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1 h mediation by dynamic holographic assembly (optical tweezers).
2 d beads suspended in water and acetone by an optical tweezer.
3 orce microscope probe coupled to a plasmonic optical tweezer.
4 th other single-molecule techniques, such as optical tweezers.
5 forces, which have been mostly restricted to optical tweezers.
6 errors in measurements of folding made using optical tweezers.
7 quantum and classical information science or optical tweezers.
8 rimental data of single protein folding from optical tweezers.
9 cal force at the single-molecule level using optical tweezers.
10 imeric chaperone Hsp90 using single-molecule optical tweezers.
11 quent initiation processes in real time with optical tweezers.
12 characterize its mechanical properties with optical tweezers.
13 le DNA molecules in bacteriophage phi29 with optical tweezers.
14 tructure, which is monitored in real time by optical tweezers.
15 two laser-cooled (87)Rb atoms trapped in two optical tweezers.
16 and single-molecule force spectroscopy with optical tweezers.
17 single-molecule level using high-resolution optical tweezers.
18 y developed to apply and measure force using optical tweezers.
19 ere measured at the single-molecule level by optical tweezers.
20 re in line with previous studies that employ optical tweezers.
21 ith high precision under varying loads using optical tweezers.
22 e on the electrode is thus controlled by the optical tweezers.
23 some-bound stalled nascent polypeptides with optical tweezers.
24 ttering, measuring zeta potential, and using optical tweezers.
25 n, and confirm that this effect occurs using optical tweezers.
26 ng a combination of single molecule FRET and optical tweezers.
27 G-quadruplexes bound to telomestatin, using optical tweezers.
28 ces using polystyrene beads manipulated with optical tweezers.
29 as is it being synthesized in real-time, via optical tweezers.
30 d nucleotide conditions using high-precision optical tweezers.
31 , angular-optical, micropipette, and magneto-optical tweezers.
32 ys of individual strontium atoms held within optical tweezers.
33 g was overcome by trapping particles with 2D optical tweezers.
34 e-by-stage complexity by simply removing the optical tweezers.
35 oscopy and while trapping individual GUVs in optical tweezers.
36 cles on a colloidal monolayer substrate with optical tweezers.
37 of Kif15 at the single-molecule level using optical tweezers.
38 irpins held under tension in high-resolution optical tweezers.
39 killing LRP-overlying cells by ablation with optical tweezers.
42 a range of constant stretching forces using optical tweezers, allowing direct characterization of th
43 ing both ends through attached beads held by optical tweezers, allowing us to record the applied forc
45 cal counterparts (10,000,000 times less than optical tweezers and 100 times less than optoelectronic
46 e 'motor' on bare DNA, using high-resolution optical tweezers and a 'tethered' translocase system.
48 ave developed a noninvasive flow probe using optical tweezers and a viscous flow model in order to de
49 wnian dynamics experiments using holographic optical tweezers and achieve a doubling of escape rates
53 nding, double-stranded DNA is stretched with optical tweezers and exposed to ligand under constant ap
54 eloped a single-molecule technique combining optical tweezers and fluorescence microscopy that allows
55 rameters of fibrin and used a combination of optical tweezers and fluorescence microscopy to measure
56 FP technology in plant endomembranes, namely optical tweezers and forward genetics approaches, which
57 ere, we use a combination of single-molecule optical tweezers and MD simulations to investigate the e
59 esis by individual ribosomes using dual-trap optical tweezers and observe simultaneous folding of the
60 include the manipulation of living cells by optical tweezers and optical cooling in atomic physics.
