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1 ssembly of elastic fibers in vivo, preceding chemical cross-linking.
2 ated ELP3 and form stable helices only after chemical cross-linking.
3 ter exemplified by immunoprecipitation after chemical cross-linking.
4 of the CbbRRS system), confirmed in vitro by chemical cross-linking.
5 d to ssDNA was determined by protein-protein chemical cross-linking.
6 roduced using homology modeling coupled with chemical cross-linking.
7 inding interactions with SERCA2a measured by chemical cross-linking.
8 nsgenic mouse lens extracts prepared without chemical cross-linking.
9 luorescent protein to the plasma membrane or chemical cross-linking.
10 a2+ pump (SERCA2a) have been investigated by chemical cross-linking.
11  polymerase chain reaction (PCR), as well as chemical cross-linking.
12 stabilize the pulled nanotubes by subsequent chemical cross-linking.
13 ycol)-b-poly(L-lysine) (PEG-PLL) followed by chemical cross-linking.
14 ast to many chaperone complexes that require chemical cross-linking.
15 atography coupled with light scattering, and chemical cross-linking.
16  and alpha,gamma-associations as detected by chemical cross-linking.
17 lustering of alpha(v)beta(3) as confirmed by chemical cross-linking.
18 we investigated RGS7 complexes using in situ chemical cross-linking.
19 erize it by small-angle x-ray scattering and chemical cross-linking.
20 s (Ag-coupled splenocytes [Ag-SPs]) with the chemical cross-linking agent ethylene-carbodiimide, whic
21                               We also used a chemical cross-linking agent to covalently cross-link PD
22 d a non-membrane-permeable cysteine-specific chemical cross-linking agent, a dimer is the predominant
23 results demonstrated that the application of chemical cross-linking agents to etched dentin prior to
24 oss-linking of the ecto-ATPase by lectin and chemical cross-linking agents.
25 ilization of peptide oligomers using in situ chemical cross-linking allowed detailed study of their p
26 tion of the proteins from DNA complexes, and chemical cross-linking analyses.
27                           Gel filtration and chemical cross-linking analysis of the recombinant carbo
28 te the null-like drug sensitivity phenotype, chemical cross-linking analysis revealed no apparent def
29                        Using gel filtration, chemical cross-linking, analytical ultracentrifugation,
30                                     Finally, chemical cross-linking, analytical ultracentrifugation,
31 longated dimers and tetramers as revealed by chemical cross-linking and analytical ultracentrifugatio
32                                        Using chemical cross-linking and co-immunoprecipitation of dif
33                                              Chemical cross-linking and coimmunoprecipitation show th
34    Here we have addressed this issue by both chemical cross-linking and direct imaging of individual
35                                              Chemical cross-linking and DNA sequencing have revealed
36 al significance has been verified using both chemical cross-linking and electron paramagnetic resonan
37                          Here, we show using chemical cross-linking and fluorescence resonance energy
38  forms of each AUF1 protein variant, we used chemical cross-linking and gel filtration chromatography
39                       Remarkably, gel shift, chemical cross-linking and gel filtration experiments sh
40                                              Chemical cross-linking and gel-filtration show that a 1:
41 omatography, analytical ultracentrifugation, chemical cross-linking and hydrodynamic modeling.
42                             A combination of chemical cross-linking and hydrogen-deuterium exchange c
43                         In the present work, chemical cross-linking and immunoprecipitation assays we
44                                   We applied Chemical Cross-Linking and Isolation by Pull Down (Chem-
45                                              Chemical Cross-Linking and Isolation by Pull-Down (Chem-
46                                              Chemical cross-linking and LC-MS/MS further indicated th
47                                              Chemical cross-linking and MALDI-TOF MS mapped these sam
48                                   By in vivo chemical cross-linking and MALDI-TOF-MS analysis we demo
49 alytic dimer (alphabeta), based primarily on chemical cross-linking and mass spectrometric analysis.
50                                        Using chemical cross-linking and mass spectrometry (XL-MS) com
51 ryo-electron microscopy and verified it with chemical cross-linking and mass spectrometry analysis.
