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1 ction, transmission electron microscopy, and differential interference contrast microscopy.
2 e distinct capsular reactions when viewed by differential interference contrast microscopy.
3  embryo are collected in the z axis by using differential interference contrast microscopy.
4 eme fragments as monitored by video-enhanced differential interference contrast microscopy.
5 sin-coated bead motility assay observed with differential interference contrast microscopy.
6  each grating was measured using calibrated, differential interference contrast microscopy.
7 ction of emerging HbS polymers using optical differential interference contrast microscopy after lase
8 n vertebrate-cultured cells using time-lapse differential interference contrast microscopy after micr
9 nt publications reported, however, that with differential interference contrast microscopy, all midgu
10 crotubules were visualized by video-enhanced differential interference contrast microscopy and cells
11 analicular membrane structure as observed by differential interference contrast microscopy and F-acti
12 rmined by contrast changes in ribs imaged by differential interference contrast microscopy and fluore
13         We used two-photon imaging, infrared-differential interference contrast microscopy and patch
14 chnique described here, and a combination of differential interference contrast microscopy and von Wi
15  with microvilli and microridges observed by differential interference contrast microscopy and were s
16                            Using millisecond differential interference-contrast microscopy and analyz
17  easy to identify using video-enhanced color differential interference contrast microscopy, and they
18 the loss of granule contents as monitored by differential interference contrast microscopy; and the f
19           Phase-contrast techniques, such as differential interference contrast microscopy, are widel
20                               When viewed by differential interference contrast microscopy, binding o
21      Our study demonstrates that millisecond differential interference-contrast microscopy can be a u
22                                      We used differential interference contrast microscopy, coupled w
23                                              Differential-interference-contrast microscopy demonstrat
24 d nanorods at nonplasmonic wavelengths under differential interference contrast microscopy (DIC).
25 DPA) was monitored by Raman spectroscopy and differential interference contrast microscopy during ger
26 laments has been visualized by dark-field or differential-interference-contrast microscopy, methods h
27    However, this model was challenged by the differential interference contrast microscopy observatio
28                                              Differential interference contrast microscopy reveals th
29                             Fluorescence and differential interference contrast microscopy showed pol
30 ht scattering, dynamic light scattering, and differential interference contrast microscopy to confirm
31  dipicolinic acid (DPA) was then measured by differential interference contrast microscopy to monitor
32  from translational motions in the z-axis in differential interference contrast microscopy to result
33 nuclear localization by video-enhanced color differential interference contrast microscopy (VEC-DIC),
34 -simultaneous three-dimensional fluorescence/differential interference contrast microscopy was used t
35                         Here, video-enhanced differential interference contrast microscopy was used t
36                                              Differential interference contrast microscopy was used t
37                       Using fluorescence and differential interference contrast microscopies, we moni
38  nucleated assembly assay and video-enhanced differential interference contrast microscopy, we demons
39                               For example in differential interference contrast microscopy which play
40                                   Time-lapse differential interference contrast microscopy with quant
41 vanced light microscopy technique, episcopic differential interference contrast microscopy with the s
42 microscopy) and ciliary beat frequency (CBF; differential interference contrast microscopy) with a si

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