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1 to 549, by a glutathione S-transferase (GST) pulldown assay.
2  Plk1 decreased its affinity for IKKgamma in pulldown assay.
3 or PP2A-B) using a glutathione S-transferase-pulldown assay.
4 active state of AIP1 assessed by an in vitro pulldown assay.
5 ation in the glutathione S-transferase (GST) pulldown assay.
6 ction by the glutathione S-transferase (GST) pulldown assay.
7 endogenous ARF6, but not ARF1, using a novel pulldown assay.
8 n vitro by a glutathione S-transferase (GST) pulldown assay.
9 d to form a stable complex with SpoIVFB in a pulldown assay.
10 led-coil domain of MuRF1 was demonstrated by pulldown assay.
11 f apoE, as determined by an in vitro heparin pulldown assay.
12 th E2 and interacted only weakly with NS3 in pulldown assays.
13 n protein (amino acids 475-589) on liposomal pulldown assays.
14 ently confirmed by glutathione S-transferase pulldown assays.
15 nal domain of RPW8.2, which was confirmed by pulldown assays.
16 oprecipitation and glutathione S-transferase pulldown assays.
17 tion with Akt2 by co-immunoprecipitation and pulldown assays.
18 iation of PG with ANX II was demonstrated in pulldown assays.
19 and SHP-2 phosphatase activity, and in vitro pulldown assays.
20 determined by yeast two-hybrid assays and by pulldown assays.
21 n, a result that was confirmed by GST-fusion pulldown assays.
22 ast two-hybrid and glutathione S-transferase pulldown assays.
23 al 44 amino acids of PDZD11, as shown by GST-pulldown assays.
24 h phosphatase abolishes their association in pulldown assays.
25 elope biosynthetic enzymes such as Ag85A via pulldown assays.
26 and in vitro glutathione S-transferase (GST) pulldown assays.
27 otein complex immunoprecipitation and biotin pulldown assays.
28 ), as shown by yeast two-hybrid and in vitro pulldown assays.
29  by using RNA immunoprecipitation and biotin pulldown assays.
30 cence, flow cytometry, real-time RT-PCR, and pulldown assays.
31  co-immunoprecipitation and in vitro protein pulldown assays.
32 d as the 14-3-3 binding region by GST-14-3-3 pulldown assays.
33 d the TM 4,5-loop was demonstrated using GST pulldown assays.
34 1 for binding to both PP2Acalpha isoforms in pulldown assays.
35 s by confocal microscopy and in an in vitro "pulldown" assay.
36                                     In vitro pulldown assays also indicate that DinB(C66A) binds RecA
37                                          The pulldown assays also indicated the presence of Cox16p in
38                          Furthermore, plasma pulldown assays analyzed via Western blotting revealed t
39           Interaction was confirmed by a GST pulldown assay and by coimmunoprecipitation in human H29
40 s was confirmed by glutathione S-transferase pulldown assay and co-immunoprecipitation assay in human
41 rabidopsis and Nicotiana benthamiana using a pulldown assay and fluorescence resonance energy transfe
42 n bind to FFAs were isolated by a fatty acid pulldown assay and identified by proteomic analysis.
43 em and an in vitro glutathione-S-transferase pulldown assay and observed interactions between cyclin
44 egion of AKAP79 was able to bind PP1 by both pulldown assay and surface plasmon resonance.
45 interaction by site-directed mutagenesis and pulldown assay and thereby confirm that the major bindin
46       Furthermore, our results from both GST pulldown assays and analytical ultracentrifugation show
47  and NRL-leucine zipper was validated by GST pulldown assays and co-immunoprecipitation from bovine r
48 ee classes of aptamers bound to Smads by GST pulldown assays and co-immunoprecipitation from mammalia
49  using a combination of affinity interaction pulldown assays and co-immunoprecipitations from brain a
50                                     In vitro pulldown assays and coimmunoprecipitation analysis furth
51 een aldolase and SUR was confirmed using GST pulldown assays and coimmunoprecipitation assays.