52                                      Using a chemical cross-linking and mass spectrometry approach, w
53                                              Chemical cross-linking and mass spectrometry are now wid
54 raction but not for cleavage of Pro-sigma(K) Chemical cross-linking and mass spectrometry of purified
55 racterization of both transporters either by chemical cross-linking and mass spectrometry or by size-
56                            We have performed chemical cross-linking and mass spectrometry, and combin
57                                        Here, chemical cross-linking and mass spectrometry, comparativ
58                       Using a combination of chemical cross-linking and mass spectrometry, we find th
59 tagging-method, in combination with isotopic chemical cross-linking and mass spectrometry, we have lo
60                                Using in vivo chemical cross-linking and mass spectrometry, we identif
61                                        Using chemical cross-linking and mass spectrometry, we identif
62 spholipid were deduced from a combination of chemical cross-linking and mass spectrometry.
63 s (rHDL) were attained from a combination of chemical cross-linking and mass spectrometry.
64 ein (HDL) was studied using a combination of chemical cross-linking and mass spectrometry.
65  analyzed by cryo-electron microscopy and by chemical cross-linking and mass spectrometry.
66 nic electron microscopy and a combination of chemical cross-linking and mass spectrometry.
67                                              Chemical cross-linking and molecular dynamics are consis
68                      Based on the results of chemical cross-linking and molecular modeling, we propos
69 e C-type lectin-like domain of NKR-P1C using chemical cross-linking and molecular modeling.
70 to antigen-scaffold linkage: genetic fusion, chemical cross-linking and plug-and-display SpyTag/SpyCa
71                                              Chemical cross-linking and size exclusion chromatography
72 gions of Pluronic F127 micelles, followed by chemical cross-linking and subsequent removal of non-cro
73  Using a proteomic approach based on in-cell chemical cross-linking and tandem affinity purification
74 hermus aquaticus Ffh.FtsY complexes by using chemical cross-linking and tandem mass spectrometry to i
75                                        Using chemical cross-linking and tandem mass spectrometry, we
76                                        Using chemical cross-linking and the yeast two-hybrid system,
77 beta(4) subcomplex was observed through both chemical cross-linking and top-down MS of PhK.
78                      Here, we have used NMR, chemical cross-linking, and analytical ultracentrifugati
79 , enzyme-linked immunosorbent assay (ELISA), chemical cross-linking, and ATPase activity) provided ev
80 rs, increased susceptibility of integrins to chemical cross-linking, and biochemical detection of lar
81 yphenylalanine (DOPA) for periodate-mediated chemical cross-linking, and biotin was conjugated to Lys
82                              Gel filtration, chemical cross-linking, and co-immunoprecipitation exper
83 oscopy, small-angle X-ray scattering (SAXS), chemical cross-linking, and enzymatic assays to enlarge
84 nt techniques: small-angle X-ray scattering, chemical cross-linking, and enzyme kinetics.
85                   Deletion analysis in vivo, chemical cross-linking, and manipulation of the ATP conc
86 y, bimolecular fluorescence complementation, chemical cross-linking, and reciprocal coimmunoprecipita
87                                Fluorescence, chemical cross-linking, and saturation transfer differen
88 opy, X-ray crystallography, residue-specific chemical cross-linking, and several proteomics technique
89 erium exchange coupled to mass spectrometry, chemical cross-linking, and small angle x-ray scattering
90 e results of analytical ultracentrifugation, chemical cross-linking, and tryptophan fluorescence anal
91                                We employed a chemical cross-linking approach to probe the structure a
92                                      We used chemical cross-linking approaches to map interdomain int
93 tron-microscopy, cysteine-accessibility, and chemical cross-linking, as well as by computational appr
94                                              Chemical cross-linking assays showed that the mutated Th
95                      Gel shift, DNase I, and chemical cross-linking assays with TATA box-binding prot
96                             The mechanism of chemical cross-linking at pH 7.4 and 37 degrees C was st
97 nts of the needle-translocon complex using a chemical cross-linking-based approach.