63 protein (ACBP) in the low-force regime using optical tweezers and ratcheted molecular dynamics simula
64 FP into different conformational states with optical tweezers and simultaneously probing the chromoph
66 ers that combine the nanometer resolution of optical tweezers and the easy manipulation of magnetic t
68 FM) or a scanning electron microscope (SEM), optical tweezers, and focused electron-beam nanomanipula
69 we use single-molecule unfolding studies by optical tweezers, and frameshifting assays to elucidate
70 Here, we combine fluorescence microscopy, optical tweezers, and microfluidics to visualize the ass
71 th different sequences held under tension in optical tweezers, and path shapes were computed by avera
72 cted is positioned in one microchannel using optical tweezers, and the transfection agent is located
73 ts-the most common biological application of optical tweezers-and may guide the development of more r
74 measurements of microdroplets using aerosol optical tweezers (AOT) and analysis of the whispering ga
81 imental single-molecule curves obtained with optical tweezers are also presented, and they show remar
83 r work demonstrates that dynamic holographic optical tweezers are capable of manipulating single micr
85 n of single motor proteins, such as FRET and optical tweezers, are limited to a resolution of approxi
86 ed on atomic force microscopy or magnetic or optical tweezers, are powerful but limited in their appl
87 molecule manipulation methods, in particular optical tweezers, are shedding new light on the molecula
90 0(-16) (tau/s)(-1/2) These results establish optical tweezer arrays as a powerful tool for coherent c
91 cooling of chiral molecules and, eventually, optical tweezer arrays of complex polyatomic species.
93 Our work establishes laser-cooled atoms in optical tweezers as a promising route to bottom-up engin
94 ploratory study to assess the use of aerosol optical tweezers as an instrument for sampling and detec
102 ied primarily on atomic force microscope and optical tweezers assays that, while powerful, are limite
105 ntinuous wave (CW) and femtosecond plasmonic optical tweezers, based on gold-coated black silicon.
110 y of the single-molecule characterization in optical tweezers but also clearly revealed mechanical fe
111 at low photon flux, while femtosecond-laser optical tweezers can probe the nonlinear optical propert
112 cular force spectroscopic approaches such as optical tweezers can track the pseudoknot's unfolding in
113 o resolve rotations during stepping, we used optical tweezers combined with an optical microprotracto
114 re we introduce Raman Tweezers (RTs), namely optical tweezers combined with Raman spectroscopy, as an
120 that in the force range accessible in laser optical tweezer experiments there should be a switch in
121 an integrated approach using single molecule optical tweezer experiments, loop insertions, and steere
129 we describe a single-molecule assay based on optical tweezers, fluorescence microscopy and microfluid
131 ce configuration also enables application of optical tweezers for controlled placement of atoms.
137 Among the various tools available today, optical tweezers have recently seen great progress in te
139 e coalescence of two droplets in holographic optical tweezers (HOT) and poke-and-flow experiments on
140 tweezers was the development of holographic optical tweezers (HOT) which enabled the independent man
142 id stain; (ii) capturing a single spore with optical tweezers; (iii) simultaneously measuring phase-c
143 Active microrheology measurements using optical tweezers in living cells reveal that the presenc
145 Latex micrometric beads are manipulated by optical tweezers in the vicinity of an ultramicroelectro
148 hough previous studies have established that optical tweezers induce photodamage in live cells, the e
151 show that immobilizing non-adherent cells by optical tweezers is sufficient to achieve optical resolu
153 he assay is based on an instrument combining optical tweezers, light and fluorescence microscopy, and
155 y used force spectroscopy techniques, namely optical tweezers, magnetic tweezers, and atomic force mi
157 physical principles and practical aspects of optical tweezers measurements and discuss recent advance
159 the motor mechanism we used single-molecule optical tweezers measurements to study the effect of mut
161 predictions of hygroscopicity, as well as to optical tweezers measurements, are presented, demonstrat
169 el were observed in the case of NMIIB-HMM in optical tweezers or TIRF/in vitro motility experiments.
172 we combine atomic force microscopy (AFM) and optical tweezers (OT) experiments to show that high mobi
173 scattering (LS) analysis of capsular PS and optical tweezers (OT) to explore the architecture of the
175 meter-sized beads of glass held in air by an optical tweezer, over a wide range of pressures, and we
178 Manipulation of individual molecules with optical tweezers provides a powerful means of interrogat
179 the potential of the integrated holographic optical tweezers-Raman technique to induce deformations
181 igital microfluidics, digital bioassays, and optical tweezers, resulting in a powerful dynamic microw
184 e-cell RNA sequencing (scRNA-seq) with Raman optical tweezers (ROT), a label-free single-cell identif
186 , we have developed a novel temperature-jump optical tweezers setup that changes the temperature loca
189 ined in a, to our knowledge, novel dual-trap optical-tweezers setup that directly measures forces.
