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1 n, aminoacylation, and posttransfer editing (deacylation).
2 nt for thiolation (acylation) or hydrolysis (deacylation).
3 ite; with only the "in" form compatible with deacylation.
4 olecule that likely is involved in substrate deacylation.
5 bstrate, reflecting both rapid acylation and deacylation.
6 e activated and failed to enhance long-chain deacylation.
7 by substrate but is impaired with respect to deacylation.
8 highlight its specific role in acylation and deacylation.
9 at coordinate a hydrolytic water involved in deacylation.
10 he hydrolytic water and allows for efficient deacylation.
11  conserved aspartic acid abolished tRNA(Leu) deacylation.
12  to improved catalysis as that of long-chain deacylation.
13 to activate the hydrolytic water molecule in deacylation.
14 ns accelerate leaving group dissociation and deacylation.
15 ions have been shown to increase the rate of deacylation.
16  a stable tyrosinate as the general base for deacylation.
17 cing the E166A mutation that greatly retards deacylation.
18 er are all associated with the first step of deacylation.
19  be exposed to hydrolyzing water and aqueous deacylation.
20 ge in the rate-limiting transition state for deacylation.
21 ted by acylation with some contribution from deacylation.
22      This substitution also had no effect on deacylation.
23 with almost no apparent effect on binding or deacylation.
24 cus aureus results in a protein incapable of deacylation.
25 n characteristic of His-57-catalyzed complex deacylation.
26  distort the proteinase active site and slow deacylation.
27 conformational change and the rate of enzyme deacylation.
28 ed-pathway kinetic scheme, and rate-limiting deacylation.
29 a-diketones followed by an unexpected tandem deacylation.
30 duced rapid and extensive CD14-dependent LPS deacylation.
31 ociation affinity, but not to a fast rate of deacylation.
32 marins were efficiently produced without any deacylation.
33 a ypk1Delta mutant curtails the increased PC deacylation.
34 adenosinediphospho(ADP)-ribosylation, and/or deacylation.
35 e on-rate for acylation and the off-rate for deacylation.
36 ivities of key metabolic enzymes via protein deacylation.
37 hat were attributable at least in part to PC deacylation.
38                       Indeed, during Zemplen deacylation, a chloroacetamide chlorine atom was displac
39 was shown to require both aminoacylation and deacylation activities.
40  binding to K70, which in turn correlates to deacylation activity.
41 t that, besides phosphorylation, S-acylation/deacylation also regulates SLN activity.
42 ophil elastase (HNE) showed similar rates of deacylation and enhanced susceptibility to proteolysis b
43 hat a ypk1Delta mutant exhibits increased PC deacylation and glycerophosphocholine production compare
44 ectrum compared with that of the LOS after O-deacylation and hydrogen fluoride treatment.
45 ic activities of SIRT6, including long-chain deacylation and mono-ADP-ribosylation of other proteins,
46                  We now demonstrate that 3-O-deacylation and palmitoylation of lipid A decreases its
47 te from Ha-Ras, implying that SNC stimulated deacylation and permitted subsequent reacylation of Ha-R
48 32 to orient bound carbapenems for efficient deacylation and prevent their interaction with the deacy
49 Es and gammaKA-PEs using CH(3)NH(2)-mediated deacylation and quantitation of the resulting glyceropho
50  remodeled through the Lands cycle, i.e. the deacylation and reacylation of PC to attain the final an
51                                 The cycle of deacylation and reacylation of phospholipids plays a cri
52  chains is also actively regulated through a deacylation and reacylation pathway called Lands' cycle.
53 o evidence for His-57 involvement in complex deacylation and was instead characteristic of a hydroxid
54 th initiator caspases 8 or 1, (ii) very slow deacylation, and (iii) loss of the caspase p10 subunit f
55 A2-VIA as an important enzyme in cardiolipin deacylation, and as a potential target for therapeutic i
56 ly proteases but also enzymes that perform N-deacylation, and enzymes that catalyze N-desuccinylation
57 site of acylation or the nucleophile site of deacylation, appears to be hydrogen-bonded to the hydrox
58 otein thioesterases that control ion channel deacylation are very poorly defined.
59 n, the enzymes mediating lipid removal (i.e. deacylation) are largely unknown.