98 rium exchange (HDX), protein footprinting or chemical cross-linking can provide us with structural in
99  protein, which is readily demonstratable by chemical cross-linking, can be completely dissociated by
100                                              Chemical cross-linking combined with an enzymatic digest
101                                              Chemical cross-linking combined with immunoprecipitation
102                                              Chemical cross-linking combined with mass spectrometry (
103  receptor, as the receptor for TLQP-21 using chemical cross-linking combined with mass spectrometry a
104 is, electron microscopic reconstruction, and chemical cross-linking combined with mass spectrometry a
105                                              Chemical cross-linking combined with mass spectrometry c
106                                              Chemical cross-linking combined with mass spectrometry i
107 to investigate protein/protein interactions, chemical cross-linking combined with mass spectrometry r
108                       In this study, we used chemical cross-linking combined with mass spectrometry t
109 ultiple experimental constraints provided by chemical cross-linking combined with mass spectrometry,
110                                              Chemical cross-linking combined with proteolytic digesti
111                                        Using chemical cross-linking, competition studies, and NMR che
112                                 In addition, chemical cross-linking conferred activity upon G85R, an
113            Photoreactive heterotrifunctional chemical cross-linking confirmed the interaction between
114           Analytical ultracentrifugation and chemical cross-linking confirmed the presence of dimers
115              Hydrogen/deuterium exchange and chemical cross-linking coupled to mass spectrometry reve
116                                              Chemical cross-linking coupled with mass spectrometric a
117                                              Chemical cross-linking coupled with mass spectrometry (C
118                                   We applied chemical cross-linking coupled with mass spectrometry an
119                                              Chemical cross-linking coupled with mass spectrometry pl
120 ral approach using cryo-electron microscopy, chemical cross-linking coupled with mass spectrometry, a
121 pts red cell membranes were elucidated using chemical cross-linking coupled with mass spectrometry.
122 combination of site-directed mutagenesis and chemical cross-linking, coupled with crystallographic an
123 des this nonspecific oligomerization, MS and chemical cross-linking data combined with CD spectra pro
124                                              Chemical cross-linking demonstrated that carbohydrates a
125 tic analysis, analytical gel filtration, and chemical cross-linking demonstrated that the nucleotide-
126 ally tagged RGS7 constructs, with or without chemical cross-linking, demonstrated RGS7 self-associati
127 -protein interface from NMR spectroscopy and chemical cross-linking detected by mass spectrometry.
128                                        Using chemical cross-linking, eight potential protein constitu
129 or-intensive biophysical experiments such as chemical cross-linking, electron paramagnetic resonance,
130 body specific to K-varepsilon-GG to beads by chemical cross-linking, enrichment of ubiquitinated pept
131                                              Chemical cross-linking experiments carried out previousl
132 rotein-protein interactions was supported by chemical cross-linking experiments combined with LC-MS/M
133                                              Chemical cross-linking experiments confirm that FAD2 and
134 ssociated with the tetramer as isolated, and chemical cross-linking experiments confirm that the tetr
135                              Mutagenesis and chemical cross-linking experiments confirm the importanc
136             Formation of dimers was shown by chemical cross-linking experiments for interactions of T
137 itation, analytical ultracentrifugation, and chemical cross-linking experiments have shown that an in
138                Sedimentation equilibrium and chemical cross-linking experiments performed at increasi
139                            Cell adhesion and chemical cross-linking experiments revealed that oligome
140 ative polyacrylamide gel electrophoresis and chemical cross-linking experiments suggested that AcrB(D
141                                              Chemical cross-linking experiments using GTP-gamma-azido
142 e cross-linking reagents and methodology for chemical cross-linking experiments using tandem mass spe
143                                              Chemical cross-linking experiments were also performed a
144                                              Chemical cross-linking experiments with biotinylated ann
145                                              Chemical cross-linking experiments, perfluoro-octanoate-
146  and optional restraints from proteomics and chemical cross-linking experiments.
147 major bottleneck for mass spectrometry based chemical cross-linking experiments.
148  membrane-based yeast two-hybrid system, and chemical cross-linking experiments.
149 scopy, transmission electron microscopy, and chemical cross-linking experiments.
