TY - JOUR
T1 - Rapid, topology-based particle tracking for high-resolution measurements of large complex 3D motion fields
AU - Patel, Mohak
AU - Leggett, Susan E.
AU - Landauer, Alexander K.
AU - Wong, Ian Y.
AU - Franck, Christian
N1 - Funding Information:
We acknowledge funding from the National Institute of Environmental Health Sciences (T32-ES007272), the National Institute of General Medical Sciences (P30-GM110759), the National Cancer Institute (R21-CA212932), the National Science Foundation (DGE 1058262), and the Office of Naval Research (Dr. Tim Bentley, N000141712644). We wish to thank S. Javaid and D. A. Haber (Massachusetts General Hospital) for the gift of MDA-MB-231 cell line stably transfected with cytoplasmic GFP, M. S. Hall for providing code for FVRM and W. R. Legant for providing his particle tracking code.
Publisher Copyright:
© 2018 The Author(s).
PY - 2018/12/1
Y1 - 2018/12/1
N2 - Spatiotemporal tracking of tracer particles or objects of interest can reveal localized behaviors in biological and physical systems. However, existing tracking algorithms are most effective for relatively low numbers of particles that undergo displacements smaller than their typical interparticle separation distance. Here, we demonstrate a single particle tracking algorithm to reconstruct large complex motion fields with large particle numbers, orders of magnitude larger than previously tractably resolvable, thus opening the door for attaining very high Nyquist spatial frequency motion recovery in the images. Our key innovations are feature vectors that encode nearest neighbor positions, a rigorous outlier removal scheme, and an iterative deformation warping scheme. We test this technique for its accuracy and computational efficacy using synthetically and experimentally generated 3D particle images, including non-affine deformation fields in soft materials, complex fluid flows, and cell-generated deformations. We augment this algorithm with additional particle information (e.g., color, size, or shape) to further enhance tracking accuracy for high gradient and large displacement fields. These applications demonstrate that this versatile technique can rapidly track unprecedented numbers of particles to resolve large and complex motion fields in 2D and 3D images, particularly when spatial correlations exist.
AB - Spatiotemporal tracking of tracer particles or objects of interest can reveal localized behaviors in biological and physical systems. However, existing tracking algorithms are most effective for relatively low numbers of particles that undergo displacements smaller than their typical interparticle separation distance. Here, we demonstrate a single particle tracking algorithm to reconstruct large complex motion fields with large particle numbers, orders of magnitude larger than previously tractably resolvable, thus opening the door for attaining very high Nyquist spatial frequency motion recovery in the images. Our key innovations are feature vectors that encode nearest neighbor positions, a rigorous outlier removal scheme, and an iterative deformation warping scheme. We test this technique for its accuracy and computational efficacy using synthetically and experimentally generated 3D particle images, including non-affine deformation fields in soft materials, complex fluid flows, and cell-generated deformations. We augment this algorithm with additional particle information (e.g., color, size, or shape) to further enhance tracking accuracy for high gradient and large displacement fields. These applications demonstrate that this versatile technique can rapidly track unprecedented numbers of particles to resolve large and complex motion fields in 2D and 3D images, particularly when spatial correlations exist.
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U2 - 10.1038/s41598-018-23488-y
DO - 10.1038/s41598-018-23488-y
M3 - Article
C2 - 29615650
AN - SCOPUS:85045011644
SN - 2045-2322
VL - 8
JO - Scientific reports
JF - Scientific reports
IS - 1
M1 - 5581
ER -