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1 llular loop region that it has been shown to photolabel.
2 elective general anesthetic and an effective photolabel.
3 d state) and then rapidly frozen (<1 ms) and photolabeled.
4 contribute to the pool's architecture can be photolabeled.
5 roactive steroids inhibited etomidate analog photolabeling.
6 istance (CQR) affect the efficiency of AzBCQ photolabeling.
7 effect of phencyclidine (PCP) on [(125)I]TID photolabeling.
8 cid residues of the receptor for [125I]IACoc photolabeling.
9 Rs) were studied using electrophysiology and photolabeling.
10 ulator, which neither enhanced nor inhibited photolabeling.
11  and indinavir effectively protected against photolabeling.
12 econds after mixing, by use of time-resolved photolabeling.
13 , and top-down MS confirmed a single site of photolabeling.
14                         Agonist enhanced the photolabeling 10-fold in a fragment containing the M1, M
15                              The hydrophobic photolabel 3-trifluoromethyl-3-(m-[(125)I]iodophenyl)dia
16                                          The photolabeled 35-kDa protein was isolated from rat brain
17 yrrolidinediol (8-N(3)-ADP-HPD), was used to photolabel a recombinant bovine PARG catalytic fragment
18                   EBDA and EHDA specifically photolabeled a 29-kDa nuclear protein (pI 5.8).
19                                           We photolabeled a myelin-enriched fraction from rat brain w
20 ta-tubulin and [(3)H]2-(m-azidobenzoyl)Taxol photolabels a peptide containing amino acid residues 217
21                   After channel opening, TID photolabels a residue on the delta-subunit's M2-M3 loop
22 rified alpha4beta2 nAChRs, [(3)H]epibatidine photolabeled alpha4Tyr(195) (equivalent to Torpedo alpha
23 a site at the gamma-alpha subunit interface, photolabeling alphaM2-10 (alphaSer-252) and gammaMet-295
24 te); and (iii) at the gamma-alpha interface, photolabeling alphaM2-10'.
25 brane domain outside the ion channel, but it photolabels alphaMet-386 and alphaSer-393 in the cytopla
26 tylcholine binding sites, [(3)H]azietomidate photolabeled alphaTyr-93, alphaTyr-190, and alphaTyr-198
27 t sites within the alpha and delta subunits, photolabeling alphaVal-218 (alphaM1), deltaPhe-232 (delt
28                                              Photolabeled amino acid residues in each M4 segment were
29                        Positioning these two photolabeled amino acids in a single type of binding sit
30                                              Photolabeled amino acids in both subunits were identifie
31         Consideration of the location of the photolabeled amino acids in homology models of the nAChR
32  determined by Edman degradation some of the photolabeled amino acids in nAChR subunit fragments isol
33                                              Photolabeled amino acids in the agonist binding sites we
34  In the presence of agonist, [(3)H]dFBr also photolabeled amino acids in the nAChR extracellular doma
35                         The locations of the photolabeled amino acids in the nAChR structure and the
36 nce of agonist (carbamylcholine), both drugs photolabeled amino acids on the complementary (non-alpha
37 dine and identified by Edman degradation the photolabeled amino acids.
38 nds at the extracellular end of the channel, photolabeling amino acids at positions M2-16 (alpha,gamm
39 n gammaM3, and to a site in the ion channel, photolabeling amino acids within each subunit M2 helix t
40 ilize the nAChR in a closed state, [(3)H]CPZ photolabels amino acids at M2-5 (alpha), M2-6 (alpha,bet
41                                          Its photolabel analog [(3)H]azi-etomidate labels residues wi
42 a-tubulin isotypes, bovine brain tubulin was photolabeled and the isotypes resolved by high-resolutio
43 d mitochondria, individual mitochondria were photolabeled and tracked through fusion and fission.
44 he pivotal reactive intermediate involved in photolabeling and cross-linking studies using the 8-azid
45 gA in DMPC bilayers, direct [(14)C]halothane photolabeling and microsequencing demonstrated dominant
46 or and hence should be promising ligands for photolabeling and subsequent sequencing studies.