150                This finding was confirmed by chemical cross-linking experiments.
151 sed to unravel protein interaction surfaces, chemical cross-linking followed by identification of the
152                              Here, we report chemical cross-linking followed by immunodetection and l
153            To address this, we have utilized chemical cross-linking followed by mass spectrometry and
154                                              Chemical cross-linking followed by mass spectrometry yie
155                                              Chemical cross-linking followed by micrometric flow cyto
156 tudy of proteins and protein complexes using chemical cross-linking followed by the MS identification
157 scopy along with our established paradigm of chemical cross-linking followed by tryptic digestion, ma
158  oligomerization has mainly been assessed by chemical cross-linking following cell fractionation stud
159 tionships are investigated: (i) differential chemical cross-linking for the control of membrane disas
160 ucture of hOAT1 using combined approaches of chemical cross-linking, gel filtration chromatography, c
161 nd immunoprecipitations that use physical or chemical cross-linking--have been developed to address t
162                                 By employing chemical cross-linking, high proton conductivities can b
163                      This procedure utilized chemical cross-linking, hydrogen/deuterium exchange, and
164                                              Chemical cross-linking in combination with mass spectrom
165                                              Chemical cross-linking in combination with solution-stat
166                                   We now use chemical cross-linking in synaptosomes, pinched-off nerv
167 osed on the basis of the analytical data and chemical cross-linking in tandem with mass analysis usin
168 s and multimers observed, but performing the chemical cross-linking in the presence of a reducing age
169                                              Chemical cross-linking in vivo and copurification approa
170                            Here we show that chemical cross-linking increases trimer stability, reduc
171  gel electrophoresis, mass spectrometry, and chemical cross-linking indicated that NanR forms homodim
172                                              Chemical cross-linking indicates that full-length NS3 fo
173  at least two PC bound that is stabilized by chemical cross-linking interacts more effectively with a
174                                              Chemical cross-linking is an attractive approach to map
175                                              Chemical cross-linking is employed here to probe differe
176                             In addition, via chemical cross-linking, limited proteolysis, and mass sp
177 rstanding of mitochondrial function, we used chemical cross-linking mass spectrometry to identify 2,4
178 wo well established experimental approaches: chemical cross-linking/mass spectrometry (MS) and intern
179   The number of publications in the field of chemical cross-linking/mass spectrometry (MS) for derivi
180  this end, we have utilized a combination of chemical cross-linking/mass spectrometry and computation
181                              Here, we used a chemical cross-linking method together with molecular dy
182 ere prepared as Fab' x Fab' conjugates using chemical cross-linking methods and as bispecific diabodi
183 lized near the actin and myosin interface by chemical cross-linking methods, but its functional contr
184 S, bottom-up proteomics, ion mobility-MS and chemical cross-linking MS into modeling restraints to co
185 he entire beta subunit was constructed using chemical cross-linking, MS, threading, and ab initio app
186 trophysiology, chemical ligand modification, chemical cross-linking, MS/MS-analyses and molecular mod
187 s on the structural information derived from chemical cross-linking/MS experiments.
188 e oligomeric structure of Ano1, we performed chemical cross-linking, non-denaturing PAGE, and electro
189                                              Chemical cross-linking of acidic residues is achieved us
190                                              Chemical cross-linking of detergent-resistant membranes
191                                              Chemical cross-linking of ferritin at 12 A spacing led t
192 nteracting residues on FXIII-A(2)* following chemical cross-linking of fibrin(ogen) alphaC389-402 pep
193                                              Chemical cross-linking of focal adhesion preparations wi
194                                              Chemical cross-linking of GG and mutagenesis of full-len
195                          We anticipated that chemical cross-linking of HIV-1 would allow purification
196                        We used site-directed chemical cross-linking of Int in trapped Holliday juncti
197                                              Chemical cross-linking of intact membrane proteins from
198                       In this study, we used chemical cross-linking of introduced cysteine pairs in a
199                                              Chemical cross-linking of maize leaves followed by immun
200                                 Bifunctional chemical cross-linking of MENT revealed oligomerization
201    The use of mass spectrometry coupled with chemical cross-linking of proteins has become a powerful
