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1 enosine and the oxidized abasic sites, 5'-(2-phosphoryl-1,4-dioxobutane) (DOB) and the C4-hydroxylate
4 template-directed primer extension using 5'-phosphoryl-2-methylimidazole-activated nucleotides (2-Me
6 ed dCK in complex with ACV at the nucleoside phosphoryl acceptor site and UDP at the phosphoryl donor
7 t)/K(m) values in the presence of saturating phosphoryl acceptor with the second order rate constant
10 ant in all Pcls, acts as a surrogate for the phosphoryl adduct of the phosphorylated, fully activated
11 organophosphorus compounds known as N-(alpha-phosphoryl)amidophosphates in good to excellent yields.
12 otein is crystallized in the presence of the phosphoryl analog BeF(3)(-), while the alpha1/alpha 5 di
13 X complexed with its CheY3 substrate and the phosphoryl analogue reveals a binding orientation betwee
14 fluorescence spectroscopy (TRLFS) identified phosphoryl and carboxyl groups from bacterial envelopes,
18 erved as key model systems for understanding phosphoryl and sulfuryl transfer reactions, respectively
19 nent reaction of alkyne, azides (sulfonyl or phosphoryl azides), and N,N-dialkyloxyformamide dialkyl
20 affinity-based methods identified decaprenyl-phosphoryl-beta-D-ribofuranose oxidoreductase DprE1 and
21 ox that clamps the nucleotide base, a buried phosphoryl binding site, and three solvent-filled pocket
22 tures show that the core domain supplies the phosphoryl binding site, catalytic histidine (His17), an
23 ncreased electron-acceptor properties of the phosphoryl-bridged bipyridine precursor, N-benzylation w
24 ptical and electrochemical properties of the phosphoryl-bridged species were studied experimentally a
26 erve agent analogues containing the relevant phosphoryl centers found in GB, GD, GF, VX, and VR has b
27 Cytotoxic NLPs bind to glycosyl inositol phosphoryl ceramide (GIPC) sphingolipids that are abunda
29 with isopropylformate, and dehydration with phosphoryl chloride provides an efficient, direct synthe
30 Along with selective production of IgM anti-phosphoryl choline, these data suggest that human B-1 ce
34 sive small molecule such as 2,8-bis(diphenyl-phosphoryl)dibenzo[b,d]thiophene (PPT) as the acceptor.
36 e-6-phosphate production, utilizing ADP as a phosphoryl donor in contrast to the more well characteri
39 ally relevant small molecule, can serve as a phosphoryl donor to a subset of two-component response r
43 e biotin modified hairpin probe (HP) with 3'-phosphoryl, forming multifunctional magnetic probes (HP-
46 of the five CheY mutants (complexed with the phosphoryl group analogue BeF(3)(-)) to wild-type CheY o
47 le making contacts solely to the transferred phosphoryl group and its incoming and outgoing atoms.
48 approach, the putative roles of the Thr(160) phosphoryl group and the T-loop conformation were invest
49 interactions between AP and the transferred phosphoryl group are not present in the ground state des
50 main response regulator CheY2-P shuttles its phosphoryl group back to CheA, while a second response r
52 c mobility of phosphopeptides containing one phosphoryl group can be predicted with the same accuracy
53 small-molecule metabolite that can act as a phosphoryl group donor for response regulators of two-co
56 PGK1) catalyzes the reversible transfer of a phosphoryl group from 1, 3-bisphosphoglycerate (1, 3-BPG
57 ified deoxyribozymes that transfer the gamma-phosphoryl group from a 5'-triphosphorylated donor (a pp
58 yze the reversible transfer of a high-energy phosphoryl group from ATP to l-arginine to form phosphoa
60 ermediate protein involved in transferring a phosphoryl group from multiple sensor kinases to the res
61 trong evidence for steric obstruction of the phosphoryl group from the attacking water molecule as on
62 domain (the "P1" domain) of CheA receives a phosphoryl group from the catalytic domain (P4) of CheA
64 two-component systems occurs by loss of the phosphoryl group from the response regulator protein.
65 The documented role of an amide moiety in phosphoryl group hydrolysis suggests an analogous cataly
66 he axial O-Mg-O alignment for the TSA of the phosphoryl group in the catalytic site differ by only ap
67 state despite the apparent similarity of the phosphoryl group in the ground and transition states.