47 oflurane binding sites were identified using photolabeling and were further validated by the docking
48 hR binding moiety, a benzophenone moiety for photolabeling, and an alkyne moiety for biotinylation vi
49  differential scanning calorimetry and lipid photolabeling, and measured the affinity of this interac
50 ,1'-binaphthyl-5,5'-disulfonic acid (BisANS) photolabeling approach to monitor changes in protein unf
51               In this study, we adapted a UV photolabeling approach, using an apolar fluorescent prob
52 nd subunit selectivity of [(3)H]azietomidate photolabeling are discussed in terms of the structures o
53 pharmacological specificity of nAChR subunit photolabeling as well as its dependence on [(3)H]tetraca
54 ids enhance rather than inhibit azietomidate photolabeling, as assayed at the level of GABA(A)R subun
55 ed His-36, whereas its isomer, 7-azioctanol, photolabeled Asp-41.
56                                            A photolabeling assay showed that this annexin could bind
57 oreover, the PS1 heterodimer is specifically photolabeled at the cell surface by a potent inhibitor t
58                Propofol enhanced [(3)H]AziPm photolabeling at alphaM2-10'.
59                                          The photolabeling at the cytoplasmic end of the channel is f
60 fen, whereas neither drug inhibits [(3)H]CPZ photolabeling at the extracellular end, establishing tha
61                   Although the efficiency of photolabeling at the subunit level was unaffected by ago
62 and that [(3)H]azidopine can also be used to photolabel both wild-type R482-ABCG2 and mutant T482-ABC
63               Consistent with this, E193 was photolabeled by 3-azibutanol.
64 3 and alpha1Met-236 in alpha1M1), previously photolabeled by [(3)H]azietomidate, and alpha1Ile-239, l
65                         When the amino acids photolabeled by [(3)H]AziPm were identified by protein m
66 ino acids of each nAChR subunit specifically photolabeled by [(3)H]tetracaine that contribute to the
67                                 The proteins photolabeled by [(32)P-5N(3)]NAADP have molecular masses
68 olated, detergent-solubilized GluT1.HA.H6 is photolabeled by [gamma-32P]-azidoATP in an ATP-protectab
69 o acid in the alpha1-beta3 subunit interface photolabeled by R-[(3)H]mTFD-MPAB.
70 des (or limited sequences) site-specifically photolabeled by radioactive photolabile oligoDNA probes
71 -kDa cytosolic protein was also specifically photolabeled by these photoaffinity analogs.
72 ent is close enough to the active site to be photolabeled by trapped ATP analogues.
73 acetyl-geranylgeranyl cysteine enhanced E193 photolabeling by 3-azibutanol.
74 how reserpine- and tetrabenazine-protectable photolabeling by [125I]IAmF.
75 mer-causing mutation in PS1 strongly reduced photolabeling by a transition-state analogue but not by
76 ncentration dependence of inhibition of that photolabeling by etomidate or R-mTFD-MPAB also establish
77 tates by using electrophysiology-coordinated photolabeling by several lipophilic probes followed by m
78 ity CQ analogue, and lack of competition for photolabelling by VP, supports our QTL predictions.
79 dines are substrates of ABCG2 and that these photolabels can be used to screen new substrates and/or
80                                              Photolabeled Chinese hamster ovary membranes were cleave
81                 Incubation of [125I]TBZ-AIPP-photolabeled chromaffin granule membranes in the presenc
82 a32P]ATP-nucleotidylated or [alpha32P]8N3ATP-photolabeled CK is treated with trypsin a single, identi
83                                              Photolabeled CRABP-I was hydrolyzed with endoproteinase
84                                              Photolabeled CYP3A4 peptide adducts were further charact
85                                        These photolabeling data suggest that an accessory component w
86                                    They also photolabeled deltaTyr-212 at the delta-beta subunit inte
87 (3)) resulted in complete protection against photolabeling, demonstrating that [(32)P]pApAp(8-azidoA)
88  had normal ATPase activity, indicating that photolabeling did not significantly alter the enzymatic
89 t that the ability of NANTP and SSL-NANTP to photolabel different sites results from different orient
90 mately 0.5 mol of (14)C/mol of subunit, with photolabeling distributed within the nAChR extracellular
91               After proteolytic digestion of photolabeled DT-A, derivatized peptides were isolated us
92 er-free radioiodinated [125I]IAS was used to photolabel epitope-tagged human beta 2AR in membranes pr
93 l-terminal fourth repeat of annexin from the photolabeling experiment using domain-deletion mutants o
94 ion kinetics, photoinactivation studies, and photolabeling experiments are also included; these exper
95                                              Photolabeling experiments have been particularly informa
96          Competitive radioligand binding and photolabeling experiments using well-characterized nonco
97                                              Photolabeling experiments with 8-azido-ATP demonstrate a
98                                              Photolabeling experiments with the McbA propeptide now i
99                         Inhibition kinetics, photolabeling experiments, as well as X-ray crystallogra
100 roteins, including BamA and LptD as shown by photolabeling experiments.