202                                              Chemical cross-linking of proteins in combination with m
203                            Animal studies of chemical cross-linking of sclera as a potential treatmen
204  fulfills distance constraints obtained from chemical cross-linking of the complex at multiple recurr
205                                              Chemical cross-linking of the complex B core resulted in
206                                              Chemical cross-linking of the complex followed by trypti
207 y adsorbed on Au microelectrodes followed by chemical cross-linking of the enzymes acetylcholinestera
208                  Static light scattering and chemical cross-linking of the three RFX proteins show th
209                                Here, we used chemical cross-linking of topo IV to demonstrate that en
210                               By contrasting chemical cross-linking of untreated and dephosphorylated
211 locked in either the closed or open state by chemical cross-linking or deletion mutagenesis and showe
212                                              Chemical cross-linking or interaction with hsp70 increas
213 t amounts of stable APD in solution, without chemical cross-linking or polymerization-affecting compo
214 erences in proteolytic cleavage patterns and chemical cross-linking patterns were consistent with kno
215 oaches, including site-directed mutagenesis, chemical cross-linking, peptide mapping, and LC-MS/MS an
216                     We used a combination of chemical cross-linking, proteolytic digestion, and mass
217        We used homo- and hetero-bifunctional chemical cross-linking reagents, BS3 and sulfo-SMPB, res
218 loops in Drosophila were determined by Hi-C (chemical cross-linking, restriction digestion, ligation,
219  dynamic neuron-oligodendrocyte signaling by chemical cross-linking results in aberrant myelination o
220                                              Chemical cross-linking results support the IFT52-IFT88 i
221      Site-directed mutagenesis combined with chemical cross-linking revealed that residue 238 of DrAB
222                                              Chemical cross-linking revealed that the major soluble f
223 gle x-ray scattering (SAXS) measurements and chemical cross-linking revealed that the pASK1-CD.14-3-3
224 red to as the "pointed-end complex." We used chemical cross-linking, RNA interference, and protein ov
225 d immunosorbent assay, Western blot, in vivo chemical cross-linking, ROS assay, and immunofluorescenc
226                                     However, chemical cross-linking showed that 7B2 exhibits concentr
227  electrophoresis under anoxic conditions and chemical cross-linking showed that holo-NfuA forms dimer
228                                              Chemical cross-linking showed that LGN neuron preapoptos
229                           Gel filtration and chemical cross-linking showed that the complex exists as
230                                              Chemical cross-linking shows that CggR oligomerization i
231                                              Chemical cross-linking shows that pathogenic DJ-1 mutant
232 in the monomeric state (for example, through chemical cross-linking) significantly hampers the fibril
233 lved in the Fd-Delta9D complex by the use of chemical cross-linking, site-directed mutagenesis, stead
234                           Using mutagenesis, chemical cross-linking, size exclusion chromatography, a
235 tathione S-transferase pulldown experiments, chemical cross-linking, size exclusion chromatography, c
236 on method involves microsomal fractionation, chemical cross-linking, solubilization, and one-step aff
237 upted by solubilization in Triton X-100, but chemical cross-linking stabilizes a putative assembly in
238 allenges in protein interaction studies with chemical cross-linking stems from the complexity of intr
239 hylaminopropyl) carbodiimide (EDC)-mediated, chemical cross-linking step that enhances detection of s
240 e G protein-coupled receptor-Galphai protein chemical cross-linking strategy to map the cannabinoid r
241                                      Using a chemical cross-linking strategy, complexes of AlkB-doubl
242 NA and ABH2-dsDNA complexes, stabilized by a chemical cross-linking strategy.
243 e basis for small angle x-ray scattering and chemical cross-linking structural analysis of the discre
244                                              Chemical cross-linking studies indicate an inverse corre
245 ociate, and gel-exclusion chromatography and chemical cross-linking studies indicated that atlastin-1
246 s, density-gradient ultracentrifugation, and chemical cross-linking studies indicated that the functi
247                   Co-immunoprecipitation and chemical cross-linking studies previously revealed that
248                                              Chemical cross-linking studies revealed SAMHD1 tetramers
249                                              Chemical cross-linking studies revealed specific sites o
250 or for XMRV, Xpr1, mediates this effect, and chemical cross-linking studies show that Xpr1 is associa
251 P3, binding analyses, reaction kinetics, and chemical cross-linking studies were used to demonstrate
252                               Here we employ chemical cross-linking studies, a novel co-immunoprecipi
253 are confirmed by independent mutagenesis and chemical cross-linking studies.
