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1 racking the surface flow of apically applied microbeads).
2 plysia cell adhesion molecule (apCAM)-coated microbead.
3 Ndc80 complex, combined on the surface of a microbead.
4 many personal care products contain plastic microbeads.
5 gradient or with anti-TOM22-conjugated iron microbeads.
6 o form a hairpin structure and conjugated on microbeads.
7 tination of aptamer coated magnetic nano- or microbeads.
8 boflavin, amino acids and peptides from whey microbeads.
9 fic oligonucleotide probes bound to magnetic microbeads.
10 n or direct force application using magnetic microbeads.
11 gle-cell genomic DNA onto the coencapsulated microbeads.
12 not compromised by the low concentration of microbeads.
13 d by magnetic bead sorting via EPCAM labeled microbeads.
14 d in solution or immobilized on paramagnetic microbeads.
15 the flow path and holds ~300 5 mum-diameter microbeads.
16 s into multivalent complexes using protein A microbeads.
17 ices (cGMP)-grade anti-biotin immunomagnetic microbeads.
18 forces transmitted via spot-labeled magnetic microbeads.
19 trapping and mixing of solid-phase affinity microbeads.
20 cture for supporting antibody-functionalized microbeads.
21 polyacrylamide gel embedded with fluorescent microbeads.
22 D31)- and ICAM2 (also known as CD102)-coated microbeads.
23 tetramethylrhodamine, TMR) and attachment to microbeads.
24 ort, and detect individual superparamagnetic microbeads.
25 on resolving the trajectories of individual microbeads.
26 acrylamide substrates containing fluorescent microbeads.
28 This paper focuses on encoding polystyrene microbeads, 10-100 microm in diameter, with a luminescen
29 ting process has been characterized by using microbeads (10microm diameter) resulting in a single bea
30 ed for single-cell analysis using Wnt-coated microbeads (12-18 h of live imaging) and to create a Wnt
31 ions of riboflavin were obtained in 'loaded' microbeads (361 mg/L) compared to riboflavin added to th
32 ents (ATL: 22.9%: MED: 14.7% PAC: 20.2%) and microbeads (4.8%; PAC only; to our knowledge the first i
33 FM probes with an attached N-cadherin-coated microbead (5 mum) induced a progressive clustering of N-
40 nd reproducible functionalization of encoded microbeads and a high stability of DNA probes in cell-fr
41 e-coded mixture of multiple affinity-capture microbeads and an inertial microfluidic particle sorter
42 al tracking of collisions between insulating microbeads and an ultramicroelectrode surface are correl
46 el pad array units for the immobilization of microbeads and each gel pad array is surrounded with a P
48 intracameral injection of 35 mum polystyrene microbeads and measured common pathogenic outcomes in th
49 haracterizing the antibacterial copper-doped microbeads and monoliths (CuBs and CuMs), their antibact
50 The device was used to separate polystyrene microbeads and PC-3 human prostate cancer cells with 94.
52 ty) of previously well-characterized polymer microbeads and subsequently applied to determine the den
53 tly, the frequency of collisions between the microbeads and the electrode is not compromised by the l
54 e nature of the interactions between flowing microbeads and their influence on electrochemical proces
55 containing PDMS in the form of both precured microbeads and uncured liquid precursor, dispersed in wa
56 reptavidin-coated polyvinyltoluene (PVT) SPA microbeads and using [(125)I]IGF-1 as the endogenous lig
58 sition delivered approximately 16 times more microbeads and yielded approximately 20% more bacteria k
59 fluorescent microspheres, quantum dot-based microbeads, and fluorescent nano rods, some of which cur
60 rmed cylindrical plugs, preformed injectable microbeads, and hydrogel precursor, injected and polymer
61 eating with chemical lysis buffer and silica microbeads are employed for DNA extraction from clinical
64 c powder-containing enzyme-carrying alginate microbeads are immobilized on the surface of an electrol
66 gle-use polymer chip platform where magnetic microbeads are used as solid support to transport the DN
71 ngle cells, along with primer-functionalized microbeads, are randomly compartmentalized in the drople
72 ment of single human leukocyte antigen (HLA) microbead array assays allows characterization of host a
74 development of more versatile and economical microbead array-based multiplex serological test panels
75 compared with that of a trapped polystyrene microbead as a function of the applied acoustic pressure
76 we describe the use of colloidal polystyrene microbeads as a sacrificial template to create a nanofib
79 tical algorithm, which employs metal-encoded microbeads as an internal standard to correct the data f
80 oth PCV2 and PRRSV were used to validate the microbead assay (MBA) in comparison with the "gold stand
81 -specific antibody responses measured by the microbead assay were comparable to those of the standard
86 uction of gold nanoparticles coated magnetic microbeads (Au NPs-MBs), which were prepared through a n
87 netics of blood flow recovery that resembled microbead-based blood flowmetry and laser Doppler blood
89 infection status and a multiplex fluorescent microbead-based immunoassay and/or enzyme-linked immunoa
90 ere quantified using comprehensive multiplex microbead-based immunoassays for 46 immune mediators.