101 he lipid carbonyl carbons, in agreement with photolabeling experiments.
102 o the fusion proteins were obtained from the photolabeling experiments.
103 (d) approximately 10 nM) in both binding and photolabeling experiments.
104 nt stereospecific barbiturate anesthetic, to photolabel expressed human alpha1beta3gamma2 GABAARs.
105                            Comparison of the photolabeled fragment from the subsequent proteolysis of
106                                              Photolabeled G proteins were either directly resolved us
107                             [3H]APFBzcholine photolabeled gammaLeu-109/deltaLeu-111, gammaTyr-111, an
108                                  Azialcohols photolabel Glu-33 and Tyr-418, two residues that are pre
109 nalysis of proteolytic fragments of azidoATP-photolabeled GLUT1.
110 rescent groups for the purpose of performing photolabeling have been prepared and evaluated using the
111                           General anesthetic photolabels have been instrumental in discovering and co
112                                 3-Azioctanol photolabeled His-36, whereas its isomer, 7-azioctanol, p
113 nalogue, 16b, was radioiodinated and used to photolabel human DAT-transfected HEK 293 cell membranes.
114 binding sites in an extrasynaptic GABAAR, we photolabeled human alpha4beta3delta GABAARs purified in
115 IC50 = 40 mum) than it inhibited ion channel photolabeling (IC50 = 125 mum).
116 orms of RNase L has been completed utilizing photolabeling/immunoprecipitation and affinity assays, r
117  7, followed by thrombin digestion, retained photolabel in a 22-kDa fragment, indicating that iodoami
118 ace; the etomidate analog [(3)H]azietomidate photolabeled in a pharmacologically specific manner two
119             In addition, [(3)H]TFD-etomidate photolabeled in an agonist-dependent manner amino acids
120  (alphaGlu-390, alphaCys-412) that were also photolabeled in nAChRs in the equilibrium desensitized s
121                                   For nAChRs photolabeled in the absence of agonist (resting state),
122 ist and [(3)H]azietomidate, amino acids were photolabeled in the ion channel [position M2-20 (alphaGl
123                          Comparison of nAChR photolabeling in the closed state (absence of agonist) a
124         The propofol-inhibitable [(3)H]AziPm photolabeling in the GABAAR beta3 subunit in conjunction
125 unit site in the delta subunit helix bundle, photolabeling in the nAChR desensitized state (+agonist)
126 a site within the ion channel, identified by photolabeling in the nAChR desensitized state of amino a
127  and deltaCys-236); (ii) in the ion channel, photolabeling in the nAChR resting, closed channel state
128 -55 and deltaTrp-57, as the primary sites of photolabeling in the non-alpha subunits.
129 es elicited by the activation of efficacious photolabels in vivo with time-resolved proteomics provid
130 presence of agonist and the agonist-enhanced photolabeling inhibitable by phencyclidine.
131 ne concentration establish that the observed photolabeling is at the high-affinity [(3)H]tetracaine-b
132 tubulin by subtilisin after, but not before, photolabeling is blocked by probe 1.