52              Using glutathione S-transferase pulldown assays and coimmunoprecipitation techniques, we
53 nteracts physically with Abl and Trio in GST-pulldown assays and in co-immunoprecipitation experiment
54 y impaired both the UL54-UL44 interaction in pulldown assays and long-chain DNA synthesis without aff
55                                        Using pulldown assays and mass spectrometry, we have identifie
56                 Defined 3-O-HS added to FGFR pulldown assays and primary organ cultures modulates FGF
57                          Using heme-affinity pulldown assays and proteomics of lysates from primary c
58 e in eIF5 interaction with eIF1 and eIF3c in pulldown assays and reduces the eIF5-mediated stimulatio
59 70-binding site in SOD2, we used a series of pulldown assays and showed that hsp70 binds to the amino
60  in two-hybrid and glutathione S-transferase pulldown assays and that interaction with the mutant TFI
61 DM2 required for p21(Waf1) degradation using pulldown assays and Western blotting and then examined t
62 ch as affinity precipitation of protein, GST-pulldown assay, and coimmunoprecipitation of proteins, w
63 ctivity enzyme-linked immunosorbent assay, a pulldown assay, and immunostaining with a monoclonal ant
64                Interactions were verified in pulldown assays, and colocalization with PC-TP was confi
65 ith MLF1 by yeast two-hybrid analysis and in pulldown assays, and colocalizes with it in both the nuc
66 nity chromatography, co-immunoprecipitation, pulldown assays, and enzyme-linked immunosorbent assay,
67 ults from flow cytometry, live-cell imaging, pulldown assays, and genetically-modified cell lines sup
68   Here, using size-exclusion chromatography, pulldown assays, and small angle x-ray scattering, we sh
69 brid mating and co-transformation protocols, pulldown assays, and surface plasmon resonance analysis.
70 ient transfection, yeast two-hybrid, and GST pulldown assays are used to show not only that nuclear r
71 s work establishes the single-molecule lipid pulldown assay as a simple and highly sensitive approach
72            Complementary to this, we applied pulldown assays as well as microscale thermophoresis as
73 ation analysis, immunoprecipitation, and GST pulldown assays based on the theoretical predictions rev
74       Similarly, a glutathione S-transferase pulldown assay between DNMT1 and Sp1 demonstrates a dire
75            Size exclusion chromatography and pulldown assays both indicate that the lower pH conforma
76 d system, and bound Ckidelta and -epsilon in pulldown assays but did not interact with Ckialpha.
77 n was confirmed by glutathione-S-transferase pulldown assays, by coimmunoprecipitation, and by actin
78  We used L-selectin cytoplasmic tail peptide pulldown assays combined with high sensitivity liquid ch
79                                        Using pulldown assays combined with mass spectrometry analysis
80 oprecipitation and glutathione S-transferase pulldown assays confirm the complex formation between TB
81                    Glutathione S-transferase pulldown assays confirmed a direct interaction between H
82                   Co-immunoprecipitation and pulldown assays confirmed PKC and beta-catenin as bindin
83      Both coimmunoprecipitation and in vitro pulldown assays confirmed that ASAP1 directly binds to F
84                                              Pulldown assays confirmed that the binding between the p
85                                              Pulldown assays confirmed the presence of newly translat
86                                     In vitro pulldown assays confirmed this interaction, which was fo
87                                    A protein pulldown assay coupled with mass spectrometry identified
88 ddition to CREB family, we used in vitro DNA pulldown assay coupled with mass spectrometry, chromatin
89                   Co-immunoprecipitation and pulldown assays coupled with site-directed mutagenesis d
90                                           In pulldown assays, CR binding to fusion proteins containin
91                      Glutathione transferase pulldown assays demonstrate that RPD3 binds directly to
92                                          GST pulldown assays demonstrate that the dimerization domain
93                    Glutathione S-transferase pulldown assays demonstrated direct Nov-BMP interactions
94                                              Pulldown assays demonstrated interaction between betaCaM
95 erminal kinase domain combined with in vitro pulldown assays demonstrated that eriodictyol, a flavano
96                                     Pak-CRIB pulldown assays demonstrated that Norbin promotes the P-
97 and glutathione S-transferase fusion protein pulldown assays demonstrated that Rab8 interacted with t
98                                          RNA pulldown assays demonstrated that SRSF3 binds to an alte
99              Glutathione S-transferase (GST) pulldown assays demonstrated that the hnRNP H NLS intera
100 oprecipitation and glutathione S-transferase pulldown assays demonstrated that the N terminus of ClC-
101                               Two-hybrid and pulldown assays demonstrated that UL20, but no other HSV
102                                          GST pulldown assays demonstrated that vIRF1 interacts with U
103 oteomic analysis on proteins isolated by the pulldown assay detected 202 proteins, collectively terme
104 biophysical methods, including heterocomplex pulldown assays, far-UV CD spectroscopy, the thioflavin
105 ombination of kindlin knockdown, biochemical pulldown assays, fluorescence microscopy, fluorescence r
106 roteins within platelets and confirmation by pulldown assays followed by immunoblotting, we identifie
107 eract with UL44 by glutathione S-transferase pulldown assays, for basal DNA polymerase activity, and
108                                              Pulldown assays from Arabidopsis thaliana tissue culture
109            GRFdeltaC binds H-Ras.GTP in both pulldown assays from bacterial lysates and by coimmunopr
110 noprecipitation or glutathione S-transferase pulldown assays from detergent-solubilized membrane extr
111 oupled receptor in glutathione S-transferase pulldown assays from rat brain lysates coupled with high
112 oplasmic capping complex was demonstrated by pulldown assays, gel filtration and proximity-dependent
113                                              Pulldown assays, gel filtration, isothermal titration ca
114 trometry and glutathione S-transferase (GST) pulldown assays identified integrin alpha5 as a novel Sc
115 t with pU(L)6 in a glutathione S-transferase pulldown assay in the absence of other viral proteins an
116 oprecipitation and glutathione S-transferase pulldown assay in vitro.
