English

Model comparison and assessment for single particle tracking in biological fluids

Applications 2015-12-01 v2

Abstract

State-of-the-art techniques in passive particle-tracking microscopy provide high-resolution path trajectories of diverse foreign particles in biological fluids. For particles on the order of 1 micron diameter, these paths are generally inconsistent with simple Brownian motion. Yet, despite an abundance of data confirming these findings and their wide-ranging scientific implications, stochastic modeling of the complex particle motion has received comparatively little attention. Even among posited models, there is virtually no literature on likelihood-based inference, model comparisons, and other quantitative assessments. In this article, we develop a rigorous and computationally efficient Bayesian methodology to address this gap. We analyze two of the most prevalent candidate models for 30 second paths of 1 micron diameter tracer particles in human lung mucus: fractional Brownian motion (fBM) and a Generalized Langevin Equation (GLE) consistent with viscoelastic theory. Our model comparisons distinctly favor GLE over fBM, with the former describing the data remarkably well up to the timescales for which we have reliable information.

Cite

@article{arxiv.1407.5962,
  title  = {Model comparison and assessment for single particle tracking in biological fluids},
  author = {Martin Lysy and Natesh S. Pillai and David B. Hill and M. Gregory Forest and John Mellnik and Paula Vasquez and Scott A. McKinley},
  journal= {arXiv preprint arXiv:1407.5962},
  year   = {2015}
}

Comments

24 pages, 10 figures + supplementary material

R2 v1 2026-06-22T05:10:11.125Z