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 found to have a K(D) of 3.3 x 10(-6) M using surface plasmon resonance.
2 n interaction-focused compound library using surface plasmon resonance.
3 ong optical absorption of AuNPs due to their surface plasmon resonance.
4 dritic cell in vitro stimulation assays, and surface plasmon resonance.
5 ed recombinant human MGL was confirmed using surface plasmon resonance.
6 ng Affibody ligand ZPD-L1_1 was evaluated by surface plasmon resonance.
7 NA differing in length and flexibility using surface plasmon resonance.
8 ), and -A(121) with VEGFR1 and VEGF-R2 using surface plasmon resonance.
9 ng gene fragment phage display libraries and surface plasmon resonance.
10 strength and polarization-dependent infrared surface plasmon resonances.
11 ammaR effector functions, as demonstrated by surface plasmon resonance, Ab-dependent cellular phagocy
12 njugated to gold nanorods, and the localized surface plasmon resonance absorbance through the sample
13 ta42 in its monomeric form; (ii) ranking, by surface plasmon resonance affinity measurements, of the
19 t domains and synthetic peptides, along with surface plasmon resonance analysis to measure the kineti
25 rformed using biosensors techniques based on surface plasmon resonance and bio-layer interferometry.
27 y for heparin and extracellular matrix while surface plasmon resonance and cell-based assays confirme
34 ng an array of biochemical assays, including surface plasmon resonance and ELISA, discovered that fib
36 res and quantified binding interactions with surface plasmon resonance and fluorescence polarization.
38 tion is reviewed, and their integration into surface plasmon resonance and fluorescent sandwich immun
39 es confer different Ab-binding affinities by surface plasmon resonance and found minimal difference i
40 er optic, evanescent wave, refractive index, surface plasmon resonance and holography based sensor de
41 mple and robust biosensor based on localized surface plasmon resonance and hybridization chain reacti
46 f in vivo (genetics and ChIP-seq), in vitro (surface plasmon resonance) and phylogenetic analyses ide
47 and instrumentation involving nanomaterials, surface plasmon resonance, and aptasensors have develope
48 ins 1/2 and confirmed by Langmuir monolayer, surface plasmon resonance, and circular dichroism that G
49 nhibition enzyme-linked immunosorbent assay, surface plasmon resonance, and competitive human serum b
53 ics, electrochemical impedance spectroscopy, surface plasmon resonance, and quartz crystal microbalan
54 ffinity for its cognate pMHC, as measured by surface plasmon resonance, and specifically stained cell
55 cence polarization, thermal shift assay, and surface plasmon resonance-and further evaluate the compo
56 and we performed allergen binding studies by surface plasmon resonance as well as flow cytometry.
57 t yet reversible immobilization reagents for surface plasmon resonance, as fluorescently labelled mon
58 ne cells; immunoprecipitation, pulldown, and surface plasmon resonance assays; and immunofluorescence
64 the newly introduced thiol group, and both a surface plasmon resonance binding assay and in vivo xeno
65 G's C-terminal binding domain, BG(ZP-C), and surface plasmon resonance binding measurements with TGF-
67 layered materials provide a new platform for surface plasmon resonance biosensing, paving the way for
69 osol concentration, we developed a localized surface plasmon resonance biosensor based on succinimidy
70 t time that our in-house developed Localized Surface Plasmon Resonance biosensor with self-assembly g
73 uch as differential scanning calorimetry and surface plasmon resonance, but these biophysical methods
75 thermophoresis, fluorescence anisotropy and surface plasmon resonance characterize the key interacti
76 res, if made anisotropic, can exhibit strong surface plasmon resonance comparable to that of gold and
77 d to non-equilibrium excitation of localized surface plasmon resonances coupled to nonlinear oscillat
78 uares that combines multiple features of the surface plasmon resonance curve and allows for a more pr
79 is lubricin-galectin-3 interaction, shown by surface plasmon resonance data indicating that recombina
83 paper, we experimentally observed an angular surface plasmon resonance dip at 74 degrees with the ult
84 known to induce an enhancement of localized surface plasmon resonance due to the coupling of plasmon
85 ace area of the U-g-C(3) N(4) -NS layer, the surface plasmon resonance effect induced by Ag nanoparti
86 to absorb visible light due to the localized surface plasmon resonance effect of gold, can decarboxyl
87 and interrogated their FcgammaRI binding via surface plasmon resonance, enzyme-linked immunosorbent a
93 As predicted by the model and validated by surface plasmon resonance experiments, multivalent inter
95 R was investigated using molecular modeling, surface plasmon resonance, fluorescence microscopy, comp
96 ort immunoassay (10 min) using a fiber-optic surface plasmon resonance (FO-SPR) biosensor for detecti
98 In this study, a solid-phase, fiber optic surface plasmon resonance (FO-SPR) technique is presente
106 single nucleotide polymorphisms (SNPs) on a surface plasmon resonance imaging sensor is investigated
107 -dependent nature corresponding to localized surface plasmon resonance in present nanocages can poten
108 rich and Ga-rich GFO NCs exhibit a localized surface plasmon resonance in the near-infrared at approx
109 ld enhancement through the excitation of the surface plasmon resonances in bow-tie nanoantennas formi
110 erovskite solar cells that exploit localized surface plasmon resonances in ultrathin subwavelength pl
114 P-protein complexes and RTA was examined by surface plasmon resonance, isothermal titration calorime
115 A rapid, sensitive and multiplexed imaging surface plasmon resonance (iSPR) biosensor assay was dev
116 el, highly sensitive and low cost Long Range Surface Plasmon Resonance (LRSPR) biosensor for detectin
117 (red wine and saliva) by combining localized surface plasmon resonance (LSPR) and molecular imprinted
118 d the distance- and size-dependent localized surface plasmon resonance (LSPR) between fluorescent qua
119 tructures suitable for multiplexed localized surface plasmon resonance (LSPR) biosensing have been cr
120 t of a biosensor that exploits the localized surface plasmon resonance (LSPR) effect of silver nanost
121 Herein, we demonstrate that the localized surface plasmon resonance (LSPR) excitation of Au nanoro
123 urface plasmon resonance (SPR) and localized surface plasmon resonance (LSPR) have shown promises.