60 lated peptide demonstrated lysine long-chain deacylation as an intrinsic SmSirt2 activity in addition
61 sis involves inositol acylation and inositol deacylation as discrete steps at the beginning and end o
62 d radiolabeled LPS underwent inactivation by deacylation before it left the footpad; in animals that
63  alkali metal enolates fail, owing to facile deacylation, boron enolates generated from di-n-butylbor
64 cyl group has little effect on the rate of N-deacylation but increases the N/O selectivity ratio.
65 -exchange LTA and loses 500 mass units after deacylation by alkali hydrolysis.
66                                              Deacylation by AOAH greatly reduces the ability of LPS t
67 d differences in the efficiency of endotoxin deacylation by AOAH were observed, with the following ra
68 rrier higher than that for the first step of deacylation by approximately 4 kcal/mol.
69                                              Deacylation by K70A, but not K70D or K70E, can be partia
70                                              Deacylation by NAD(+)-dependent sirtuin reactions yields
71  order of magnitude, but affects the rate of deacylation by over 5 orders of magnitude.
72 ng group P must dissociate before hydrolytic deacylation can occur.
73  by which human sirtuins function as protein deacylation catalysts.
74 l, we propose a substrate-assisted acylation/deacylation-catalytic mechanism in which the amino group
75 acids such as arachidonic acid requires sn-2-deacylation catalyzed by a class of enzymes known as pho
76               We also show that an acylation-deacylation cycle is important for the steady-state loca
77                                  S-acylation/deacylation cycles and vesicular transport are critical
78  of the ligand-free mutant enzyme and of the deacylation-defective wild-type and mutant cephalexin ac
79  compared to those of wild-type (WT) or even deacylation deficient forms of the enzyme.
80 trapped as a trans-enamine intermediate in a deacylation deficient SHV variant, we designed a novel p
81 y that the reaction between tazobactam and a deacylation deficient variant of SHV-1 beta-lactamase, E
82                           By using the E166A deacylation deficient variant of the enzyme, we were abl
83 tructures of ESOC acyl-enzyme complexes with deacylation-deficient (E166Q) KPC-2 and KPC-4 mutants sh
84 pretation of experimental data obtained with deacylation-deficient beta-lactamases to make mechanisti
85 s sulbactam and clavulanic acid bound to the deacylation-deficient E166A variant of SHV-1 beta-lactam
86 data and computer modeling indicate that the deacylation-deficient Glu166Arg/Met182Thr mutant of TEM(
87 ephalosporin bound to the active site of the deacylation-deficient Q120L/Y150E variant of the class C
88 e same reactions are then reexamined using a deacylation-deficient variant, SHV E166A, that has been
89 ms, we have determined the structures of two deacylation-deficient variants (K84D and V130D) of the c
90 ey are active for acylation by substrate but deacylation-deficient.
91 s is serine acylation followed by hydrolytic deacylation, destroying the beta-lactam.
92   We therefore developed an assay to measure deacylation directly by pulse-chase incorporation of H(2
93 Gs) undergo rounds of inositol acylation and deacylation during GPI biosynthesis and the deacylation
94  However, the biological significance of LPS deacylation during infection of the mammalian host is un
95 he water molecule responsible for hydrolytic deacylation during normal hydrolysis.
96 carbonyl conjugation as a mechanism to avoid deacylation emerges despite that the penem and penam sul
97 th IleRS are consistent with a post-transfer deacylation event initiating formation of an editing-act
98 e of catalysis during both the acylation and deacylation events.
99 alog of the tetrahedral transition state for deacylation exhibits a very different binding geometry i
100                       Both the acylation and deacylation follow a double-proton-transfer mechanism.
101 rase, these groups were removed by enzymatic deacylation followed by rapid chemical cyclization to 4,
102 -thiazepine derivative in OXA-1, and undergo deacylation followed by the decarboxylation of Lys-70, r
103 pproximately 60 min for K70A to undetectable deacylation for K70D.
104 gated, and a possible mechanism for the slow deacylation from KPC-2 is proposed.
105 KPC:ceftazidime acyl-enyzmes reveal that the deacylation general base E166, located on the Omega loop
106                               The subsequent deacylation half-reaction is rate-limiting, with proton
107 microscopic events of both the acylation and deacylation half-reactions have not been studied.
108  from the relative rates of the acylation vs deacylation half-reactions of cathepsin C.
