コーパス検索結果 (1語後でソート)
通し番号をクリックするとPubMedの該当ページを表示します
1 ral organization of EqtII in living cells by single molecule imaging.
2 ian dynein using in vitro reconstitution and single molecule imaging.
3 with the aim of optimising this approach for single molecule imaging.
4 ear x-ray optics and high field physics, and single molecule imaging.
5 by cosedimentation, electron microscopy, and single-molecule imaging.
6 ques and access to a microscope equipped for single-molecule imaging.
7 ecovery after photobleaching experiments and single-molecule imaging.
8 es both challenges and dramatically improves single-molecule imaging.
9 r unamplified nucleic acids that is based on single-molecule imaging.
10 t for two-photon, fluorescence lifetime, and single-molecule imaging.
11 l dynamics of NHEJ complexes using live cell single-molecule imaging.
12 lgorithmic advancements for high-fidelity 3D single-molecule imaging.
13 re soft-landed on a surface for their direct single-molecule imaging.
14 rns on millions of individual nucleosomes by single-molecule imaging.
15 ations common to fluorescence microscopy and single-molecule imaging.
16 from routine gel electrophoresis to advanced single-molecule imaging.
17 NA FluoroCubes provide outstanding tools for single-molecule imaging, allowing the tracking of single
18 that expressing these nanobodies coupled to single-molecule imaging-amenable tags could allow superr
22 lastically coupled reactions is proposed for single molecule imaging and rotor manipulation experimen
23 e of ~100 mum are essential for simultaneous single molecule imaging and single ion-channel electrica
25 response are not well understood, so we used single-molecule imaging and AFM cantilever deflection to
26 gs enable rational nanoprobe engineering for single-molecule imaging and also reveal counter-intuitiv
28 g a combination of cryo-electron microscopy, single-molecule imaging and cell-based signalling approa
33 single-cell sequencing data, as well as from single-molecule imaging and electron micrographs of fixe
34 ecules by the dye YOYO-1 using complementary single-molecule imaging and gel electrophoresis-based da
37 ly well suited for applications in live-cell single-molecule imaging and multiplexed cellular labelin
40 ange of localization applications, including single-molecule imaging and particle tracking, in fields
42 such heterogeneity, we used a combination of single-molecule imaging and reversed-phase liquid chroma
43 e and a combination of techniques, including single-molecule imaging and single-particle electron mic
44 is hand-in-hand with the new development of single-molecule imaging and spectroscopic technology and
46 chers need to have substantial experience in single-molecule imaging and statistical analysis to cond
47 , we present a method combining high-density single-molecule imaging and statistical inference to sep
50 eriments studying a variety of bacteria with single-molecule imaging and tracking during real-time en
53 duce off-target CRISPR base editing, improve single-molecule imaging, and allow live tracking of aden
54 ns in single cells, mRNA and nascent protein single-molecule imaging, and bulk RNA and protein detect
56 d photostability, phototoxicity in live-cell single-molecule imaging, and use of new labels for nanos
57 cribe new approaches of subunit labeling for single-molecule imaging, applied to determine the TERT c
61 orescence in situ hybridization (MERFISH), a single-molecule imaging approach that allows the copy nu
62 discussion is given on the extension of the single-molecule imaging approach to catalysis that does
65 ochemical, biophysical and super-resolution, single molecule imaging approaches demonstrated that the
67 Using a combination of in vitro and in vivo single-molecule imaging approaches, we directly correlat
68 Using single-cell profiling and multimodal single-molecule imaging approaches, we have found that s
71 he foundation for harnessing high-resolution single-molecule imaging as the next frontier for develop
72 ides a powerful tool for long-term live-cell single-molecule imaging, as demonstrated by the imaging
75 index can act as lenses that are capable of single-molecule imaging at 70 degrees C when placed in i
76 ing monomer pool to achieve fast, continuous single-molecule imaging at optimal densities with signal
79 used three-dimensional electron microscopy, single-molecule imaging, biochemistry, and in vivo assay
80 low fluorophore concentrations required for single molecule imaging, both of which may bias native s
84 are applied for the first time to high-speed single-molecule imaging by tracking their lateral mobili
85 Our results demonstrate that the STM-based single-molecule imaging can capture a thorough picture o
90 rate tracking), combining dynamic but sparse single-molecule imaging data with almost-whole populatio
91 on kinetics in their native environment from single-molecule imaging data with substoichiometric labe
92 of in Situ Interaction Kinetics (FISIK) from single-molecule imaging data with substoichiometric labe
97 several techniques (polarization microscopy, single-molecule imaging, emission time dependence, energ
98 ts have been pushing the limits of live-cell single-molecule imaging, enabling the monitoring of inte
104 e relevant for the interpretation of in vivo single-molecule imaging experiments, bacterial photosynt
108 tobleach recovery, fluorescence correlation, single-molecule imaging) have been adapted to measure mo
