes ATP and is ADP bound. This obstructive mechanism is supported by functional mutagenesis and appears to be conserved across several Φ29 relatives. Mutual information analysis of our simulations revealed intersubunit signaling pathways, via the trans-acting obstructive residues, that allow for sensing and communication between the binding pockets of adjacent subunits. This work reveals how the sequential order of DNA translocation events among subunits is preserved through trans-subunit interactions and pathways.
Insights
Viral DNA packaging motors use coordinated ATP hydrolysis for DNA translocation. This study reveals how subunit interactions in the bacteriophage Φ29 motor precisely time ATP binding and hydrolysis, ensuring efficient DNA packaging.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Viruses like bacteriophages and herpes simplex virus utilize ring-shaped molecular motors to package double-stranded DNA into procapsids.
- The bacteriophage Φ29 DNA packaging motor, a well-studied example, consists of five ATPase subunits that coordinate ATP hydrolysis for DNA translocation.
Purpose of the Study:
- To investigate the regulatory mechanisms governing DNA translocation timing in the Φ29 motor.
- To elucidate how trans-subunit interactions control key events like ATP binding/hydrolysis and DNA gripping.
Main Methods:
- Utilized subunit dimers bound to DNA as a minimal model system.
- Performed molecular dynamics simulations of all-ATP and mixed ATP-ADP dimers.
- Employed functional mutagenesis and mutual information analysis.
Main Results:
- Demonstrated that nucleotide occupancy in one subunit influences ATP hydrolysis in adjacent subunits via altered free energy landscapes.
- Identified a steric hindrance mechanism where ATP-bound subunits block neighboring catalytic glutamates, resolved upon ATP hydrolysis.
- Revealed intersubunit signaling pathways mediated by trans-acting residues, enabling communication between binding pockets.
Conclusions:
- The Φ29 motor regulates DNA translocation through precise timing of ATP hydrolysis and DNA gripping, orchestrated by trans-subunit interactions.
- A steric obstructive mechanism, conserved across Φ29 relatives, ensures the sequential order of events in the motor's cycle.
- Intersubunit communication via signaling pathways is crucial for maintaining the coordinated function of the pentameric motor complex.
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