109            Methylamine (CH(3)NH(2))-mediated deacylation has previously been used in headgroup analys
110 gh "covalent trapping" of the substrate by a deacylation impaired enzyme with a lower K(m).
111 ld-type protein that was not detected in the deacylation impaired Glu166Asn mutant.
112 e, but our results do not support a role for deacylation in activity-dependent Galphas internalizatio
113  was more slowly subject to CD14-independent deacylation in AF.
114 s the enzyme responsible for G alpha subunit deacylation in S. cerevisiae and presumably other eukary
115                           The faster rate of deacylation in the beta-lactamase is attributed to a mor
116              We show here that LPS undergoes deacylation in the liver and spleen by acyloxyacyl hydro
117  was used to confirm the position of lipid A deacylation in vitro and the release of the intact 3'-ac
118 roduce AOAH and are required for hepatic LPS deacylation in vivo.
119                                              Deacylation interrupted HA-M1 interactions since deacyla
120                      We find that long-chain deacylation is a general feature of mammalian sirtuins,
121                                AOAH-mediated deacylation is a previously unappreciated mechanism that
122 sition of an active site water important for deacylation is altered compared with the wild-type enzym
123 complexes, this supports the hypothesis that deacylation is blocked by the continued presence of the
124 r, these results suggest that PagL enzymatic deacylation is posttranslationally inhibited by membrane
125 Ala-D-Ala peptide substrate, indicating that deacylation is rate determining for both amide and ester
126 for ceftazidime hydrolysis by KPC-2, whereas deacylation is rate-limiting in the R164S variant, leadi
127  constants for both the acylation (k(2)) and deacylation (k(3)) of the extended-spectrum beta-lactama
128 inetic model where the acylation (k(ac)) and deacylation (k(dac)) half-reactions are very fast and si
129 active-site serine (k(acyl)), and hydrolytic deacylation (k(deacyl)).
130 ied when characterizing an unusual precursor deacylation mechanism during telomycin maturation.
131          Further, the selective biocatalytic deacylation methodology has been utilized for the effici
132  5, which upon Vorbruggen glycosylation, O2'-deacylation, O2'-activation and C2'-azide introduction y
133                  Thus the different rates of deacylation occurred even though oncogenic and cellular
134 y accommodate a model of Tyr-tRNA(Phe) where deacylation occurs from either the 2'- or 3'-OH.
135                               (iii) Finally, deacylation occurs through a process involving a rate-li
136                                              Deacylation occurs with the formation of a tetrahedral i
137 ly of proteins catalyze the NAD(+)-dependent deacylation of acyl-lysine residues.
138                                        After deacylation of bovine brain sulfatide under mild alkalin
139 cylation or lactonization but did induce the deacylation of butyryl-acyl carrier protein.
140  transcriptional regulation of Cld1-mediated deacylation of CL influences energy metabolism by modula
141 o gain specificity for Cys-tRNAPro and avoid deacylation of Cys-tRNACys in the cell.
142 10, were calculated and compared to that for deacylation of FAAH acylated by the substrate oleamide.
143                      The subsequent inositol deacylation of fully mannosylated GPI intermediates is i
144 osine is generated catabolically through the deacylation of galactosylceramide by acid ceramidase (AC
145                       Experiments monitoring deacylation of Ile-tRNA(Leu) and misactivated adenylate
146 ner caspases, so that any free p20 formed by deacylation of initiator caspases cannot reassociate to
147                               In this study, deacylation of isolated radiolabeled LPS by both cellula
148  Until now, the gene responsible for the 3-O-deacylation of lipid A among nitrogen-fixing endosymbion
149 xpression of PagL, an enzyme responsible for deacylation of lipid A, reducing its pro-inflammatory pr
150 provides support for the hypothesis that the deacylation of lipids on the Salmonella-containing vacuo
151                                              Deacylation of lipopolysaccharide occurred over several
152                                      Partial deacylation of LPS by the enzyme acyloxyacyl hydrolase (
153                                    Enzymatic deacylation of LPS is an intrinsic, regulated mechanism
154                                              Deacylation of LPS was always restricted to the secondar
155 ower than those of pre-ion-exchange LTA, and deacylation of LTA-10.5 by alkali hydrolysis reduces the
156 f RAT1 and XRN1 prevent both degradation and deacylation of mature tRNA(Val(AAC)) in a trm8-Delta trm
157 activities clear errors of aminoacylation by deacylation of mischarged tRNAs.