133                      The observed pattern of photolabeling is examined in relation to the predicted o
134                                    [(3)H]CPZ photolabeling is not detected in the transmembrane domai
135 or from detergent extracts of bovine cortex, photolabeled it with [(3)H]Ro15-4513, and identified (3)
136                                          The photolabeled kinase was subjected to tryptic digest, and
137                                              Photolabeling may help resolve this difficulty, and thus
138 namoyl (BzDC) analogue of Taxol specifically photolabeled mdr1b P-glycoprotein and now show that the
139 ta)-6-azi-pregnanolone (6-AziP), was used to photolabel membranes from Sf9 cells expressing high-dens
140                                     Previous photolabeling, modeling, and functional data have identi
141 f [(3)H]physostigmine- or [(3)H]galanthamine-photolabeled nAChR establish that, in the presence of ag
142 f peptide fragments isolated from [(3)H]CMPI-photolabeled nAChR subunits established photolabeling of
143 idate, an intravenous general anesthetic, we photolabeled nicotinic acetylcholine receptor (nAChR)-ri
144 ng domains in a ligand-gated ion channel, we photolabeled nicotinic acetylcholine receptor (nAChR)-ri
145 n of this protein with CNBr/trypsin revealed photolabeling of a 2.9-kDa peptide.
146 imulated ABCB1 ATPase activity and inhibited photolabeling of ABCB1 with [(125)I]-iodoarylazidoprazos
147 erestingly, erlotinib slightly inhibited the photolabeling of ABCB1 with [(125)I]iodoarylazidoprazosi
148 imulated ABCG2 ATPase activity and inhibited photolabeling of ABCG2 with [(125)I]-IAAP.
149 ed as antihypertensive agents, inhibited the photolabeling of ABCG2 with [(125)I]IAAP and [(3)H]azido
150 gh concentration, but it did not inhibit the photolabeling of ABCG2 with IAAP.
151 at propofol inhibited to the same extent the photolabeling of alpha1Met-236 and betaMet-286.
152               However, it is unknown whether photolabeling of alphaE262 causes functional effects in
153            Irradiation at 254 nm resulted in photolabeling of alphaTyr(198) in agonist binding site S
154 CMPI-photolabeled nAChR subunits established photolabeling of amino acids contributing to the ACh bin
155 crosequencing, we found propofol-inhibitable photolabeling of amino acids in the beta3-alpha1 subunit
156 ing state), there was tetracaine-inhibitable photolabeling of amino acids in the ion channel at posit
157                               The results of photolabeling of ArsA with the ATP analogue 8-azidoadeno
158 contrast, within the same site GABA enhances photolabeling of beta3Met-227 in betaM1 by an anesthetic
159     [(3)H]Azietomidate and [(3)H]R-mTFD-MPAB photolabeling of beta3Met-227 in betaM1 established that
160 re was also propofol-inhibitable [(3)H]AziPm photolabeling of beta3Met-227 in betaM1, the amino acid
161                           [(3)H]azietomidate photolabeling of beta3Met-286 in betaM3 and alpha4Met-26
162 05 in the vestibule of the ion channel, with photolabeling of both residues enhanced in the presence
163 fic, AMP-PCP-enhanced, [(3)H]azidodantrolene photolabeling of both the RyR monomer and a 160 or 172 k
164              Here, we use [(3)H]azietomidate photolabeling of bovine brain GABA(A)Rs to determine whe
165 imulated GLUT4 translocation, as assessed by photolabeling of cell surface GLUT4 with Bio-LC-ATB-BMPA
166 ition of agonist did not enhance [(125)I]TID photolabeling of deltaIle288 within the deltaM2-M3 loop.