124 nature, which means it can sustain localized surface plasmon resonance (LSPR) in its nanocrystalline
125 x under pressure, resulting in its localized surface plasmon resonance (LSPR) intensity change of in-
127 ectric field that results from the localized surface plasmon resonance (LSPR) is strengthening the HC
129 ed protein molecule influences the localized surface plasmon resonance (LSPR) measurement response an
130 near field of optically stimulated localized surface plasmon resonance (LSPR) modes in nanorod antenn
131 two types of sensors based on the localised surface plasmon resonance (LSPR) of gold nanoparticles d
132 nosorbent assays (ELISA) using the localized surface plasmon resonance (LSPR) of metal nanoparticles
133 neous Raman scattering by exciting localized surface plasmon resonance (LSPR) on metal substrates.
134 se of gold nanorods (GNR) with the localized Surface Plasmon Resonance (LSPR) peak in the visible ran
135 ed sensors that utilize the unique localized surface plasmon resonance (LSPR) properties of chemicall
136 Ps and substantially affects their localized surface plasmon resonance (LSPR) properties that togethe
137 nanoplates (AuNPLs) exhibit strong localized surface plasmon resonance (LSPR) scattering and display
138 t, we highlight case studies where localized surface plasmon resonance (LSPR) scattering is used for
140 count of high surface sensitivity, localized surface plasmon resonance (LSPR) sensors have proven wid
142 s, has been a challenging task for localized surface plasmon resonance (LSPR) spectroscopy, presentin
143 platform based on the principle of localized surface plasmon resonance (LSPR) to detect the DNA-polym
144 nsors detect the spectral shift of localized surface plasmon resonance (LSPR) upon the change of the
145 to systematically investigate the localized surface plasmon resonance (LSPR)-coupled fluorescence en
149 monic effect of Au colloids (i.e., localized surface plasmon resonance (LSPRs)) in conjunction with t
150 ark attributes, especially tunable localized surface plasmon resonances (LSPRs) and super-ionic behav
154 rable to those derived from multi-parametric surface plasmon resonance measurements and molecular dyn
162 ties using isothermal titration calorimetry, surface plasmon resonance, nuclear magnetic resonance, a
163 ator (THI) taking advantage of the localized surface plasmon resonance of gold nanoparticles (AuNPs)
166 abel-free sensors such as those based on the surface plasmon resonance, optical waveguides, etc.
167 pulses through gold nanorods whose localized surface plasmon resonance overlaps with the excitation l
168 a:substrate binding affinity, as measured by surface plasmon resonance, paralleled substrate phosphor
170 flectometry, luminescence, refractive index, surface plasmon resonance, photonic crystals, turbidity,
171 effect, including size, shape, capping, and surface plasmon resonance profile, dose range, and expos
172 issense variant in SP6 (p.(Ala273Lys)) using surface plasmon resonance protein-DNA binding studies.
173 g along with computational image processing, surface plasmon resonance, Raman spectra, and laser twee
174 lve high-sensitivity immunoassay procedures, surface plasmon resonance, rapid immunoassay chemistries
179 Here, we used X-ray crystallography and surface plasmon resonance spectroscopy of alpha7-acetylc
180 educed glycosaminoglycan binding ability, as surface plasmon resonance spectroscopy showed that nitra
181 anning and isothermal titration calorimetry, surface plasmon resonance spectroscopy, and molecular mo
185 he interaction kinetics have been studied by surface plasmon resonance (SPR) and fluorescence spectro
188 tudied by quartz crystal microbalance (QCM), surface plasmon resonance (SPR) and X-ray photoelectron
191 n of how this essential polymer is sensed, a surface plasmon resonance (SPR) assay using varied PG su
192 luding photonic-based detection systems like Surface Plasmon Resonance (SPR) assays, Impedance-based
193 spermine and spermidine, the characteristic surface plasmon resonance (SPR) band of Tyr-Au NPs was r
198 he first steps toward a rapid cost-effective surface plasmon resonance (SPR) based method for measuri
202 nut) over 0.075-3500 ppm, LFIAs with C only, surface plasmon resonance (SPR) binding experiments on t
204 detection of misfolded proteins employing a surface plasmon resonance (SPR) biosensor and heat shock
209 on-liquid environments, demonstrating that a surface plasmon resonance (SPR) can be excited in this c
212 ale biomolecules and examine a generation of surface plasmon resonance (SPR) for plasmonic sensing.