72 ryl lipid A, indicating a change in a single phosphoryl group is sufficient for TRIF-biased TLR4 stim
74 sponse regulator heterodimers containing one phosphoryl group may participate in gene regulation.
75 covering that the enzyme transfers the gamma-phosphoryl group of ATP to the E270 actin residue, resul
76 eversible phosphoryl group transfer of the N-phosphoryl group of phosphoglycocyamine to ADP to yield
77 a water molecule for the attack on the gamma-phosphoryl group of the nucleotide, stabilization of the
78 P binding, presumably due to the high energy phosphoryl group on the fluorescent probe (ATP.E2 analog
79 RY2 optogenetic dimerization system that the phosphoryl group positioned at carbon 5 of PIP(2) is nec
83 timulus before subsequently transferring the phosphoryl group to a response regulator that controls d
85 sphoryl transfer protein, HPr, transfers its phosphoryl group to any of several sugar-specific Enzyme
86 ive cytoplasmic domain of Nla28S transfers a phosphoryl group to Nla28 in vitro, that the phosphotran
87 inin treatment, where they then transfer the phosphoryl group to nuclear-localized response regulator
88 atalyze hydrolysis of the response regulator phosphoryl group to terminate signal transduction are po
91 sensory histidine kinase then transfers the phosphoryl group to the second component, the response r
92 (k(cat)) is rate-limited by both reversible phosphoryl group transfer (k(forward) approximately 0.2
93 bly the opening of the activation loop after phosphoryl group transfer but preceding product release.
94 y, catalyzes the Mg(2+)-dependent reversible phosphoryl group transfer of the N-phosphoryl group of p
96 trates is critical to the catalysis of (thio)phosphoryl group transfer, but there has been no systema
97 ause of their inability to transfer the beta-phosphoryl group, and thus enable the distinction betwee
98 electronic polarization of the transferring phosphoryl group, primarily mediated by H-bonding to O(3
99 ing group to the nicotinamide-N1 while the 5-phosphoryl group, the pyrophosphate moiety, and the nico
108 tions, the SLN1 sensor kinase is active, and phosphoryl groups are shuttled through YPD1 to SSK1, the
109 The results show that the beta- and alpha-phosphoryl groups are transferred either directly or ind
111 nsidering interactions of amide, sulfur, and phosphoryl groups associated to proteins from bacteria o
112 n after phosphorylation shows that the added phosphoryl groups can prime vinculin for activation.
113 p53 phosphorylation; addition of successive phosphoryl groups enhances the affinity for the TAZ1, TA
115 tilis is governed by a phosphorelay in which phosphoryl groups from a histidine kinase are successive
121 observed that electrostatic repulsion of 5'-phosphoryl groups promoted the formation of aggregates i
123 9 kinases autophosphorylated and transferred phosphoryl groups to Spo0A in vitro, confirming their ro
128 ions accumulate to a greater extent near the phosphoryl groups, penetrating deeper into the grooves.
130 dystrophy), a group of enzymes with apparent phosphoryl-ligand transferase activity that are found in
133 sociated molecular patterns by expression of phosphoryl moieties on the LA to optimize interactions w
135 The replacement of the pro-S oxygen in the phosphoryl moiety of PI by sulfur results in a 3 x 10(7)
136 Then, in the presence of T4 PNK, the 3'-phosphoryl of HP-MBs was hydrolyzed to 3'-hydroxyl, thus
137 communication but increased dynamics of beta-phosphoryls of ADP/ATP, G-6-P and gamma-/beta-phosphoryl
138 ygens: two water molecules, the ss and gamma phosphoryls of GTP, a helix-alpha1 Ser, and a switch I d
139 hosphoryls of ADP/ATP, G-6-P and gamma-/beta-phosphoryls of GTP, indicating redistribution of flux th
140 ides (MFx ) as ligands that imitate either a phosphoryl or a phosphate group was 357 at the end of 20
143 enabled through a hydrogen bond between the phosphoryl oxygen and the aldehyde formyl proton present
144 e pseudoaxial cyclic boronate oxygen and the phosphoryl oxygen interacts with the formyl proton.