167                                    Halothane photolabeling of deltaTyr-228 provides initial evidence
168                      Within M1, the level of photolabeling of deltaTyr-228 with [(14)C]halothane was
169                                              Photolabeling of DnaA protein occurred with membrane pro
170  [35S]GTPgammaS binding, a decrease in basal photolabeling of G-proteins with azidoanilido-[alpha-32P
171        We previously identified azietomidate photolabeling of GABA(A)R alpha1Met-236 and betaMet-286
172 (A)R-modulating neurosteroids do not inhibit photolabeling of GABA(A)R alpha1Met-236 or betaMet-286 b
173 ) (GTPgammaS) binding and GTP hydrolysis and photolabeling of Galpha, we demonstrate highly efficient
174                                 Importantly, photolabeling of Galpha-subunits with azidoanilido-[alph
175              GABA inhibits S-[(3)H]mTFD-MPPB photolabeling of gamma2Ser-280 (gammaM2-15') in this sit
176 gamma-alpha subunit interface, identified by photolabeling of gammaMet299 within the gammaM3 helix at
177             Furthermore, [(3)H]physostigmine photolabeling of gammaTyr-111, gammaTyr-117, deltaTyr-21
178 ty labeling (BEProFL) approach that utilizes photolabeling of HDAC8 with a probe containing a UV-acti
179 al analyses, radioligand binding assays, and photolabeling of nAChR-rich membranes with [3H]BP to ide
180                    Compound 28 inhibited the photolabeling of P-gp with [(125)I]-iodoarylazidoprazosi
181 P produced time- and concentration-dependent photolabeling of protein bands of approximately 35 and 6
182                                   [125I]IAmF photolabeling of recombinant VMAT2, expressed in SH-SY5Y
183  specifically inhibits [(3)H]azidodantrolene photolabeling of RyR1 and its N-terminal fragment in SR.
184                                Saturation of photolabeling of the 80- and the 37-kDa RNase L with the
185            8-Azidoadenosine 5'-monophosphate photolabeling of the AMP-binding site and adenylate kina
186                                              Photolabeling of the beta3 subunits was stereoselective,
187 s not have an effect on the Kd value; and 3) photolabeling of the protein with a cysteine residue in
188 ([(125)I]TID) to compare the state-dependent photolabeling of the Torpedo nAChR before and after puri
189                                          The photolabeling of these amino acids suggests that when th
190 ersubunit sites, inhibited [(3)H]S-mTFD-MPPB photolabeling of these nAChR intrasubunit binding sites.
191                             We now find that photolabeling of this pocket persists during the transit
192                                              Photolabeling of this protein by IAC was inhibited by SK
193 ein site, and propofol inhibited [(3)H]AziPm photolabeling of this site in myelin SIRT2.
194 solated from proteolytic digests established photolabeling of two residues: one within the alphaM1 tr
195                                 Preferential photolabeling on Pbeta from Pgamma position 40 and on Pa
196 xes, 8-azido-ATP was found to preferentially photolabel one chain of the homodimer, suggesting that t
197                                   To achieve photolabeling or photoligation of two substrates, one is
198 esthetic steroid alphaxalone, which enhanced photolabeling, or DS-2, a delta subunit-selective positi
199 Br fragment generated from the 3'-BzDC-Taxol-photolabeled P-glycoprotein was immunoprecipitated by a
200 ed His(8)-beta3 subunits identified a single photolabeled peptide, ALLEYAF-6-AziP, in the third trans
201 nity chromatography and reversed-phase HPLC, photolabeled peptides located within or near the phospha
202 , and cleaved with AspN and/or GluC, and the photolabeled peptides were sequenced.
203 lytic digestion and isolation of fluorescent photolabeled peptides.
204                                   This probe photolabels PfCRT in situ with high specificity.
205 oth agents were also effective and selective photolabels, photoincorporating into some, but not all,
206                                          The photolabeled PKCdelta C1B was subjected to tryptic diges
207 ytoplasmic end of the M2 ion channel domain, photolabeling positions M2-2, M2-6, and/or M2-9 in each
208                                         This photolabeled protein comigrates with a protein in Wester
209                                 [(3)H]6-AziP photolabeled proteins of 30, 55, 110, and 150 kDa, in a
210 itate a small fraction of the 45- and 40-kDa photolabeled proteins, suggesting that these proteins as
211 igrates with either the 45-kDa or the 40-kDa photolabeled proteins.
212 termine the sites of cholesterol binding, we photolabeled purified mouse VDAC1 (mVDAC1) with photoact
213                                  Tracking of photolabeled Rac2-deficient neutrophils from hematopoiet
214 coupled to an alkyne-containing neurosteroid photolabeling reagent and used to identify peptide-stero
215 inding sites directly, a neurosteroid-analog photolabeling reagent, (3alpha,5beta)-6-azi-pregnanolone
216 4 was found to be an exceptionally efficient photolabeling reagent, incorporating into both alpha1 an
217 alent attachment site for Bpa(4)-SP, a small photolabeled receptor fragment was generated by chemical
218 c and chemical fragmentation analysis of the photolabeled receptor mutants established that the sites
219                Fragmentation analysis of the photolabeled receptor restricted the site of photoincorp
220 ltaM2-13') that line the channel lumen (with photolabeling reduced by >90% in the desensitized state)
221 like the parent anesthetic, and identify two photolabeled residues (V954 and E969) in the S6 helix.
