Research section Research projects and references

Research: EBOLA Folding Project #18295

Project #18295 overview

Project Summary AI Beta

This project tests different computer models used to simulate how atoms move in molecules. These models are like virtual force fields that help scientists understand how proteins behave. The team is using a protein from the Ebola virus as a test subject, looking at how well the models can predict its shape and how it changes when mutated.
Automated summary; simplified and may not be fully accurate.

Project team

Manager(s)
Justin Miller
Institution
University of Pennsylvania

Work unit

Atoms
28,839
Core
0x28
Status
Beta
Source material

Official Project Description

Force fields aren't only a thing in far off galaxies, but are also an integral part of molecular dynamics simulations.

Principally, molecular dynamics simulations are evaluating Newton's laws of motion iteratively.

Each atom in the simulation is given a position, velocity, and has some forces acting upon it.

We then take a short step forward in time (often 2-4 femtoseconds), update the positions of each atom based on the last known position, velocity, and acceleration, before re-evaluating the forces acting upon each atom.

Repeating this millions to trillions of times (or more), gives us a physics-based movie of atoms moving which we use to give insight into the behavior of our favorite proteins. One of the fundamental steps of this process is calculating the forces on each atom.

The collective model describing how to calculate these forces is called a force field.

Through the years, many force fields have been derived and refined, each one focusing on improving certain forces or behaviors of the simulation.

While tests are usually performed when force fields are redeveloped, it is difficult to achieve robust sampling (e.g.

many observations of rare events).

Here, we are continuing our efforts to catalog the performance and accuracy of these force fields.

In this project series, we use the ebolavirus protein VP35, as our test model.

VP35 is used by ebolavirus to protect viral RNA from recognition by the immune system which the Bowman lab has extensively characterized.

Notably, we have identified a cryptic pocket which we have experimentally characterized, along with several mutations that both close and open the pocket.

This suite of data provides a robust means to characterize the ability of force fields to both identify cryptic pockets as well as the sensitivity of force fields to mutations in proteins. p18291 - amber14sb with tip3p water. p18292 - charmm36m with tip3p water. p18294 - aadisp with aadisp water. p18295 - amber99sb*-ILDN with tip4pd water.

Performance data

Hardware Performance for Project 18295

Compare community-sampled Folding@Home output for the GPUs and CPUs processing this project.

Data as of Saturday, 03 October 2026 18:23:45

GPU PPD Averages

Rank
Project
Model Name
Folding@Home Identifier
Make
Brand
GPU
Model
PPD
Average
Points WU
Average
WUs Day
Average
WU Time
Average
1 Radeon RX 6400 / 6500 XT
Navi 24 [Radeon RX 6400 / 6500 XT]
AMD Navi 24 1,105,153 19,458 56.80 0 hrs 25 mins