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1 a specific polycolonal antibody followed by hydrolysis reaction.
2 n atom of the scissile phosphate) during the hydrolysis reaction.
3 act as the base that activates water for the hydrolysis reaction.
4 nt not obviously suited to a water-requiring hydrolysis reaction.
5 ATPase and define optimal conditions for the hydrolysis reaction.
6 , and a rate-limiting proton transfer in the hydrolysis reaction.
7 , as compared with approximately 4.5 for the hydrolysis reaction.
8 he hydrolysis of the same acyl-enzyme in the hydrolysis reaction.
9 tially in developing the nucleophile for the hydrolysis reaction.
10 flanking transition states) in the arginine hydrolysis reaction.
11 ing, transition state stabilization, and the hydrolysis reaction.
12 ubstrates on the transition state of the ATP hydrolysis reaction.
13 served motifs are involved in the nucleotide hydrolysis reaction.
14 ail a substantial substituent effect on this hydrolysis reaction.
15 TP and Mg-ATP are the true substrates of the hydrolysis reaction.
16 to stabilize the transition state of the GTP-hydrolysis reaction.
17 constant for the recA protein-catalyzed ATP hydrolysis reaction.
18 e recA protein-catalyzed ssDNA-dependent ATP hydrolysis reaction.
19 rated from the DCI enzyme by a rate-limiting hydrolysis reaction.
20 c effects, while steric effects dominate the hydrolysis reaction.
21 46 does not serve as the general base in the hydrolysis reaction.
22 t include the actual transition state of the hydrolysis reaction.
23 tose through a sequential transfuctosylation-hydrolysis reaction.
24 al or chemical changes of biomass during the hydrolysis reaction.
25 er (Galphai1-R178S) affected exclusively the hydrolysis reaction.
26 meropenem and undergoes a complete catalytic hydrolysis reaction.
27 sition state mimics for the enzyme-catalyzed hydrolysis reaction.
28 ovalent enzyme intermediate to a single-step hydrolysis reaction.
29 y attacking the sn-2 bond, thus favoring the hydrolysis reaction.
30 es both a Claisen condensation and thioester hydrolysis reaction.
31 Y32 to stabilize the transition state of the hydrolysis reaction.
32 hancement of 10(12) over the uncatalyzed P-O hydrolysis reaction.
33 ate-limiting in the NF1(333)-facilitated GTP hydrolysis reaction.
34 complex is rate-limiting in this isopeptide hydrolysis reaction.
35 nsformations, a dehydrogenase reaction and a hydrolysis reaction.
36 also illustrate an intermediate state in the hydrolysis reaction.
37 ctly by the azide clock procedure during the hydrolysis reaction.
38 loyed SPRI measurements of a surface RNase H hydrolysis reaction.
39 e charge develops on the nitrogen during the hydrolysis reaction.
40 irements at the 3'-end of the tRNA for these hydrolysis reactions.
41 ogical samples and in metal-assisted peptide hydrolysis reactions.
42 ant SCPL proteins that extends beyond simple hydrolysis reactions.
43 chanism is operative in GTPase-catalyzed GTP hydrolysis reactions.
44 ctions is different from its specificity for hydrolysis reactions.
45 inder of the products resulted from P-N bond hydrolysis reactions.
46 as lost to either HOH alkylation or P-N bond hydrolysis reactions.
47 ical kinetic properties in the oxidation and hydrolysis reactions.
48 available regarding their thiol addition and hydrolysis reactions.
49 ize fractions during the course of enzymatic hydrolysis reactions.
50 ates of forward, reverse phosphorylation and hydrolysis reactions.
51 ates for Vibrio cholerae sialidase-catalyzed hydrolysis reactions.
52 e number of amidase, transamidase, and ester hydrolysis reactions.
53 tive to the values observed for nonenzymatic hydrolysis reactions.
54 etermination of isotope effects (IEs) on the hydrolysis reactions.
55 ndance of FA, makes the formic acid mediated hydrolysis reaction a potentially important pathway for
57 the mechanism can be deduced by studying the hydrolysis reaction, a simpler system that is amenable t
58 by reading the absorbance of supernatants of hydrolysis reactions after the substrate has been precip
60 both for the free energy-yielding nucleotide hydrolysis reaction and for subsequent conformational ch
61 te that is somewhat looser than the alkaline hydrolysis reaction and similar to the PP1-catalyzed mon
62 ential candidate for the general base in the hydrolysis reaction and was shown to interact with the s
63 )- to products, two of which being unique to hydrolysis reactions and taking advantage of the acidic
64 tion state of the reaction from the alkaline hydrolysis reaction, and the transition state is quite d
65 rison to azide ion trapping results from the hydrolysis reactions, and photolysis reaction products (
66 tant (k) and activation energy (Ea) for this hydrolysis reaction are detailed; the results demonstrat
67 iate steps in the actin-myosin catalyzed ATP hydrolysis reaction are energetically coupled through me
68 enyl and methyl phosphates do not, and their hydrolysis reactions are actually slowed by these condit
70 the reduced enthalpies of activation in both hydrolysis reactions arise not from a destabilization of
71 iridinium ions among alkylation and P-N bond hydrolysis reactions as a function of the concentration
72 Rate enhancements relative to the background hydrolysis reaction at 1 mM catalyst concentration are 6
73 tion states for phosphorothioate and sulfate hydrolysis reactions at the AP active site and, thus, ne
74 g free energy difference simulations for the hydrolysis reaction ATP+H(2)O --> ADP+P(i) in the beta(T
76 ys can replace the function of Arg418 in the hydrolysis reaction but does not stabilize the closed co
78 used in nonwater urinals to inhibit the urea hydrolysis reaction by lowering the pH, thereby making t
80 how time-lapse monitoring of an in vitro ATP hydrolysis reaction by the motor domain of a human Kines
81 erature range, any temperature effect on the hydrolysis reaction can be attributed to the effect of t
83 ep reaction pathway is possible for an ester hydrolysis reaction catalyzed by a serine esterase and,
84 151 is intrinsically involved in the peptide hydrolysis reaction catalyzed by AAP and can be assigned
87 Pre-steady-state kinetic analysis of the ATP hydrolysis reaction catalyzed by the 44/62 protein loadi
88 as the general acid/base during the peptide hydrolysis reaction catalyzed by the co-catalytic metall
89 cylation reaction pathway for numerous ester hydrolysis reactions catalyzed by a serine esterase.