222                     In the model, all of the photolabeled residues line the ligand binding cavity exc
223 le different adduct masses were found on the photolabeled residues, and the molecular identity of eac
224 8-azidoadenosine 5'-monophosphate (8-N3-AMP) photolabeled separate sites in CFTR.
225              These results indicate that the photolabel shares a binding site with the short, linear
226 Cyanogen bromide cleavage of the [125I]IACoc photolabeled sigma-1 receptor followed by radiosequencin
227 ore, after cleaving the specific [(125)I]IAF-photolabeled sigma-1 receptor in guinea pig and rat live
228                              Cleavage of the photolabeled sigma-1 receptor using Endo Lys C and cyano
229                                  Instead, it photolabeled sites at the alpha(+)-beta(-) and gamma(+)-
230 table cholesterol analogues and analyzed the photolabeled sites with both top-down mass spectrometry
231  the feasibility of identifying neurosteroid photolabeling sites by using mass spectrometry.
232 tation of solubilized, [(3)H]azidodantrolene-photolabeled SR protein reveals that the cleaved 160/172
233          Using meta-azi-propofol (AziPm), we photolabeled stable 5-LOX protein, which had been used t
234                              First, we use a photolabelling strategy to trace the connections that re
235 19-[3H]BPC-discodermolide), was selected for photolabeling studies because it had the highest extent
236                                              Photolabeling studies established that S-mTFD-MPPB binds
237                        This was supported by photolabeling studies showing concentration- and UV-depe
238                                              Photolabeling studies using [3H]-3-azioctanol in Torpedo
239                                     Previous photolabeling studies with [(3)H]flunitrazepam identifie
240  DsRed-derived variants which we showcase in photolabeling studies, and discuss these data in terms o
241                      Upon the basis of these photolabeling studies, we conclude that (1) subunits VII
242 rophenyl azido (pfpa) CQ analogues for PfCRT photolabeling studies.
243 he binding of ginkgolides to PAF receptor by photolabeling studies.
244   In this study, we developed an intact cell photolabeling technique that allows the direct visualiza
245  (D-mannose-4-yloxy)-2-propylamine exofacial photolabeling technique, was reduced by approximately 70
246 s(D-mannos-4-yloxy)-2-propyl amine exofacial photolabeling technique.
247         In the present study patch clamp and photolabelling techniques were used to investigate the m
248                                          The photolabeling technology developed here offers a new way
249                    Tryptic peptides from the photolabeled terminase were purified by affinity chromat
250 tinic acetylcholine receptors (nAChRs) and a photolabel that incorporates both at the lipid-protein i
251 cing revealed that R-[(3)H]mTFD-MPAB did not photolabel the etomidate sites at the beta(+)-alpha(-) s
252 table analogs of 1-butanol and 1-octanol, to photolabel the purified Ig1-4 domain of human L1 (hL1 Ig
253                          [(3)H]TFD-etomidate photolabeled the alpha-subunit of the nAChR in a manner
254                    In living cells, BPyneTEA photolabels the closed state selectively over the inacti
255 icated that [(3)H]3'-(p-azidobenzamido)Taxol photolabels the N-terminal 31 amino acids of beta-tubuli
256 r of chiral barbiturates that are capable of photolabelling their binding sites on GABAA receptors.
257  was mutated to a glutamine, KK174 no longer photolabeled this residue, but instead labeled the nearb
258                                        AziPm photolabeled three SIRT2 residues (Tyr(139), Phe(190), a
259 Torpedo californica nAChRs and time-resolved photolabeling to identify the nAChR binding sites occupi
260 atidine in a muscle and a neuronal nAChR, we photolabeled Torpedo alpha(2)betagammadelta and expresse
261 -binding regions on Palpha and Pbeta through photolabel transfer from various Pgamma positions throug
262  were able to investigate this issue using a photolabel transfer strategy that allows for mapping the
263  candidate targets, we used a combination of photolabeling, two-dimensional gel electrophoresis, and
264 xing unit, a novel freeze-quench unit, and a photolabeling unit.
