If you’re a molecular modeler dealing with complex simulations, you’ve probably faced challenges in implementing pulling simulations to study inter-molecular interactions or molecular dynamics. In this blog post, we’ll dive into the concept of center-of-mass (COM) pulling, a crucial simulation technique, and how to effectively accomplish it using the GROMACS Wizard in SAMSON.
COM pulling allows you to simulate the movement of molecular components relative to each other along specific directions. For example, this technique is instrumental in studying protein-ligand binding/unbinding or tracking interactions between biomolecular chains. The GROMACS Wizard in SAMSON simplifies this process significantly, providing an intuitive, visual workflow.
Why COM Pulling Matters
Understanding inter-molecular interactions greatly benefits from pulling experiments. Specifically, COM pulling:
- Helps quantify forces needed to separate molecular groups.
- Enables umbrella sampling simulations for free energy calculations.
- Provides insights into structural rearrangements during pulling.
However, setting up such a simulation manually can be daunting. Parameters like pull directions, box dimensions, and pulling rates must be carefully calibrated. Errors in these steps can lead to incorrect results or failed simulations. Thankfully, SAMSON’s GROMACS Wizard streamlines these processes.
Step-by-Step Guide to COM Pulling
Let’s explore how you can set up a center-of-mass pulling simulation between two molecular chains using GROMACS Wizard:
Preparation and Orientation
Load your molecular system into SAMSON. For this example, we use the 2BEG system, which contains five chains. The goal is to pull chain A away from chain B. Visualize and orient the system in SAMSON’s Viewport for better control. You can adjust the orientation using the Compass tool, ensuring the pulling direction aligns with axes for simplicity.

Setting the Simulation Box
A proper simulation box ensures smooth pulling without boundary interference. For this example:
- Define an orthorhombic box.
- Set its dimensions to account for a pull distance of 5 nm along the z-axis, ensuring the box length in this direction is at least 12 nm for periodicity.
- Configure the center-of-mass alignment to avoid issues with periodic boundary conditions.
You’ll see a visual representation of the simulation box in SAMSON.

Neutralizing the System with Ions
Ensure electrical neutrality by adding ions such as Na and Cl. For enhanced realism, simulate an additional 100 mM NaCl salt concentration. SAMSON allows you to visually verify ion placement within the system.

Configuring Pulling Parameters
Once the system is prepared and minimized, head to the Simulation tab to define the center-of-mass pulling parameters:
- Create index groups for the pulling targets, e.g., chain A and chain B.
- Set the pulling distance, rate, and force constant. For instance, pull chain A from chain B in the z-direction at 0.01 nm/ps (5 nm over 0.5 ns) with a force constant of 1000 kJ mol-1 nm-2.

Monitor and Analyze Results
Once the simulation completes, you can analyze pulling results by examining the force and displacement over time. The output plots reveal how the pull force evolves and highlight internal forces resisting molecular separation. Additionally, the results can set the stage for advanced analyses like umbrella sampling to calculate free-energy profiles.

Conclusion
Mastering COM pulling provides molecular modelers with a powerful tool to investigate molecular interactions and mechanics. With the GROMACS Wizard in SAMSON, setting up and running these simulations has never been easier. For more in-depth guidance and examples, visit the official documentation.
SAMSON and all SAMSON Extensions are free for non-commercial use. You can download SAMSON from here.