145 onate and a stabilizing interaction from the phosphoryl oxygen of the catalyst to the formyl hydrogen
147 .0228 and (15)k = 1.0014, at the nonbridging phosphoryl oxygens (18)k(nonbridge) = 0.9954, and at the
148 rate-bound state of 2:1a or 3:1a has the two phosphoryl oxygens bridging Zn((II))1 and Zn((II))2.
149 leophile, 5'O leaving group, and nonbridging phosphoryl oxygens for RNase A to values observed for hy
150 static interactions to the Raman spectrum of phosphoryl oxygens have not been analyzed quantitatively
152 o optically active alpha-sulfonyl- and alpha-phosphoryl oxyketones in respectable yields and enantios
156 y studies on exon1-like molecules containing phosphoryl-Ser residues at positions 13 and 16 show that
160 The span between the hydrophobic box and the phosphoryl site is optimal for recognizing nucleoside mo
161 coli mutants deficient in heptose II and the phosphoryl substituent of heptose I of the inner core li
163 rometry that are indicative of the number of phosphoryl substituents on the lipid A (LA) component of
164 loped for the practical synthesis of unknown phosphoryl-substituted 4,5-dihydro-1H-imidazoles, 1,4,5,
165 e chemoselective preparation of a variety of phosphoryl-substituted bis(thioamides) was accomplished
166 s, leading to hitherto unknown sulfonyl- and phosphoryl-substituted phosphinolines, phosphininothioph
167 lls treated with 89I LOS, which had the most phosphoryl substitutions on the LA compared with 1291 LO
169 signaling in a manner that is independent of phosphoryl transfer (classical pseudokinases; noncanonic
170 monas aeruginosa catalyzes an intramolecular phosphoryl transfer across its phosphosugar substrates,
171 ubiquitous four-domain enzyme that catalyzes phosphoryl transfer across phosphohexose substrates.
172 Investigation of the Mg(2+) requirements for phosphoryl transfer activity of IRAK-4 revealed that mor
173 h their effects on positioning reactants for phosphoryl transfer and easing barriers to transcript ba
175 apply this understanding to enzyme-catalyzed phosphoryl transfer and provide illustrative examples of
176 roles: a direct role in the chemical step of phosphoryl transfer and secondly through propagation of
180 te-directed mutagenesis and various in vitro phosphoryl transfer assays using cyclic AMP-dependent pr
181 systems typically entails an intermolecular phosphoryl transfer between a sensor kinase (SK) and a c
184 ow that the beta3-lysine is not required for phosphoryl transfer but is essential for the active stat
185 tant contribution of anionic nucleophiles to phosphoryl transfer catalysis via ground state electrost
186 ylation of its numerous substrates through a phosphoryl transfer chain where a phosphoryl transfer pr
187 combinases catalyze DNA rearrangements using phosphoryl transfer chemistry that is identical to that
188 utase (betaPGM) from Lactococcus lactis is a phosphoryl transfer enzyme required for complete catabol
190 ely reported trigonal AlF(3)(0) complexes of phosphoryl transfer enzymes may have been misassigned an
196 llowing the ribozyme to radiolabel itself by phosphoryl transfer from [gamma-(32)P]GTP, DNAzyme-media
197 rial RNA repair system, catalyzes reversible phosphoryl transfer from a nucleoside triphosphate (NTP)
198 Phosphomevalonate kinase (PMK) catalyzes phosphoryl transfer from adenosine triphosphate (ATP) to
199 rial RNA repair system, catalyzes reversible phosphoryl transfer from an NTP donor to a 5'-OH polynuc
200 ureus exogenous fatty acids are activated by phosphoryl transfer from ATP to form acyl-phosphates, a
202 p8 of the core domain active site to mediate phosphoryl transfer from beta-glucose 1,6-(bis)phosphate
205 the 98 Da neutral loss occurs via gas-phase phosphoryl transfer from pHis to the peptide C-terminal
207 ion domain (EIC), thereby permitting in-line phosphoryl transfer from phosphoenolpyruvate (PEP) bound
209 e closed conformation, observed in a trapped phosphoryl transfer intermediate, brings the EIN(alpha/b
210 ct release is rate-limiting for LRRKtide and phosphoryl transfer is rate-limiting for LRRKtide(S).