95 n-stained sputum smears were used to conduct microbead-based spoligotyping and assess genotypic resis
96 ust and inexpensive electrochemical magnetic microbeads-based biosensor (EMBIA) platform for PoC sero
100 ectrophoresis, we used silica or polystyrene microbeads between 3-6 mum in diameter and packed them i
102 libraries are constructed on the surface of microbeads by ligating dsDNA fragments onto growing, sur
105 tte technique, spherical, glassified protein microbeads can be made that allow determination of prote
106 ranching networks in which superparamagnetic microbeads can be routed along dynamically-selected path
108 dhesion inhibitors consisting of polystyrene microbeads chemically coupled to a protein known as mult
109 ed at controlled densities on the surface of microbeads coated with a phospholipid mixture resembling
110 assays and flow-based adhesion assays using microbeads coated with CEA immunopurified from LS174T co
111 FLA) onto carboxylate-functionalized polymer microbeads coated with poly(2-vinylpyridine) (PVP).
112 re identified in sera of healthy males using microbeads coated with recombinant denatured HLA-E or a
115 sing manufacturer's recommended antibody and microbead concentrations produced inaccurate ALPL+ vs. A
116 evice, and a suspension of superparamagnetic microbeads conjugated to DNA molecules is introduced int
117 ule ends can be reconstituted in vitro using microbeads conjugated to the budding yeast kinetochore p
122 spray was able to deliver significantly more microbeads deeper in the biofilm compared with diffusion
123 d hydrogels were fully degraded within 2 wk; microbead degradation was more moderate, and plugs degra
126 acquired videos of single beating cells, of microbead displacement during contractions, and of fluor
129 d with commercially available immunomagnetic microbeads (Dynabeads((R)) anti-Salmonella), polystyrene
130 used to prepare epoxide-functionalized glass microbeads (EGBs, 500 mum in size and manipulated by twe
131 For mice, a single 1-microL injection of microbeads elicited a highly regular 30% elevation in IO
132 hnique is first applied to match the pair of microbead embedded images before and after deformation,
133 o address this issue we prepared polystyrene microbeads encoded with seven elements (yttrium, indium,
136 rate of 2 muL/min, as characterized through microbead experiments, while maintaining measurement acc
137 than 24,000 images of 0.5 microm fluorescent microbeads flowing within mildly inflamed postcapillary
138 o create reaction geometries that confined a microbead flux to within 200 nm of the surface under flo
139 ve the outcome by using biodegradable fibrin microbeads (FMBs) to isolate a population of mesenchymal
140 ed by acoustic streaming (h >> lambdaf), the microbeads follow vortical streamlines in a pattern char
142 , we describe the use of polyethylene glycol microbeads for the coincident delivery of EC and NSC as
143 Vessels deployed from these pre-cultured microbeads formed functional connections to host vascula
147 to drive the movement of analyte-bound glass microbeads from an aqueous sample into an immiscible hyd
149 se an anchoring molecule composed of agarose microbeads functionalized with an Fc-binding domain.
