A computational tool integrating host immunity with antibiotic dynamics to study tuberculosis treatment

Submitted by kirschne on

While active tuberculosis (TB) is a treatable disease, many complex factors prevent its global elimination. Part of the difficulty in developing optimal therapies is the large design space of antibiotic doses, regimens and combinations. Computational models that capture the spatial and temporal dynamics of antibiotics at the site of infection can aid in reducing the design space of costly and time-consuming animal pre-clinical and human clinical trials.

Multiscale Particle-Based Modeling of Flowing Platelets in Blood Plasma Using Dissipative Particle Dynamics and Coarse Grained Molecular Dynamics

Submitted by jawaadsheriff on

We developed a multiscale particle-based model of platelets, to study the transport dynamics of shear stresses between the surrounding fluid and the platelet membrane. This model facilitates a more accurate prediction of the activation potential of platelets by viscous shear stresses - one of the major mechanisms leading to thrombus formation in cardiovascular diseases and in prosthetic cardiovascular devices. The interface of the model couples coarse-grained molecular dynamics (CGMD) with dissipative particle dynamics (DPD).

A Multiscale Biomechanical Model of Platelets: Correlating With In-Vitro Results

Submitted by jawaadsheriff on

Using dissipative particle dynamics (DPD) combined with coarse grained molecular dynamics (CGMD) approaches, we developed a multiscale deformable platelet model to accurately describe the molecular-scale intra-platelet constituents and biomechanical properties of platelets in blood flow. Our model includes the platelet bilayer membrane, cytoplasm and an elaborate elastic cytoskeleton.

Scalability Test of Multiscale Fluid-Platelet Model for Three Top Supercomputers

Submitted by jawaadsheriff on

We have tested the scalability of three supercomputers: the Tianhe-2, Stampede and CS-Storm with multiscale fluid-platelet simulations, in which a highly-resolved and efficient numerical model for nanoscale biophysics of platelets in microscale viscous biofluids is considered. Three experiments involving varying problem sizes were performed: Exp-S: 680,718-particle single-platelet; Exp-M: 2,722,872-particle 4-platelet; and Exp-L: 10,891,488-particle 16-platelet.

A Phenomenological Particle-Based Platelet Model for Simulating Filopodia Formation During Early Activation

Submitted by jawaadsheriff on

We developed a phenomenological three-dimensional platelet model to characterize the filopodia formation observed during early stage platelet activation. Departing from continuum mechanics based approaches, this coarse-grained molecular dynamics (CGMD) particle-based model can deform to emulate the complex shape change and filopodia formation that platelets undergo during activation. The platelet peripheral zone is modeled with a two-layer homogeneous elastic structure represented by spring-connected particles.

Physics-based mass action dynamics of central metabolism including regulation and thermodynamics

What is being modeled?
Central Metabolism of Neurospora crassa
Description & purpose of resource

This is a physics-based model of central metabolism of Neurospora crassa, a filamentous fungi, in which physiologically reasonable rate constants are inferred from data and physical principles. The model addresses mass action dynamics, regulation of metabolism, reaction free free energies, and the power generated at each reaction.  It lays the conceptual groundwork for developing more extensive models ("genome scale" models) that use full mass action dynamics and thermodynamics.

Spatial scales
molecular
cellular
Temporal scales
10-6 - 10-3 s
10-3 - 1 s
This resource is currently
a demonstration or a framework to be built upon (perhaps with a sample implementation)
Has this resource been validated?
Yes
How has the resource been validated?

The model incorporates experimental data into the inference and results in rate constants that are consistent with experimentally measured metabolite concentrations.

Can this resource be associated with other resources? (e.g.: modular models, linked tools and platforms)
Yes
Which resources?

This tool can be used with the eQuilibrator api (https://gitlab.com/equilibrator/equilibrator-api) or data from the web interface (http://equilibrator.weizmann.ac.il/). 

Key publications (e.g. describing or using resource)

Cannon, W.R., et al., Prediction of metabolite concentrations, rate constants and post-translational regulation using maximum entropy-based simulations with application to central metabolism of Neurospora crassa. Processes, 2018. 6(6).

Collaborators
Bill Cannon
PI contact information
william.cannon@pnnl.gov
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A Multiple Time Stepping Algorithm for Efficient Multiscale Modeling of Platelets Flowing in Blood Plasma

Submitted by jawaadsheriff on

We developed a multiple time-stepping (MTS) algorithm for multiscale modeling of the dynamics of platelets flowing in viscous blood plasma. This MTS algorithm improves considerably the computational efficiency without significant loss of accuracy. This study of the dynamic properties of flowing platelets employs a combination of the dissipative particle dynamics (DPD) and the coarse-grained molecular dynamics (CGMD) methods to describe the dynamic microstructures of deformable platelets in response to extracellular flow-induced stresses.

Parameterizing the Morse Potential for Coarse-Grained Modeling of Blood Plasma

Submitted by jawaadsheriff on

Multiscale simulations of fluids such as blood represent a major computational challenge of coupling the disparate spatiotemporal scales between molecular and macroscopic transport phenomena characterizing such complex fluids. In this paper, a coarse-grained (CG) particle model is developed for simulating blood flow by modifying the Morse potential, traditionally used in Molecular Dynamics for modeling vibrating structures.

Reducing the effects of compressibility in DPD-based blood flow simulations through severe stenotic microchannels

Submitted by jawaadsheriff on

Viscous fluid flow simulations based on dissipative particle dynamics (DPD) may bear compressible flow effects when flowing through severe stenotic geometries. This is caused by the soft repulsive potential employed in the DPD force field, which limits the particle-based fluid system ability to sustain a large degree of compression. To mitigate this problem, a Morse potential was added to the DPD force field. We studied the fluid properties of the modified fluid model (DPD–Morse) and compared it with a previously published conventional DPD based fluid model.