158 otential errors in protein synthesis through deacylation of mischarged tRNAs.
159 lation of 1-acylglycerol-3-P followed by the deacylation of monoacylglycerol.
160 or producing NAEs that involves the double-O-deacylation of N-acyl phosphatidylethanolamines (NAPEs)
161 combination of low BBB permeability and high deacylation of NAC during the intestinal absorption.
162 hrough the serine hydrolase-catalyzed double-deacylation of NAPE to generate glycerophospho-NAE, foll
163 strate that C6orf130 catalyzes the efficient deacylation of O-acetyl-ADP-ribose, O-propionyl-ADP-ribo
164         We propose a catalytic mechanism for deacylation of O-acyl-ADP-ribose by C6orf130 and discuss
165     Novozyme-435-mediated diastereoselective deacylation of one of the two diastereotopic acyloxymeth
166                              We propose that deacylation of PE and PC by phospholipase A(2) to genera
167 hocholine (GPC), the product of the complete deacylation of phosphatidylcholine (PC), was long though
168 se superfamily of enzymes which catalyze the deacylation of phospholipids.
169                      MA-8H9D4 does not cause deacylation of preformed PAI-1/proteinase complexes and
170 r measuring rate constants for acylation and deacylation of soluble penicillin binding protein (PBP)
171 a suggest a direct role for the SXN motif in deacylation of the acyl-enzyme complex and imply that th
172 talysis by these enzymes, namely, hydrolytic deacylation of the acyl-enzyme species, takes place effe
173                    The rate constants k3 for deacylation of the acyl-PBP2a complexes, the third step
174 , PBP 5 is distinguished by its high rate of deacylation of the acylenzyme complex (t(1/2) approximat
175 ey are acylaminohydrolases that catalyze the deacylation of the amide-linked saturated fatty acid fro
176 ctamases, due in the class A enzymes to slow deacylation of the covalent acylenzyme intermediate, car
177 posed to solutions with no carbapenem, rapid deacylation of the Delta (2) species was observed by kin
178 rotein, and RNA, but also includes extensive deacylation of the envelope LPS.
179                                              Deacylation of the enzyme is rate-determining under subs
180                                              Deacylation of the enzyme is slow, e.g., 1.24 x 10(-)(3)
181                                     Inositol deacylation of the fully mannosylated GPI intermediate a
182 f inositol acylation and subsequent inositol deacylation of the GPI intermediates.
183 cal machinery required for the acylation and deacylation of the lipid A domain of H. pylori lipopolys
184  the ester, which would lead to unprogrammed deacylation of the peptidyl-tRNA.
185      Glycerophosphocholine is formed via the deacylation of the phospholipid phosphatidylcholine.
186 he peptide substrate, followed by hydrolytic deacylation of this acyl-enzyme intermediate to complete
187 he amino acid binding pocket failed to block deacylation of tRNA, indicating that the architecture of
188                                          The deacylation off-rate was 0.045 min(-1), which allowed in
189 vious studies investigated sirtuin-catalyzed deacylation on peptide substrates only.
190 all preferentially protonated at the oxygen, deacylation or dealkylation was observed in the collisio
191 mediate is fast relative to some later step (deacylation or N-terminal product release).
192              These data indicate that either deacylation or rearrangement of the enzyme-product compl
193 that are deficient in either aminoacylation, deacylation, or both, total editing (the sum of pre- and
194 choline kinase alpha (CHKA) and an activated deacylation pathway, as indicated by upregulated express
195 ate labeling, or on detecting only the final deacylation portion of the transglutaminase reaction.
196 rate-limiting at pH values less than 5.5 and deacylation principally rate-limiting above pH 8.5.
197             Using NMR and MS, we showed that deacylation proceeds through regeneration of intact avib
198                            The rates of this deacylation process vary greatly depending on the serpin
199 rate constants (k(2)) of 1-26 s(-1), yet the deacylation process was essentially irreversible within
200 ydrolysis presumably by the normal acylation-deacylation process.
201  of lyso-PC and oleic acid, which constitute deacylation products of PC.
