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1 a host indole receptor may exhibit a unique bimolecular (2:1) binding stoichiometry not observed wit
2 ace growth, A + B --> 2B (rate constant k2), bimolecular agglomeration, B + B --> C (rate constant k3
5 alpha-glycoside is necessarily preceded by a bimolecular alpha -> beta triflate interconversion, whic
6 e found that the mechanical stability of the bimolecular alphaIIbbeta3-ligand complexes had the follo
7 an spectroscopic imaging for the comparative bimolecular analysis of fully intact and living zebrafis
10 the formulation of rate equations for simple bimolecular and monomolecular steps of the mechanism.
11 n forked DNA substrates up to 10-fold and on bimolecular anti-parallel G-quadruplex DNA structures an
12 This transformation is uniquely capable of bimolecular assembly of 2-siloxy-1,4-dienes and can be u
14 ophobic residues on the same time scale that bimolecular association occurs, whereas the rabbit seque
15 .s)(-1), values that are similar to those of bimolecular association of small, complementary DNA stra
17 We find that the mechanism of the initial bimolecular association to form the intermediate state c
20 ely 0.6 mg/mL fits well with an irreversible bimolecular binding model with the rate constant kon = (
21 luence of the 5' aptamer modification on the bimolecular binding rate constant kon and no significant
23 ngle-site bis-phosphonate catalysts and fast bimolecular bis-carboxylate catalysts, have reached turn
24 ractive vehicles for therapeutic delivery of bimolecular cargo such as nucleic acids, proteins, and e
25 lectric-field-induced reduction of radiative bimolecular carrier recombination together with motion o
27 Single-site catalysts have an advantage over bimolecular catalysts because they remain effective when
28 , which is of particular importance when the bimolecular charge transfer processes are not limited by
31 his article reviews progress in the study of bimolecular chemical reaction dynamics in solution, conc
32 ductions, autoxidation is now competing with bimolecular chemistry even in the most polluted North Am
33 , unimolecular isomerization of MSP outpaces bimolecular chemistry leading to the efficient formation
34 ic photoassociation, Feshbach resonances and bimolecular collisions, these approaches have been limit
38 g bioluminescence resonance energy transfer, bimolecular complementation techniques, and cell-signali
41 atalysts are found to be more susceptible to bimolecular coupling of the key intermediate RuCl(2)(CAA
42 oduct of the combined process is formed by a bimolecular coupling of the two substrates activated by
43 e of a Ni(III) -NH(2) species that undergoes bimolecular coupling to generate a Ni(II) (2) (N(2) H(4)
44 e QD with a triplet transfer ligand and that bimolecular decay of triplets is potentially a major los
46 )) complexes (L = CAAC or H(2)IMes) revealed bimolecular decomposition of the CAAC derivative within
47 ty by isolating the metal center, preventing bimolecular decomposition paths and facilitating product
49 on is either much faster or much slower than bimolecular diffusion, biomolecular association is not s
50 the structural features of its interface: a bimolecular domain formed by intertwining of the small d
52 f solute diffusion and solvation dynamics on bimolecular electron transfer in ionic liquids (ILs).
53 by some factor not properly accounted for in bimolecular electron transfer models based on a spherica
55 isotope fractionation was large, typical for bimolecular eliminations, and was not affected by confor
57 photovoltaics (OPVs) lead to a high rate of bimolecular encounters between spin-uncorrelated electro
58 rget engagement can be described by a simple bimolecular equilibrium equation, similar mathematical t
59 he GPCR-G-protein interaction is viewed as a bimolecular event involving the formation of a ternary l
61 ght to proceed via a biradical intermediate; bimolecular events involving this unstable intermediate
62 icting the outcome for the H + H2 --> H2 + H bimolecular exchange reaction that it might seem further
63 perature OLPL emitters are mainly based on a bimolecular exciplex system which usually needs an expen
65 d, GST pull-down, co-immunoprecipitation and bimolecular florescence complementation, we found that S
66 ioluminescence resonance energy transfer and bimolecular fluorescence and bioluminescence complementa
68 bunits were observed in yeast two-hybrid and bimolecular fluorescence assays, consistent with a more
69 beta1-adrenoceptor homodimers constrained by bimolecular fluorescence complementation (9.8- and 9.9-f
71 ays with electrophysiology and imaging-based bimolecular fluorescence complementation (BiFC) and biol
73 ntification and tracking of hybrids based on bimolecular fluorescence complementation (BiFC) and foun