213 subtractive inhibition assay (SIA) based on surface plasmon resonance (SPR) for the rapid detection
214 ound in good agreement with that measured by surface plasmon resonance (SPR) for the same binding rea
215 al chelating peptides in a hydrolysate using Surface Plasmon Resonance (SPR) for their antioxidant pr
216 wly invented optical-based biosensors namely Surface Plasmon Resonance (SPR) has been extensively inv
217 simultaneous microRNA (miRNA) detections by surface plasmon resonance (SPR) imaging measurements on
218 A low-cost metallic nanostructure-based surface plasmon resonance (SPR) imaging platform, compri
220 oS(2)) nanosheets functionalized fiber optic surface plasmon resonance (SPR) immunosensor has been re
222 ast method to map the transmission images of surface plasmon resonance (SPR) in metallic nanostructur
231 tic heterojunction system, which include the surface plasmon resonance (SPR) of Au nanoparticles, low
232 established heme specificity and affinity by surface plasmon resonance (SPR) of the four Cluster C pr
234 ia, the geometrical features, the effects of surface plasmon resonance (SPR) on sensing as well as cu
235 th mouse and monkey antiheroin antibodies by surface plasmon resonance (SPR) revealed low nanomolar a
237 Here we show that this is possible using a surface plasmon resonance (SPR) scattering technique.
240 ntibody paratope region, was fabricated on a surface plasmon resonance (SPR) sensor chip to enhance t
246 C3bBb complex in a form that accumulates on surface plasmon resonance (SPR) surfaces coated with pro
247 In this study, a continuous angular-scanning surface plasmon resonance (SPR) technique is utilized fo
248 we have successfully demonstrated the use of surface plasmon resonance (SPR) technology for the first
249 esorcinol amide derivatives were screened by surface plasmon resonance (SPR) to determine the binding
251 r was demonstrated for exosomes detection by surface plasmon resonance (SPR) with dual gold nanoparti
252 ermal, piezoelectric, optical (fluorescence, Surface Plasmon Resonance (SPR)), microbial and DNA bios
256 balance with dissipation monitoring (QCM-D), surface plasmon resonance (SPR), atomic force microscopy
257 tion using fluorescence, Raman spectroscopy, surface plasmon resonance (SPR), electrochemiluminescenc
260 e visually recognizable color change, due to surface plasmon resonance (SPR), which occurs in about 3
261 eld-effect transistor (FET)-based biosensor, surface plasmon resonance (SPR)-based biosensor and arti
263 Although it has been widely accepted that surface plasmon resonance (SPR)-generated energetic elec
273 alorimetric, and 10(3) and 10(4)L.mol(-1) by surface plasmon resonance (steady-state equilibrium and
274 ns as demonstrated in ligand overlay assays, surface plasmon resonance studies and SPOT peptide array
277 e the sensing performance of a prism-coupled surface plasmon resonance system by Gaussian beam shapin
280 HO-1 was confirmed as a drug target by using surface plasmon resonance technology and through interac
281 n could be observed because of the localized surface plasmon resonance that causes impedance matching
282 ower than industry standard sensors based on surface plasmon resonance that require spectral or angul
283 form Ag nanoparticles which excite localized surface plasmon resonances that are primarily responsibl
284 ncies can be used to form systems that mimic surface plasmon resonances that are typically reserved f
285 agnetic resonance, lipid-binding assays, and surface plasmon resonance, this work identifies the crit
292 e, the nanoparticle characteristic localized surface plasmon resonance wavelength redshifts, and the
293 onstrated the comparatively high-sensitivity surface plasmon resonance wavelength, lambda, while the
294 mutagenesis, NMR, isothermal calorimetry and surface plasmon resonance we demonstrate that Rif1 is a
295 and a thermal shift assay and validation by surface plasmon resonance, we found eight hits toward th
297 proteins and several biochemical assays and surface plasmon resonance, we report that our nanobody,
298 specific SAEs, assayed by means of ELISA and surface plasmon resonance, were recloned as IgE and anti
299 y scattering, nuclear magnetic resonance and surface-plasmon resonance which indicated that, in addit
300 We further analyzed the mechanism using surface plasmon resonance with a recently developed two-