202 early 30-fold greater than the rate-limiting deacylation rate ( k dac = 13.95 +/- 0.013 s (-1)) and t
203 k2) is approximately 10-fold higher than the deacylation rate (k3).
204 h acetyl analog had a profound impact on the deacylation rate between deacetylase classes.
205  show that KPC-2 has a 20,000-fold increased deacylation rate compared with the common TEM-1 beta-lac
206                                              Deacylation rate constants (k(3)) for the third step of
207                                  First-order deacylation rate constants could also be measured, as de
208 orresponding to over 70-fold increase of the deacylation rate for the resistant PBP2x(R).
209 p in wild-type PBP 5 markedly diminished the deacylation rate of penicillin G with a minimal impact o
210   Similarly, over 80-fold enhancement of the deacylation rate was found for cefotaxime-PBP2x(R) compl
211  at P(1) and the absence of an effect on the deacylation rate without involving mobility of the S(1)
212 Substitution of Asn170 greatly decreases the deacylation rate, but this residue is conserved in both
213                   Interestingly, BOCILLIN FL deacylation rates (t(1/2)) vary depending on the identit
214 is study, we characterized the acylation and deacylation rates and membrane trafficking of monoacylat
215  The origin of the substantial difference in deacylation rates for acyl-enzyme intermediates in penic
216    Further, by determining the acylation and deacylation rates for cefotaxime hydrolysis, we show tha
217 ane vesicular carriers, and 2) the different deacylation rates of single-acylated H-Ras influence dif
218                                      Complex deacylation rates were all slow, suggesting effective ki
219                   In this work acylation and deacylation rates were measured against the clinically i
220 mplex and plasma membrane, but also in their deacylation rates, which we showed to be due to differen
221  ion, with opposite effects on acylation and deacylation rates.
222 itro approaches, we demonstrated that the PC deacylation reaction catalyzed by the reverse action of
223 icyclic intermediate for a sirtuin-catalyzed deacylation reaction that has been captured in a crystal
224 deprotonate Glu166 and the initiation of the deacylation reaction.
225  release of P1, and a general base-catalyzed deacylation reaction.
226 ck trajectory of the hydrolytic water in the deacylation reaction.
227 sitioned to act as the catalytic base in the deacylation reaction.
228 sp2) bond formation followed by a subsequent deacylation reaction.
229 s used to measure the rate constant for this deacylation reaction.
230 arbapenems, also contributes strongly to the deacylation reaction.
231  deacylation during GPI biosynthesis and the deacylation reactions are inhibited by diisopropylfluoro
232 sed to model the relative reaction rates for deacylation reactions for aliphatic and aromatic ester s
233 kely to be the active catalyst for the ester deacylation reactions under ammonium acetate mediated co
234 hin 2h at 260 degrees C), dechlorination and deacylation reactions.
235 orporation into islet phospholipids involved deacylation-reacylation and not de novo synthesis, as in
236  part through a remodeling mechanism via the deacylation-reacylation cycle mediated by phospholipase
237  of phospholipid molecules, or remodeling by deacylation-reacylation may be important contributors in
238  in alveolar type II cells de novo or by the deacylation-reacylation of existing phosphatidylcholine
239 tate metabolic integration into triglyceride deacylation-reacylation pathways.
240  biochemical incorporation into triglyceride deacylation-reacylation pathways.
241 he sphingosine backbone of C(6)-ceramide via deacylation/reacylation and not due to the elongation of
242             The successful operation of this deacylation/reacylation cycle is important for Giardia b
243 ids in dual-labeled cells indicated that the deacylation/reacylation cycle was the major route of AA
244  regulation and function of this distinct PC deacylation/reacylation pathway in yeast.
245 ts suggest that Giardia is able to carry out deacylation/reacylation reactions (the Lands cycle) to g
246 cate that Gpc1 is part of a postsynthetic PC deacylation/reacylation remodeling pathway (PC-DRP) that
247  min(-1), which allowed investigation of the deacylation route from TEM-1.
248 stead characteristic of a hydroxide-mediated deacylation similar to that observed for the hydrolysis
249  the 2'-OH for both enzymes, IleRS catalyzes deacylation specifically from the 3'-OH and not from the
250 rolysis pathway, consisting of acylation and deacylation stages similar to those for ester hydrolysis
251                 These data indicate that the deacylation step also plays a role, which is much more i
252 y of the tetrahedral intermediate during the deacylation step in elastase-catalyzed hydrolysis of a s
253        The free energy of activation for the deacylation step is 16.7 kcal/mol in cathepsin K and 17.
254  assignment as the 'hydrolytic water' in the deacylation step of serine protease catalysis.