74 rtners in the RLR pathway through the use of bimolecular fluorescence complementation (BiFC) and supe
78 2 interacted using coimmunoprecipitation and bimolecular fluorescence complementation (BiFC) assays i
79 rescent resonance energy transfer (FRET) and bimolecular fluorescence complementation (BiFC) assays r
81 Yeast two-hybrid screening combined with bimolecular fluorescence complementation (BiFC) experime
82 rent DNA-binding sites in vitro and by doing Bimolecular Fluorescence Complementation (BiFC) in diffe
83 ation have never been observed in vivo Using bimolecular fluorescence complementation (BiFC) methods,
85 present study, a genome-wide screen based on bimolecular fluorescence complementation (BiFC) was perf
88 d in heterologous systems, assays relying on bimolecular fluorescence complementation (BiFC; also ref
89 iction modeling of the complex structure and bimolecular fluorescence complementation analyses reveal
93 PYL6 and MYC2 interact in planta based on bimolecular fluorescence complementation and co-immunopr
95 family encoding CAR1 to CAR10 proteins, and bimolecular fluorescence complementation and coimmunopre
97 ubcellular localization by yeast two-hybrid, bimolecular fluorescence complementation and gene expres
99 We investigated the topology of Toc75 using bimolecular fluorescence complementation and immunogold
103 action spectrum of HDC1 using a quantitative bimolecular fluorescence complementation assay in tobacc
116 es, including calcium and cAMP measurements, bimolecular fluorescence complementation assays, and CD-
117 e verified by in vitro pull-down and in vivo bimolecular fluorescence complementation assays, CIPK23
118 st (Saccharomyces cerevisiae) two-hybrid and bimolecular fluorescence complementation assays, HSFA4A
119 s study, using membrane yeast two-hybrid and bimolecular fluorescence complementation assays, we prob
124 ybrid tests, immuno-pull-down assays, and by bimolecular fluorescence complementation at the apical p
125 Co-localization of Pi04089 and StKRBP1, and bimolecular fluorescence complementation between them, i
132 pha in N. benthamiana, which was detected by bimolecular fluorescence complementation in the nucleopl
133 ction studies including yeast two-hybrid and Bimolecular Fluorescence Complementation revealed that w
137 t in transgenic Nicotiana benthamiana cells, bimolecular fluorescence complementation suggested that
138 monstrated by both coimmunoprecipitation and bimolecular fluorescence complementation that these NF-Y
140 ioluminescence resonance energy transfer and bimolecular fluorescence complementation to establish th
145 in interaction studies (yeast two-hybrid and bimolecular fluorescence complementation) demonstrate th
147 , they were recovered in vivo by ratiometric bimolecular fluorescence complementation, and they were
150 nally, using both co-immunoprecipitation and bimolecular fluorescence complementation, we demonstrate
151 Using structured illumination microscopy and bimolecular fluorescence complementation, we map protein
164 (Saccharomyces cerevisiae) three-hybrid and bimolecular fluorescent complementation assays revealed
165 Yeast two-hybrid, coimmunoprecipitation and bimolecular fluorescent complementation assays showed th
167 elicene via stepwise ring annulation through bimolecular gas phase reactions in circumstellar envelop
168 synthesized for the very first time via the bimolecular gas-phase reaction of ground-state carbon at
169 molecular dynamics simulations to study two bimolecular GQs, a telomeric DNA GQ and the analogous te
171 chronicity (factor eta) of HAA, we show that bimolecular HAA reactions in solution that are electron
173 ring of this construct in a stereo-specific bimolecular interaction, and, interestingly, this bindin
175 internal forces are generated affecting the bimolecular interactions that maintain cell-cell adhesio
176 new strategy to characterize the response of bimolecular interactions to forces even in the presence
177 y a two-step process, which consists of fast bimolecular intercalation of the first dppz moiety follo
178 ucidated in detail for several examples, the bimolecular intermolecular coupling could not be assigne
182 iving cells using a new recombinase enhanced bimolecular luciferase complementation platform (ReBiL).
183 re we developed a highly specific and robust bimolecular luminescence complementation (BiLC) reporter
184 revealed that these reactions proceed via a bimolecular mechanism in which either the basic Al(I) ce
187 e we show that coupling a generic reversible bimolecular monomer buffering reaction to a crystallizat
190 ults obtained definitively rule out a simple bimolecular nucleation mechanism and provide evidence fo
191 ntimate mechanisms of nucleation are tested: bimolecular nucleation, termolecular nucleation, and a m
192 s of the stannane cation radicals occur by a bimolecular, nucleophile-assisted mechanism (S(N)2).
