Free form deformation-based image registration improves accuracy of traction force microscopy
Entity
UAM. Departamento de Medicina; Instituto de Investigación Sanitaria Hospital Universitario de La Paz (IdiPAZ)Publisher
Public Library of ScienceDate
2015-12-01Citation
10.1371/journal.pone.0144184
PLoS ONE 10.12 (2015): e0144184
ISSN
1932-6203DOI
10.1371/journal.pone.0144184Funded by
Funded by Ministerio de Economía y Competividad (ES); url: http://www.mineco.gob.es/; RyC2010-06094, Fundación Ramón Areces (ES); url: http://www.fundacionareces.es/fundacionareces/, Ministerío de Economía y Competividad (ES); url: http://www.mineco.gob.es/; SAF2011-24953 (MVM); Ministerio de Economía y Competividad (ES); url: http://www.mineco.gob.es/; DPI2012-38090-C1, European Research Council (BE); url: http://erc. europa.eu/; 306751 (JMGA); European Research Council (BE); url: http://erc.europa.eu/; 308223 (HVO); Ministerio de Economía y Competividad (ES); url: http://www.mineco.gob.es/; DPI2012-38090-C3 (COS); and Ministerio de Economía y Competividad (ES); url: http://www.mineco.gob.es/; TEC2013- 48552-C2-1-R (AMB)Project
Gobierno de España. RyC2010-06094; Gobierno de España. SAF2011-24953; Gobierno de España. DPI2012-38090-C1; Gobierno de España. DPI2012-38090-C3; Gobierno de España. TEC2013- 48552-C2-1-R; info:eu-repo/grantAgreement/EC/FP7/306751; info:eu-repo/grantAgreement/EC/FP7/308223Editor's Version
http://dx.doi.org/10.1371/journal.pone.0144184Subjects
Traction Force Microscopy; Recover cellular; Deformation; MedicinaRights
© 2015 Jorge-Peñas et alAbstract
Traction Force Microscopy (TFM) is a widespread method used to recover cellular tractions
from the deformation that they cause in their surrounding substrate. Particle Image Velocimetry
(PIV) is commonly used to quantify the substrate’s deformations, due to its simplicity
and efficiency. However, PIV relies on a block-matching scheme that easily underestimates
the deformations. This is especially relevant in the case of large, locally non-uniform deformations
as those usually found in the vicinity of a cell’s adhesions to the substrate. To overcome
these limitations, we formulate the calculation of the deformation of the substrate in
TFM as a non-rigid image registration process that warps the image of the unstressed material
to match the image of the stressed one. In particular, we propose to use a B-spline
-based Free Form Deformation (FFD) algorithm that uses a connected deformable mesh to
model a wide range of flexible deformations caused by cellular tractions. Our FFD approach
is validated in 3D fields using synthetic (simulated) data as well as with experimental data
obtained using isolated endothelial cells lying on a deformable, polyacrylamide substrate.
Our results show that FFD outperforms PIV providing a deformation field that allows a better
recovery of the magnitude and orientation of tractions. Together, these results demonstrate
the added value of the FFD algorithm for improving the accuracy of traction recovery
Files in this item
Google Scholar:Jorge-Peñas, Alvaro
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Izquierdo-Álvarez, Alicia
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Aguilar-Cuenca, Rocio
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Vicente-Manzanares, Miguel
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Garcia-Aznar, José Manuel
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Van Oosterwyck, Hans
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Juan-Pardo, Elena M. de
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Ortiz-De-Solorzano, Carlos
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Muñoz-Barrutia, Arrate
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