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( A ) Membrane labeling of <t>HUVEC</t> monolayers with CellMask. ( B ) Corresponding fluorescent bead image (beads of size 0.2 μ m ). Arrows indicate bead-related image artifacts ( C ) PIV-UQ displacement field u PIV ( D ) PIV-UQ uncertainty map, σ u , P I V . White regions indicate “bad” PIV windows that were deleted and replaced as described in § 2.2. Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of bootstrapped PIV-UQ distribution. ( E ) Inferred mean marginal posterior traction stress, t ^ ( F ) Marginal posterior traction stress uncertainty field ( σ t ). Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of marginal posterior p ( t | u h ) . Scale bar : 25 μ m
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( A ) Membrane labeling of <t>HUVEC</t> monolayers with CellMask. ( B ) Corresponding fluorescent bead image (beads of size 0.2 μ m ). Arrows indicate bead-related image artifacts ( C ) PIV-UQ displacement field u PIV ( D ) PIV-UQ uncertainty map, σ u , P I V . White regions indicate “bad” PIV windows that were deleted and replaced as described in § 2.2. Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of bootstrapped PIV-UQ distribution. ( E ) Inferred mean marginal posterior traction stress, t ^ ( F ) Marginal posterior traction stress uncertainty field ( σ t ). Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of marginal posterior p ( t | u h ) . Scale bar : 25 μ m
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( A ) Membrane labeling of HUVEC monolayers with CellMask. ( B ) Corresponding fluorescent bead image (beads of size 0.2 μ m ). Arrows indicate bead-related image artifacts ( C ) PIV-UQ displacement field u PIV ( D ) PIV-UQ uncertainty map, σ u , P I V . White regions indicate “bad” PIV windows that were deleted and replaced as described in § 2.2. Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of bootstrapped PIV-UQ distribution. ( E ) Inferred mean marginal posterior traction stress, t ^ ( F ) Marginal posterior traction stress uncertainty field ( σ t ). Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of marginal posterior p ( t | u h ) . Scale bar : 25 μ m

Journal: PLOS Computational Biology

Article Title: Uncertainty-aware traction force microscopy

doi: 10.1371/journal.pcbi.1013079

Figure Lengend Snippet: ( A ) Membrane labeling of HUVEC monolayers with CellMask. ( B ) Corresponding fluorescent bead image (beads of size 0.2 μ m ). Arrows indicate bead-related image artifacts ( C ) PIV-UQ displacement field u PIV ( D ) PIV-UQ uncertainty map, σ u , P I V . White regions indicate “bad” PIV windows that were deleted and replaced as described in § 2.2. Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of bootstrapped PIV-UQ distribution. ( E ) Inferred mean marginal posterior traction stress, t ^ ( F ) Marginal posterior traction stress uncertainty field ( σ t ). Uncertainty arrows denote the pointwise angular uncertainty corresponding to 1 circular std. dev. of marginal posterior p ( t | u h ) . Scale bar : 25 μ m

Article Snippet: Human vascular umbilical endothelial vein cells (HUVECs) (Cell Applications) were cultured in M199 (Gibco) supplemented with 10 % (v/v) endothelial growth medium (Cell Applications), 10 % (v/v) fetal bovine serum (Gibco), and 1 % penicillin-streptomycin (Gibco).

Techniques: Membrane, Labeling