150 n <30 s using bead lane modules inside which microbeads functionalized with capture antibodies (cAbs)
152 e show that topical application of polymeric microbeads functionalized with the adhesin MAM7 to a bur
153 loped an in vitro actin assembly assay using microbeads functionalized with the nucleation promoting
154 arker) and anti-CD34 (EPC marker) conjugated-microbeads had the highest sensitivity and specificity f
155 RBCs were trapped directly (i.e., without microbead handles) in the dual optical tweezers where th
156 taneously pack multiple channels with silica microbeads having different sizes and surface properties
158 cking velocimetry (PTV) or by processing the microbead images by particle image velocimetry (PIV) sof
159 of four automated immunoassays (BioPlex 2200 microbead immunoassay [MBIA], Liaison chemiluminescence
160 scence immunoassay [CIA]); (2) Bioplex 2200 (microbead immunoassay); (3) fluorescent treponemal antib
161 mmunoassays, chemiluminescence immunoassays, microbead immunoassays) over another based on published
163 ed stored sera with HLA bound to polystyrene microbeads in a retrospective analysis of heart recipien
166 nts revealed fractionation of nanobeads from microbeads in the optimized device with high sorting eff
167 y to image cultured cells and membrane-bound microbeads in twelve independently-focusing channels sim
169 nzymatic mineralization occur on polystyrene microbeads in water-in-oil emulsions, yielding synthetic
170 ered and microencapsulated human stem cells (MicroBeads) in the mouse eye, and to study the impact of
174 onducted within previous continuum models of microbead infiltration into tumour spheroids as they rel
177 The AC loss began 4 weeks after initial microbead injection, corresponding to the time course of
178 iltering, this method discriminates the used microbeads into k levels and thereby introduces a geomet
179 ted unilaterally by injection of polystyrene microbeads into the anterior chamber to occlude aqueous
180 the final protein concentration of the solid microbead is controlled, and ranges from 700 to 1150 mg/
182 r transplantation, in 8 of 10 cases when the microbead level of DSA had median fluorescence intensity
183 dissociated hippocampal neurons we show that microbeads loaded with CASPR2, but not with a deletion m
185 gen evolution reaction and superparamagnetic microbeads (MBs) as pre-concentration/purification platf
186 horseradish peroxidase (HRP)] onto magnetic microbeads (MBs) used as solid supports and amperometric
190 ntibody (TPA) levels were measured using the microbead method in 44 presensitized patients who had re
193 Here we demonstrate for the first time that microbeads (microBs) can be used as contrast agents to t
194 he detection of single molecules in magnetic microbead microwell array formats revolutionized the dev
198 s has mainly been characterized by following microbead motion by optical microscopy either by particl
199 e use of neutravidin-functionalized magnetic microbeads (NA-MBs) modified with a biotinylated-anti-ds
201 ibitor BIRB 796 in three models of glaucoma (microbead occlusion in rat and squirrel monkey and the g
204 elevating the intraocular pressure (IOP) via microbead occlusion of ocular fluid outflow in mice.
205 week period of elevated pressure induced by microbead occlusion of ocular fluid, Trpv1(-/-) accelera
206 phic imaging performance is quantified using microbeads of different dimensions, as well as by imagin
207 ed 3D fabrication techniques we integrated a microbead on an AFM cantilever thus realizing a system t
208 diffraction intensity and the density of the microbeads on the surface varied as a function of PDGF-B
210 positive cases, and in two of seven (29%) of microbead-only cases at a median of 6.5 days after trans
212 ge on ground beef, without using antibodies, microbeads or any other reagents, towards a preliminary
213 ls and mouse tumor cells were isolated using microbeads or flow cytometry and analyzed for sphere-for
214 contrary, phagocytosis of solid polyethylene microbeads or treatment with soluble clofazimine rendere
215 on of collisions between individual magnetic microbeads, present at subattomolar concentrations, and
216 using a magnetic field to preconcentrate the microbeads prior to detection in a microfluidic electroc
217 rgeted) and 7.32 um (untargeted) polystyrene microbeads produced 18-fold higher permeate concentratio
221 netic separation process with antibody-bound microbeads, rapid and complete separation of specific ta
222 GFP-marked cells encapsulated in subretinal MicroBeads remained viable over a period of up to 4 mont
223 ECL signal, generated by thousands of carbon microbeads remotely addressed via bipolar electrochemist
224 ported in vivo VEGF release profile from the microbeads resulted in highly vascularized s.c. tissue c
228 permeability measurements using fluorescent microbeads show that high-risk mucus was more permeable
235 ugh hybridization onto streptavidin-magnetic microbeads (Strep-MBs) modified with a complementary DNA
236 plete evaporation, we infiltrated the porous microbead structure with a positively or negatively char
237 advantageous characteristics of pre-cultured microbeads, such as volume preservation and vascular net
241 sentation of engineered cell-secreted ECM on microbeads suspended in alginate hydrogels would promote
243 25 cytokines were measured by multiplex microbead system (Invitrogen, UK) on a Luminex platform.