265            This was confirmed by hydrophobic photolabeling using liposomes containing trace amounts o
266  on the full ectodomain LFA-1 were probed by photolabeling using photoactivatable isoflurane (azi-iso
267 purified recombinant PfCRT, we analyze AzBCQ photolabeling versus competition with CQ and other drugs
268     Within alpha subunit, >/=95% of specific photolabeling was contained within a 20-kilodalton prote
269                                              Photolabeling was inhibited by anesthetic concentrations
270                           [(32)P-5N(3)]NAADP photolabeling was irreversible in a high K(+) buffer, a
271                                              Photolabeling was performed after preincubation times of
272 e antagonist, or isoflurane, state-dependent photolabeling was seen in a delta subunit fragment begin
273 inhibitory effects elicited by these MSAs on photolabeling were distinct for beta-tubulin from differ
274 alphaM1 and deltaTyr-228 within deltaM1 were photolabeled, while no labeled amino acids were identifi
275                         Purified UGT1A10 was photolabeled with 4-AzHBA, digested with trypsin, and an
276 in GDP-fucose transport and was specifically photolabeled with 8-azidoguanosine-5'-[alpha-(32)P]triph
277 ), opsin and membrane lipids were dominantly photolabeled with [(14)C]halothane, but none of the thre
278                    nAChR-rich membranes were photolabeled with [(3)H]AziPm, and labeled amino acids w
279 subunits, isolated from nAChR-rich membranes photolabeled with [(3)H]Bz(2)choline, were digested enzy
280                    nAChR-rich membranes were photolabeled with [(3)H]TDBzl-etomidate, and labeled ami
281  Subunits isolated from nAChR-rich membranes photolabeled with [(3)H]tetracaine were subjected to enz
282  Subunits isolated from nAChR-rich membranes photolabeled with [3H]dTC were subjected to enzymatic di
283 -subunit, isolated from nAChR-rich membranes photolabeled with [3H]dTC, was digested with Staphylococ
284 ovary cells was specifically and efficiently photolabeled with a radioiodinated derivative of Bpa(4)-
285 a-tubulin isotype content, were specifically photolabeled with a tritium-labeled Taxol analog, 2-(m-a
286                                   Myofibrils photolabeled with AziPm and Azi-iso identified myosin, a
287 ylcholine vesicles and could be specifically photolabeled with P3-(4-azidoanilido)-uridine-5'-[P1-32P
288      To identify this site, PKCdelta C1B was photolabeled with three photo-activable diazirine alcoho
289                                              Photolabeling with 3-(trifluoromethyl)-3-(m-[125I]iodoph
290 vesicles of defined composition and by using photolabeling with 3-trifluoromethyl-3-(m-[125I]iodophen
291                     Conversely, AMP enhanced photolabeling with 8-N3-ATP at ATP-binding site 2.
292  shows greatly decreased activity, abolished photolabeling with [32P]8N3ATP, and no detectable autoin
293 ytochrome c oxidase (CcO) were identified by photolabeling with arylazido-cardiolipin analogues and d
294 rs that combines attributes of high-contrast photolabeling with high-sensitivity Ca(2+) detection in
295 ain of the Torpedo nAChR using time-resolved photolabeling with the hydrophobic probe 3-(trifluoromet
296 and cell surface GLUT4 levels as assessed by photolabeling with the membrane-impermeant reagent 2-N-(
297 hetic sites on GABAA receptors (GABAA Rs) by photolabelling with an anaesthetic barbiturate.
298               Propofol inhibited [(3)H]AziPm photolabeling within the delta subunit helix bundle at l
299 lower-efficiency, state-dependent [(3)H]CMPI photolabeling within the ion channel.
300 or the purified nAChR, the agonist-sensitive photolabeling within the M2 ion channel domain of positi

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