196 mically analyzed the competition between the bimolecular nucleophilic substitution (S(N)2) and base-i
199 oncepts needed to understand two-dimensional bimolecular organizations at the vacuum-solid interface.
200 change and a pseudo-free energy penalty for bimolecular pairing of nucleotides that are unlikely to
201 probabilities, is applied per nucleotide in bimolecular pairs, and this approach is able to predict
202 ry recognition and reactive sites via a slow bimolecular pathway and a fast template-directed pathway
208 thus shows that the ultimate bottlenecks for bimolecular photoredox processes involving these FeNHC p
209 understanding of the dynamics of elementary (bimolecular) polyatomic reactions in the gas-phase have
210 ization of nitrones proceeds via a diradical bimolecular process involving an initial dimerization th
212 he pseudo-first-order rate constants of fast bimolecular processes in solution (milliseconds and abov
215 hich phosphoryl transfer through a series of bimolecular protein-protein interactions is coupled to s
217 arent Stern-Volmer (KsvApp) and the apparent bimolecular quenching constants (kqApp) were calculated
222 s complex reacts with internalized NO with a bimolecular rate constant of 10(10) M(-1) s(-1) forming
223 y generated Ru(bpy)3(3+) and 1 occurs with a bimolecular rate constant of 2.5 x 10(8) M(-1) s(-1).
224 ropane-fused trans-cyclooctene (sTCO) with a bimolecular rate constant of 72,500 +/- 1660 M(-1) s(-1)
227 ith model sensitizers, and used to determine bimolecular rate constants between (3)CDOM* oxidants and
230 Outcomes of this work, including oxidation bimolecular rate constants of CPA and CPA analogs (~9 x
231 ively, affording 5-fluoro-1,4-pyrazoles with bimolecular rate constants up to 10(4) m(-1) s(-1) , sur
234 ed for Phi-value analysis has now revealed a bimolecular reaction hidden beneath the observed first-o
237 age of the Maillard reaction by a reversible bimolecular reaction mechanism and also to evaluate the
241 ron molecule (HCCBS) has been formed via the bimolecular reaction of the boron monosulfide radical (B
242 e) was synthesized for the first time by the bimolecular reaction of the simplest silicon-bearing rad
243 ution, respectively, which demonstrates that bimolecular reaction rate coefficients can be quantified
246 thiazole-peptides and measured their (1)O(2) bimolecular reaction rate constants, showing slow photoo
248 structure and statistical calculations, this bimolecular reaction sheds light on the unusual reaction
253 ksi values of 5 and 300 m(3)/s.mol for these bimolecular reactions at defective and pristine sites, r
254 of the polymer tracks increases the rate of bimolecular reactions between modified sliders by over t
255 oscopy to investigate the products formed in bimolecular reactions between ultracold KRb molecules we
256 demonstrate that the key dynamics of complex bimolecular reactions can be captured with a relatively
257 obtained using known bulk-phase kinetics for bimolecular reactions in our colliding-droplet microreac
259 n of the oxidized molecular catalyst 1(+) in bimolecular reactions is also evidenced for the first ti
260 nderstand the key reactivity determinants of bimolecular reactions of Criegee intermediates and H2 X
261 intermediates which can also participate in bimolecular reactions such as ylide formation with nucle
262 me will enable study of its unimolecular and bimolecular reactions under thermal conditions of releva
272 s that exploit the remarkable specificity of bimolecular recognition, i.e., of both G proteins and RT
273 While these morphology changes increase bimolecular recombination (BR) and lower the free charge
276 m(2) V(-1) s(-1) at around 80 K, an ultralow bimolecular recombination coefficient of 3.5 x 10(-15) c
278 ng photoluminescence studies, that radiative bimolecular recombination is dominant at higher excitati
279 oscopic studies (from ps to s) show that the bimolecular recombination of photogenerated electrons an
285 mplexes that allow the direct observation of bimolecular reductive elimination to generate ethane and
286 ms were developed for improved prediction of bimolecular RNA structure that consider the competition
289 gued that the experimental evidence supports bimolecular S(N)2-like mechanisms for typical glycosylat
290 ynamics simulation studies are described for bimolecular SN2 nucleophilic substitution, unimolecular
300 rier mobility, the IQE increases to 65%, but bimolecular triplet formation significantly increases an