90 for AP, the calculations suggest that their hydrolysis reactions catalyzed by AP and NPP feature sim
91 119 acts as an acid/base during the cleavage/hydrolysis reactions catalyzed by bovine pancreatic ribo
92 phosphate, the nonbridge 18O effect for the hydrolysis reactions catalyzed by Co(III) 1,5,9-triazacy
93 sis, hydroxylaminolysis, glycerololysis, and hydrolysis reactions catalyzed by the mutant enzyme H265
94 the pre-catalytic state associated with the hydrolysis reaction central to the function of RAS and o
98 inct manifestations of the dTn-dependent NTP hydrolysis reaction, depending on the length of the dTn
102 n catalysis, modulate the free energy of the hydrolysis reaction in the beta(TP) and beta(DP) sites,
106 perty upon chemical transformation - often a hydrolysis reaction - in the polymer side chain or backb
107 tails of the kinetics of ssDNA-dependent ATP hydrolysis reactions indicate that UvsX-ssDNA presynapti
109 set of enzymes that catalyzes predominantly hydrolysis reactions involving sugars, nucleic acids, am
110 ing approach, where the competition with the hydrolysis reaction is considered with two variables, a
112 We have found that the pH dependence of the hydrolysis reaction is log-linear, with a gradient of 0.
118 n transesterification, although normally the hydrolysis reaction is substantially disfavored relative
121 base chemistry in either the condensation or hydrolysis reactions is nearly completely devoid of acti
122 bilize the tetrahedral intermediate in ester hydrolysis reactions, is utilized here to host and contr
125 reaction is reversible even though all three hydrolysis reactions may share the same gem-diol interme
128 we show that the group II intron first-step hydrolysis reaction occurs in vivo in place of transeste
129 analysis in DMSO/water mixtures for (i) the hydrolysis reaction of diethyl 2,4-dinitrophenylphosphat
133 agnitude faster than a similar site-specific hydrolysis reaction of the circular form of the Tetrahym
135 out the transition states of metal-catalyzed hydrolysis reactions of model phosphate compounds has be
136 ow, for the first time, their application to hydrolysis reactions of nucleotides and nucleic acids.
137 due can function as the general acid/base in hydrolysis reactions of peptides and, through analogy of
141 thalpies and entropies of activation for the hydrolysis reactions of the monoesters, p-nitrophenyl ph
145 from 1 to 4 min, ~1400 times faster than the hydrolysis reaction outside the thyroxine binding site.
148 er specific to pesticides, to evaluate which hydrolysis reaction pathways are most likely to be relev
151 hat the GAP(334) or NF1(333)-facilitated GTP hydrolysis reaction proceeds through a loose transition
152 brium isotope exchange, we show that the ATP hydrolysis reaction proceeds via an enzyme-phosphate com
154 Thin layer chromatography analysis of the hydrolysis reaction products revealed that ATP was rapid
155 ng kinetic parameters is the surface RNase H hydrolysis reaction rate constant (k(cat)), which was fo
156 to epoxide during the course of the epoxide hydrolysis reaction, resulting in quantitative formation
158 ATX in an uncompetitive manner and slows the hydrolysis reaction, suggesting that ATX inhibition play
159 When both ester groups are aryl groups the hydrolysis reaction (sulfuryl transfer to water) occurs
161 The purified protein catalyzes a slow ATP hydrolysis reaction that is essential for its role in mi
162 osphate monoester and aryl methylphosphonate hydrolysis reactions that are much more similar to one a
163 comproportionation, disproportionation, and hydrolysis reactions that control its stability in water
165 rectly to the catalysis of the peptidyl-tRNA hydrolysis reaction through stabilization of the leaving
167 ial to utilize IAA conjugation and conjugate hydrolysis reactions to achieve more precise spatial and
168 Thus, a tripartite complex controls the GTP hydrolysis reaction triggering disassembly of COPI vesic
169 poxide ring opening in the first step of the hydrolysis reaction; Tyr(465) is highly conserved among
170 ers of magnitude) of the hydrolysis rate for hydrolysis reactions undertaken at pH 11, 12, and 13.
171 released by multiple single nucleotide step hydrolysis reactions until about four base pairs are unw
172 ynamic activation parameters for the peptide hydrolysis reaction, using extensive computer simulation
173 netic isotope effects was determined for the hydrolysis reaction, using NAD+ labeled with 3H, 14C, an
174 cific phosphomonoesterase that catalyzes the hydrolysis reaction via a phosphoseryl intermediate to p
177 ase activation protein (GAP)-facilitated GTP hydrolysis reactions, we measured the (18)O KIEs in GTP
178 s, either by photo-induced redox reaction or hydrolysis reaction, which are responsible for the forma
179 P are fully deprotonated at the start of the hydrolysis reaction, which has colored the interpretatio
180 ed by direct association of each step in the hydrolysis reaction with a corresponding step in polymer
182 etic isotope effects (KIEs) for AP-catalyzed hydrolysis reactions with several phosphate monoester su
183 of each step to two or more consecutive ATP hydrolysis reactions with similar rates, or the coupling
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