213 that AP endo acts by a one-step associative phosphoryl transfer mechanism on a THF-containing substr
215 strate specificity and overhangs the site of phosphoryl transfer near the water-membrane interface.
216 ) the I2020T mutant accelerates the rates of phosphoryl transfer of both reactions by 3-7-fold; (ii)
217 s a conserved lysine to trigger dissociative phosphoryl transfer of gamma-phosphate from ATP to MVAPP
218 e we identified conditions that yielded slow phosphoryl transfer of the gamma-phosphate from the gene
219 miting conformational change step before the phosphoryl transfer of the incoming nucleotide to the pr
222 -base chemistry, had little effect on either phosphoryl transfer or proofreading hydrolysis by Escher
224 through a phosphoryl transfer chain where a phosphoryl transfer protein, HPr, transfers its phosphor
225 lected in a 20-fold decrease in the apparent phosphoryl transfer rate as measured by pre-steady-state
226 duct complexes complete the snapshots of the phosphoryl transfer reaction by PKAc, providing us with
231 es play a critical role in several enzymatic phosphoryl transfer reactions and have been studied exte
232 the uncatalyzed reactions that correspond to phosphoryl transfer reactions catalyzed by kinases and t
233 g body of knowledge on general mechanisms of phosphoryl transfer reactions catalyzed by RNA, proteins
234 promote one class of biologically important phosphoryl transfer reactions in DNA, exemplify active s
237 leic acid metabolizing enzymes that catalyze phosphoryl transfer reactions using two divalent metal i
241 o D-glucose 6-phosphate (G6P) via sequential phosphoryl transfer steps using a beta-D-glucose 1,6-bis
244 neate a reaction pathway for ErbB3-catalyzed phosphoryl transfer that does not require the conserved
245 stem, a signal transduction pathway in which phosphoryl transfer through a series of bimolecular prot
247 f a sensor histidine kinase (HK) followed by phosphoryl transfer to a cognate response regulator (RR)
248 s a signal transduction pathway that couples phosphoryl transfer to active sugar transport across the
249 e energy landscape, which in turn allows the phosphoryl transfer to occur selectively by avoiding sid
257 binding site, the key residues in catalyzing phosphoryl transfer, and the substrate specificity diffe
258 otein kinases, the enzymes that catalyze the phosphoryl transfer, are implicated in practically every
259 hly conserved beta3-lysine was essential for phosphoryl transfer, but our findings show that the beta
261 hairpin ribozyme plays an important role in phosphoryl transfer, possibly functioning as a general a
262 ermodynamic and kinetic data for the initial phosphoryl transfer, subsequent hydrolysis, and finally,
263 f two Mg(2+) ions is essential for efficient phosphoryl transfer, the presence of both Mg(2+) ions in
264 ltiple studies of PKA, the steps involved in phosphoryl transfer, the roles of the catalytically esse
265 route constructs the pyrrolophane motif via phosphoryl transfer-terminated macroaldolization and pas
280 imic "in-line" anionic transition states for phosphoryl transfer; and 3) trigonal bipyramidal complex
287 human Ire1alpha bound to ADP, revealing the 'phosphoryl-transfer' competent dimeric face-to-face comp
288 AMP-dependent protein kinase A, a ubiquitous phosphoryl transferase involved in a myriad of cellular
290 alytic modes and active site environments of phosphoryl transferases influence transition state struc
291 as mobile packets of cellular currencies for phosphoryl transfers (ATP), acyl transfers (acetyl-CoA,
292 provide new insights into histidyl-aspartyl phosphoryl transfers in two-component systems and sugges
293 ium fluoride (E2.BeF) as analogs of the E2.P phosphoryl transition state and E2P ground state, respec
295 Chb) is inconsistent with the formation of a phosphoryl transition state intermediate because of ster
296 Ca(2+)-ATPase, the ATP affinity of the E2.P phosphoryl transition state is higher than that of the E
299 ogous 1,3-phosphoryl shift is operational, N-phosphoryl ynamides could be used to prepare similar cyc
300 ilic bis-silyl ynamines and N-sulfonyl and N-phosphoryl ynamides serve as the reaction partner in the