117                                          GST pulldown assays in yeast lysates demonstrated physical i
118                         A RAS-binding domain pulldown assay indicated that RIT1 A57G and Y89H were hi
119 , isothermal titration calorimetry data, and pulldown assays indicated that CaM-N and CaM-C both can
120                       Structural results and pulldown assays indicated that L3 renders an in-built ge
121     In this study, glutathione S-transferase pulldown assays indicated that residues 1 to 68 of UL84
122 findings indicate that the streptavidin-bead pulldown assay is valuable for determining the binding o
123                               Using affinity pulldown assays, isothermal titration calorimetry, and t
124 ass spectrometry (MS)-based kinase inhibitor pulldown assay (KIPA) was deployed to identify druggable
125                                              Pulldown assays, NIH3T3 fibroblast spreading assays and
126                                              Pulldown assay of GST-KOPR-C-tail with HA-GEC1 or HA-GAB
127                                              Pulldown assays of a Orai1-CMBD(W76E) mutant, gel filtra
128                                              Pulldown assays of epitope-tagged S100A2 and yeast two-h
129                      Immunoprecipitation and pulldown assays of purified proteins demonstrated a dire
130                              With the use of pulldown assays, PC and ezrin were found to interact dir
131                       As shown with affinity pulldown assays, PrgJ and the K471E mutant protein inter
132                                     Finally, pulldown assays reveal a bipartite physical interaction
133                    Co-immunopurification and pulldown assays reveal that P2X4 receptors complex with
134           Coimmunoprecipitation and in vitro pulldown assays reveal that phosphorylation of MyoGEF at
135                                              Pulldown assays revealed an interaction between NS5A and
136                    Glutathione S-transferase pulldown assays revealed binding of CFTR to alpha-AP-2 (
137                              Walras affinity pulldown assays revealed its association with distinct c
138                                              Pulldown assays revealed that chimeric Galpha(13-i2)QL i
139                                          Rho pulldown assays revealed that Cryptococcus induces activ
140                                              Pulldown assays revealed that either of CSS2A, CSS2B, an
141 pitation and glutathione S-transferase (GST) pulldown assays revealed that GBP1 interacted with the N
142 ctivity in RIalpha-knockdown cells, and cAMP pulldown assays revealed that P-REX1 preferentially inte
143                                              Pulldown assays revealed that Rab5-GTP levels are decrea
144                                          GST pulldown assays revealed that the central loop of the Na
145                  Yeast two-hybrid and direct pulldown assays revealed that the N-terminal domain of t
146                    Coimmunoprecipitation and pulldown assays revealed that vimentin interacted with A
147 hione S-transferase-Ras-binding domain (RBD) pulldown assays revealed that, although high-grade TCR s
148                   In immunoprecipitation and pulldown assays, ShcA, via its SH2 domain, was associate
149                                 Results from pulldown assays show that ARF6 exchanges GDP for GTP in
150                       Circular dichroism and pulldown assays show that full-length Tat binds to the K
151                    Both in vitro and in vivo pulldown assays show that MyoGEF interacts with CSPP.
152                                          GST pulldown assay showed a direct, ouabain-regulated, and m
153                                            A pulldown assay showed that S100A4 binds to RAGE in chond
154                    Glutathione S-transferase pulldown assay showed that the NH2-terminal ATRX homolog
155 r hemin exporter, results with hemin-agarose pulldown assays showed that Abc3 binds to hemin.