254 ystems, immunoprecipitation experiments, and chemical cross-linking studies.
255  homodimer." Furthermore, the EPR data and a chemical cross-linking study demonstrated the existence
256      We combined mass spectrometry (MS) with chemical cross-linking, surface accessibility measuremen
257                                     Although chemical cross-linking takes longer (15 min to 2 h) than
258  confirm these split-ubiquitin findings by a chemical cross-linking technique.
259               Using novel label transfer and chemical cross-linking techniques, we show that ubiquiti
260  been evaluated by SDSL EPR spectroscopy and chemical cross-linking techniques.
261  Consistent with this, we identified through chemical cross-linking that Ecm29 binds to, or in close
262 ss, we show by a yeast two-hybrid system and chemical cross-linking that the lumenal domain of IRAP c
263 ed every prediction tested: Any mutation (or chemical cross-linking) that impaired a conformational r
264                                           By chemical cross-linking the C domain interacts with the p
265                                              Chemical cross-linking, thermal denaturation, and size f
266                    Instead of ultraviolet or chemical cross-linking, this method utilizes natural hyd
267  angle x-ray scattering and isotope-assisted chemical cross-linking to apoA-I(Delta185-243) in its di
268      To build a more complete model, we used chemical cross-linking to derive distance constraints ac
269 e used time-resolved limited proteolysis and chemical cross-linking to examine nucleotide-induced str
270 , electron paramagnetic resonance (EPR), and chemical cross-linking to probe for intermolecular inter
271 y we used quantitative mass spectrometry and chemical cross-linking to quantify differences in cross-
272  Ono et al. used rapid, zero-length, in situ chemical cross-linking to stabilize the oligomer state,
273 ested this by using cysteine mutagenesis and chemical cross-linking to verify proximal relationships
274                                              Chemical cross-linking together with immunoelectron micr
275                                              Chemical cross-linking, together with mass spectrometry
276                                           By chemical cross-linking, transiently expressed hRFC in hR
277                                  The KD from chemical cross-linking was 12.7 +/- 1.1 microM, and from
278 und no preferential dimer formation, whether chemical cross-linking was performed in the presence or
279                                              Chemical cross-linking was used to study protein binding
280                                        Using chemical cross-linking we have previously reported that
281         Using protein docking prediction and chemical cross-linking, we demonstrate that EIIA(Glc) bi
282                                        Using chemical cross-linking, we demonstrated that CFTR exists
283           Although fluidity is suppressed by chemical cross-linking, we find that ATP depletion in th
284 ion and complex structure associations using chemical cross-linking, we have developed a combination
285  Using NMR spectroscopy, gel filtration, and chemical cross-linking, we obtained direct evidence for
286 dy, using analytical ultracentrifugation and chemical cross-linking, we show that calcium or strontiu
287                                        Using chemical cross-linking, we show that the MDM2 RING domai
288                            Further, by using chemical cross-linking, we showed that the chimeric prot
289  this protein to form dimers, as detected by chemical cross-linking, were consistent with the higher
290 ected mutagenesis, cysteine replacement, and chemical cross-linking, were employed to identify contac
291 ini-spectrin dimer were probed further using chemical cross-linking, which identified distinct groups
292 arrier- and PCFT-null HeLa (R1-11) cells and chemical cross-linking with 1,1-methanediyl bismethaneth
293     Thermal curing under reduced pressure or chemical cross-linking with a diepoxide was shown to fix
294 L-6 antibody and protein G was stabilized by chemical cross-linking with glutaraldehyde and the captu
295                                        After chemical cross-linking with glutaraldehyde in the presen
296                                  Large-scale chemical cross-linking with mass spectrometry (XL-MS) an
297                                              Chemical cross-linking with mass spectrometry (XL-MS) pr
298 termed "multimer-PAGE," that combines in-gel chemical cross-linking with several common electrophoret
299 lose sulfhydryl groups in proteins employing chemical cross-linking with the fluorogenic, homobifunct
300 cted mutagenesis, fluorescence labeling, and chemical cross-linking, with yeast actin mutants contain

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