255 glutamate residue that has a key role in the deacylation step of the catalytic mechanism, allowing th
256 the transition-state intermediate during the deacylation step of the enzyme-catalyzed reaction with p
257 itions of tRNA isolation include an alkaline deacylation step that also causes hydrolysis of glutamyl
258 amine, to act as the hydrolytic water in the deacylation step.
259  of 1.6 on the acylation step and 3.4 on the deacylation step.
260                       Both the acylation and deacylation steps are of equal magnitude.
261 vealed large SKIEs on both the acylation and deacylation steps of 3.8 and 4.0, respectively.
262  an important role in both the acylation and deacylation steps of the catalytic mechanism.
263 eral base residue for both the acylation and deacylation steps of the enzyme.
264  act as a general base in both acylation and deacylation steps of the reaction.
265  is slow enough to resolve the acylation and deacylation steps on the catalytic pathway.
266 l free energy surfaces of both acylation and deacylation steps to characterize the reaction mechanism
267 can readily form Cys- and Ala-tRNA(Pro), and deacylation studies confirmed that these species are cle
268  why the sirtuin-dependent protein acylation/deacylation system (SDPADS) controls the activity of Acs
269 ntial-energy surface for the collapse of the deacylation tetrahedral species gives a 24 kcal x mol(-1
270 2 orders of magnitude greater for long-chain deacylation than deacetylation against peptide substrate
271 ubstrate-assisted mechanism of Cys-tRNA(Pro) deacylation that prevents nonspecific Pro-tRNA(Pro) hydr
272 se data suggest a mechanism of catalysis for deacylation that uses a hydrogen-bonding network, involv
273 the latter results from general catalysis of deacylation, the former originates purely from the react
274 haracteristic of His-57 catalysis of complex deacylation, the pH dependence of k(diss, app) for the s
275 e rate-limiting step for ALDH1, and enhanced deacylation, the rate-limiting step for ALDH2.
276 olibactins are converted to colibactins by N-deacylation; the latter are postulated to be genotoxic a
277 inity and kinetics of binding to the chiral, deacylation transition state inhibitor.
278 s the need for general base catalysis in the deacylation transition state of the Streptomyces R61 DD-
279 o inhibit by preventing the formation of the deacylation transition state through steric hindrance.
280 tion state to its acyl enzyme complex to the deacylation transition state.
281 on transition state and those that mimic the deacylation transition state; they also suggest how TEM-
282                               Differences in deacylation transition states (V) between the two enzyme
283                                              Deacylation transition states of both enzymes appear to
284  of catalysis (acyl-enzyme and acylation and deacylation transition states), whereas the beta-lactama
285 eta-lactamase in complex with a boronic acid deacylation transition-state analogue.
286 d nucleoside derivatives undergo selective N-deacylation upon heating at elevated temperatures (oil b
287 varying either the rates of RCL insertion or deacylation using a library of serpin RCL mutants substi
288 ovalent acyl-enzyme intermediate followed by deacylation via an activated water molecule.
289                               PagL-dependent deacylation was detected in sonically disrupted membrane
290  being changed from coenzyme dissociation to deacylation was finding that chloroacetaldehyde was oxid
291 g step for cephalosporin substrates, whereas deacylation was rate-limiting for penicillin substrates.
292 s was used to determine whether acylation or deacylation was rate-limiting.
293 red anchoring and decreased occupancy of the deacylation water explain the lower k(cat) values of Pen
294  donated to the boronic oxygen mimicking the deacylation water.
295 drolysis of (+)-cocaine is the first step of deacylation, whereas for (-)-cocaine the change from the
296           Extended heating is required for N-deacylation with arylcarboxylic acid derivatives.
297 5 --> Asp mutation in PBP 5 markedly impairs deacylation with only minor effects on acylation, and ab
298 gested that dechlorination is preferred over deacylation with the conditions applied in this study.
299                                              Deacylations with Li+ -OCH2CF3/TFE proceed at ambient te
300 -10 displayed the longest residence time for deacylation, with a half-life of greater than 5 days.

 
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