246 ynthesis conditions were optimized to obtain microbeads that were uniform in size and generated stron
248 uidic channels with silica nanoparticles and microbeads, thereby indirectly producing functional nano
249 the density and compressibility of cells and microbeads; these being the two central material propert
250 noparticles (SPIONs) with mesoporous CaCO(3) microbeads to a magneto-fluorescent bead platform that c
251 mplemented with ssDNA aptamer functionalized microbeads to address the specific capturing of thrombin
252 covalently immobilised on superparamagnetic microbeads to allow the isolation of BBI from soy whey m
253 valuate the strategy of using self-assembled microbeads to build a robust and tunable membrane for fr
254 this efficiently, stLFR uses the surface of microbeads to create millions of miniaturized barcoding
255 ned by replacing the bacteria by polystyrene microbeads to demonstrate the internalization of the lig
256 video microscopy, we tracked selectin-coated microbeads to detect the formation frequency of adhesive
257 ion of DNA-based fluorescent chemosensors on microbeads to differentiate eight toxic metal ions in wa
258 (digital diffraction diagnosis) system uses microbeads to generate unique diffraction patterns which
260 al techniques rely on nanometric tracking of microbeads to obtain quantitative information about the
261 ere, we report the utilization of dielectric microbeads to significantly enhance the photon upconvers
262 latter recombinant protein could also couple microbeads to the ends of shortening microtubules and us
263 vection from the spheroid surface, by adding microbeads to the surface of tumour spheroids and observ
264 s of microscale particles, such as cells and microbeads, to biofunctional surfaces is difficult becau
271 -the-spot packing of antibody-functionalized microbeads was completed in <20 s followed by autonomous
273 ch the binding to rhSHBG-coated paramagnetic microbeads was inhibited by any other binding (designer)
277 grade tracer, red (RFB) or green (GFB) latex microbeads, was injected into the gustatory PBN under el
278 tributions of noninteracting and interacting microbeads, we observed that tether bond formation rates
279 dingly, 1 mum half-gold and half-fluorescent microbeads were conjugated with 200 nm nanobeads through
284 r scale by passive microrheology techniques: microbeads were injected in jellyfish ECM and their Brow
285 esia, up to 2 muL of fluorescent or magnetic microbeads were injected intracamerally into the mouse e
286 green (GFB) and red (RFB) fluorescent latex microbeads were injected iontophoretically or by pressur
290 multi-use immunosensor, disposable magnetic microbeads were used to immobilize biomarker-recognition
291 of the resolution enhancement induced by the microbead, which sheds light into the many contradictory
292 amplification factor of 250000 and magnetic microbeads, which are mobile solid-phase supports for th
293 ARC-null mice were injected with fluorescent microbeads, which were also passively exposed to freshly
296 d particles were performed using polystyrene microbeads with different sizes to demonstrate rapid (<1
297 fficiently trap a large number of individual microbeads with enriched exosomes at the single-particle
298 thelial progenitor cells (EPCs) by combining microbeads with fluorescence quantum dots (Q-dots) coupl
299 approach was used to obtain calcium-alginate microbeads with high polyphenol content and good morphol
301 he microfluidic chip contained packed silica microbeads zones to filter and enrich the norovirus infe