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Operational Principles for the Dynamics of the In Vitro ParA-ParB System
Lavisha Jindal1, Eldon Emberly1
1Physics Department, Simon Fraser University, Burnaby, British Columbia, Canada.
Abstract:
In many bacteria the ParA-ParB protein system is responsible for actively segregating DNA during replication. ParB proteins move by interacting with DNA bound ParA-ATP, stimulating their unbinding by catalyzing hydrolysis, that leads to rectified motion due to the creation of a wake of depleted ParA. Recent in vitro experiments have shown that a ParB covered magnetic bead can move with constant speed over a DNA covered substrate that is bound by ParA. It has been suggested that the formation of a gradient in ParA leads to diffusion-ratchet like motion of the ParB bead but how it forms and generates a force is still a matter of exploration. Here we develop a deterministic model for the in vitro ParA-ParB system and show that a ParA gradient can spontaneously form due to any amount of initial spatial noise in bound ParA. The speed of the bead is independent of this noise but depends on the ratio of the range of ParA-ParB force on the bead to that of removal of surface bound ParA by ParB. We find that at a particular ratio the speed attains a maximal value. We also consider ParA rebinding (including cooperativity) and ParA surface diffusion independently as mechanisms for ParA recovery on the surface. Depending on whether the DNA covered surface is undersaturated or saturated with ParA, we find that the bead can accelerate persistently or potentially stall. Our model highlights key requirements of the ParA-ParB driving force that are necessary for directed motion in the in vitro system that may provide insight into the in vivo dynamics of the ParA-ParB system.
Insights
The ParA-ParB bacterial system
Area of Science:
- Bacterial cell division and DNA segregation
- Protein-DNA interactions
- Biophysics of molecular motors
Background:
- The ParA-ParB protein system is crucial for active DNA segregation during bacterial replication.
- ParB movement over ParA-bound DNA, driven by ParA-ATP hydrolysis, creates directed motion.
- Previous in vitro studies observed ParB-bead movement on ParA-DNA substrates, suggesting a gradient-driven mechanism.
Purpose of the Study:
- To develop a deterministic model of the in vitro ParA-ParB system.
- To investigate the spontaneous formation of ParA gradients and their role in bead motion.
- To identify key factors influencing the speed and dynamics of the ParB-bead system.
Main Methods:
- Development of a deterministic mathematical model for the in vitro ParA-ParB system.
- Analysis of spontaneous ParA gradient formation from initial spatial noise.
- Modeling of ParA rebinding, surface diffusion, and their impact on bead dynamics.
Main Results:
- A ParA gradient can spontaneously form due to initial spatial noise in bound ParA.
- Bead speed is independent of noise but dependent on the ratio of ParA-ParB force range to ParA removal range.
- Maximal bead speed is achieved at a specific force-to-removal ratio; bead dynamics depend on ParA surface saturation.
Conclusions:
- The model elucidates the requirements for ParA-ParB driving force in directed motion.
- Spontaneous ParA gradient formation is a key mechanism for rectified motion.
- Findings offer insights into the in vivo dynamics of bacterial DNA segregation systems.