109 Our technology thus paves the way toward single molecule imaging in cells and living animals, all
111 us, by combining direct genetic labeling and single molecule imaging in vivo, our work establishes an
113 hesized dyes are modifiable and suitable for single-molecule imaging in biological and medical scienc
114 ce light-sheet microscopy to perform in vivo single-molecule imaging in early Drosophila melanogaster
116 e review how new advances in superresolution single-molecule imaging in live cells can track transcri
121 ng and unbinding events in space and time by single-molecule imaging in live primary T cells for a ra
123 SMAC opens the door to the application of single-molecule imaging in noninvasive disease profiling
129 dies emphasize the importance of controls in single-molecule imaging measurements, and indicate that
137 onjugation to streptavidin for high-affinity single molecule imaging of biotinylated receptors on liv
144 tly visualized in dendrites and spines using single-molecule imaging of a diffusion-restricted Venus-
147 escence turn-on probe that enables sustained single-molecule imaging of cellular membranes under stro
157 e molecular details of deactivation, we used single-molecule imaging of green fluorescent protein (GF
158 g currently available XFELs and suggest that single-molecule imaging of individual biomolecules could
159 Here, we combine theoretical modelling with single-molecule imaging of live bacterial cells to show
163 lso compares favorably to what we measure by single-molecule imaging of nonspecifically bound fluores
164 chnology has wide applications for real-time single-molecule imaging of protein-nucleic acid interact
168 y; 2) far-Western blotting; and 3) live cell single-molecule imaging of SH2 membrane recruitment.
169 so demonstrate the possibility of dual-color single-molecule imaging of SNAP-tag fusion proteins.
170 selection of optimal dyes and conditions for single-molecule imaging of SNAP-tagged fusion proteins i
174 of detyrosinated MTs in real time and employ single-molecule imaging of VASH1 bound to its regulatory
176 immobilized cargo molecules, as revealed by single-molecule imaging on polymer-supported membranes.
177 d DNA structures promoted by TRF2-TIN2 using single-molecule imaging platforms, including tracking of
179 ed upconversion nanoparticles are attractive single-molecule imaging probes due to their high photost
184 cipitation followed by mass spectrometry and single-molecule imaging revealed that this Gas5 isoform,
201 l/noise in other techniques such as in vitro single-molecule imaging, stochastic optical reconstructi
203 (CaHydA), we now report electrochemical and single-molecule imaging studies carried out on a catalyt
204 of time-dependent conformation, all previous single-molecule imaging studies of polymer transport inv
210 sposon R-loops were observed by applying the single-molecule imaging technique of atomic force micros
213 vity were measured using bulk solution and a single-molecule imaging technique to investigate the oli
214 single-molecule augmented capture (SMAC), a single-molecule imaging technique to quantify and charac
224 a better exploitation of currently available single-molecule imaging techniques, provides an avenue t
228 wards the ultimate goal of atomic resolution single-molecule imaging that is a prominent justificatio
229 y, our laboratory tests had shown that using single-molecule imaging that shear stress can extend sur
231 expression assay uses molecular barcodes and single molecule imaging to detect and count hundreds of
234 s extracted from brain regions combined with single molecule imaging to monitor how an animal's physi
235 e employ genetics, cell lineage tracing, and single molecule imaging to show that mutations in lin-22
246 ral mechanistic question, this study employs single-molecule imaging to investigate PI3K activation i
249 To address this discrepancy, we applied single-molecule imaging to locate and track type 1 IP3Rs
250 ere we used DNA curtains in conjunction with single-molecule imaging to measure and quantify the bind
251 facilitated dissociation (FD), we have used single-molecule imaging to measure dissociation kinetics
253 approach is presented for the application of single-molecule imaging to membrane receptors through th
254 tal internal reflection (TIR) microscopy and single-molecule imaging to monitor interactions between
255 Here, we utilized CRISPR genome editing and single-molecule imaging to monitor RTEL1 movement within
256 ome editing, super-resolution, and live-cell single-molecule imaging to probe subcellular composition
258 ther, our studies demonstrate the utility of single-molecule imaging to provide mechanistic insights
267 locases act in crowded environments, we used single-molecule imaging to visualize FtsK in real time a
275 ties can be fundamentally improved by direct single-molecule imaging using regular epifluorescence mi
278 To achieve a signal/noise ratio conducive to single-molecule imaging, we adapted reflected light-shee
288 ing in vitro reconstitution biochemistry and single-molecule imaging, we found that HIV-1 binds to th
293 imple coculture experimental model and using single-molecule imaging, we provide quantitative data sh
294 re, using microfluidics-assisted three-color single-molecule imaging, we reveal that cyclase-associat
296 By next integrating spectrally resolved single-molecule imaging, we show that this localized dif
299 e we demonstrate the concept of submolecular single-molecule imaging with DNA chains assembled from D