190 mmon source for these couplings in dual-trap optical-tweezers setups: the misalignment of traps and t
191 Both CD and single molecule studies using optical tweezers showed that the two quadruplexes in the
192 present the latest progress that has pushed optical tweezers' spatial and temporal resolution down t
194 ere, we use single-molecule fluorescence and optical tweezers studies to elucidate the role of AAA4 i
195 teristics compared with the more established optical tweezers, such as higher trapping forces per uni
200 uring invasion, and demonstrate the power of optical tweezers technologies in unraveling the blood-st
201 vector assembly requires a minimal number of optical tweezers that allow operations like chain elonga
204 a combination of fluorescence microscopy and optical tweezers, that all three structures can exist, u
205 to address this question by measuring, with optical tweezers, the real-time replication kinetics of
206 ased P. falciparum merozoites, delivered via optical tweezers to a target erythrocyte, retain their a
208 the fiber based detection, we used the fiber optical tweezers to apply a force on a cell membrane and
209 to hundreds of microns by using holographic optical tweezers to apply pN forces to microparticles em
213 we use single-molecule force spectroscopy by optical tweezers to assess the folding and stability of
214 while monitoring DNA unwinding activity with optical tweezers to capture the entire sequence of prote
215 orescence microscopy, Raman spectroscopy and optical tweezers to characterize the germination of sing
219 In contrast to raster assembly that assigns optical tweezers to each particle, vector assembly requi
221 Here, we resolve this controversy by using optical tweezers to extend small 60-64 bp single DNA dup
222 uring its synthesis, we used high-resolution optical tweezers to follow in real time the co-transcrip
226 fluorescence resonance energy transfer with optical tweezers to measure human telomeric sequences un
230 contrast microscopy, Raman spectroscopy, and optical tweezers to monitor a variety of changes during
235 on and proofreading, we used high-resolution optical tweezers to probe how DNA-duplex stability affec
236 hanism, we used single-molecule studies with optical tweezers to probe the kinetics of DNA-phenanthri
237 al. and Maillard et al., use single-molecule optical tweezers to show directly that these molecular m
243 e used single molecule force spectroscopy by optical tweezers to study the folding of calmodulin in t
244 antly, our study demonstrates the utility of optical tweezers to test a role for ligand endocytosis i
245 onstrate that polystyrene beads connected by optical tweezers to the ends of adherent filopodia of J7
246 nge of single-molecule force spectroscopy by optical tweezers to the microsecond range by fast sampli
248 ing, which combines force and urea using the optical tweezers, together with traditional protein unfo
249 he folding and unfolding of T4 lysozyme with optical tweezers under a chemo-mechanical perturbation b
250 f the phage T4 gp17 motor by using dual-trap optical tweezers under different conditions of perturbat
254 of the rigidity of mucus and model gels with optical tweezers was used in this context to confirm suc
272 ,000 times smaller than that in conventional optical tweezers, we rotate, translate, localize, and as
274 orce microscopy, and force spectroscopy with optical tweezers, we show that these DNA variants have b
276 dimers in a multiequilibria mixture, whereas optical tweezers were applied to monitor the (un)folding
279 esults was carried out by calibration of the optical tweezers when trapping microspheres with a diame
280 i.e., without microbead handles) in the dual optical tweezers where they were observed to adopt a "si
282 ing "topological tweezers," an array of weak optical tweezers which strain the lattice by weakly pull
284 These measurements were conducted using optical tweezers, which enabled high temporal and spatia
285 or the spatial position of a bead trapped in optical tweezers, which enables us to reconstruct its dy
286 y a ring of particles trapped in holographic optical tweezers, which form a flexible elastic wall.
287 prising two independent modules: holographic optical tweezers, which offer a versatile and precise wa
288 rorheological techniques such as holographic optical tweezers, which rely on expensive equipment and
289 e is based on fast, real-time control of 100 optical tweezers, which we use to arrange atoms in desir
290 nticipate that these high-resolution magneto-optical tweezers will be instrumental in studying the in
292 ts of rates and energy landscapes made using optical tweezers with estimates obtained from the same s
293 developed a single-molecule assay combining optical tweezers with fluorescence to monitor binding to
294 combines contactless levitation with aerosol optical tweezers with isotopic exchange (D2O/H2O) to mea
295 We have developed an approach combining optical tweezers with light-sheet microscopy to probe th
298 A secondary structures using high-resolution optical tweezers with single-molecule fluorescence capab