156                                        Oligo pulldown assays showed that binding of Myc to the Inr el
157                                              Pulldown assays showed that each C/EBPepsilon isoform in
158                                              Pulldown assays showed that NS2 forms complexes with bot
159 by absorbance spectroscopy and hemin-agarose pulldown assays showed that Shu1 interacts with hemin, w
160                         In vitro and in vivo pulldown assays showed that the carboxyl-terminal region
161                                          RNA pulldown assays showed that UL84 interacted with IRS1 mR
162           GST-VCP/p97 bound purified PP2A in pulldown assays, showing direct protein-protein interact
163                     In vitro translation and pulldown assays suggest direct interaction between BCL10
164                                     Although pulldown assays suggest that the presence of N- and C-te
165 rectly interacts with importin beta in a GST-pulldown assay, suggesting that the SMN complex might re
166 acted with the helicase domain of BKV Tag in pulldown assays, suggesting that NFI helps recruit Tag t
167    p300 also interacted with Tal1 in protein pulldown assays, suggesting this was a direct interactio
168 sary for PIP3 regulation, and a biochemical "pulldown" assay suggests that PIP3 directly binds this r
169                                        Using pulldown assays, surface plasmon resonance, and isotherm
170 to embryonic organ explants, with a microRNA pulldown assay that allows direct identification of micr
171        Here, we show by yeast two-hybrid and pulldown assays that SpoVID also interacts directly with
172  selected biochemical pathways; (c) affinity pulldown assays that, in some cases, confirm and even ex
173 ipt in human T cells and found, using biotin pulldown assay, that HuR specifically interacts with its
174                                         In a pulldown assay, the His-tagged Myb1 interacted with a GS
175                                       By GST pulldown assays, the interaction domains between HMG2L1
176                                           In pulldown assays, the rank order of AnkG binding strength
177 xpressed proteins isolated by the fatty acid pulldown assay to ascertain the likelihood that these pr
178                     Next, we used a rhotekin pulldown assay to confirm directly that IL-1beta deactiv
179         To address this, we used an in vitro pulldown assay to define a series of five arginine resid
180 phila melanogaster and performed an unbiased pulldown assay to identify all possible interactions, re
181 Rosetta pLysS cells, purified, and used in a pulldown assay to identify interacting proteins from hum
182        We exploited the p21-activated kinase pulldown assay to identify proteins associated with acti
183             Here we employ a single-molecule pulldown assay to study interactions of lipid vesicles w
184                        Subsequently, we used pulldown assays to confirm the requirement of PABPC1 res
185 al mRNA-binding proteins identified from RNA pulldown assays to determine which of these exhibit bona
186    Here, we used biolayer interferometry and pulldown assays to identify regions of RAG1 necessary fo
187 e interaction with PP2A as demonstrated by a pulldown assay using a fusion of this domain with glutat
188                                            A pulldown assay using biotin-labeled S100A4 was used to d
189            A luciferase reporter assay and a pulldown assay using biotinylated INS-class I VNTR probe
190                                            A pulldown assay using purified proteins demonstrates that
191                                              Pulldown assays using bacterially expressed GST-Ypt7 sho
192 ly a GST-NF-kappaB p65 fusion protein in GST pulldown assays was tested.
193        Using G protein activity and in vitro pulldown assays we demonstrate that G alpha(i3) is a bet
194                                   By using a pulldown assay, we observed that STAT6 in WT Th1 cells b
195 g luciferase p-miR-Report constructs and RNA pulldown assays, we confirmed that miR-511 bound directl
196                                        Using pulldown assays, we demonstrate that SIRT1-Delta2/9 bind
197                                        Using pulldown assays, we demonstrate that the interaction of
198  Using EMSA, supershift assays, and promoter pulldown assays, we demonstrated that CREB, ATF-2, and c
199                                           By pulldown assays, we discovered that in addition to the p
200                           Furthermore, using pulldown assays, we discovered that Sam68 is a possible
201       By using yeast two-hybrid and in vitro pulldown assays, we have documented that PITX2a can form
202 ce energy transfer experiments, and in vitro pulldown assays, we have now identified the key residues
203  Using the human Cad11 cytoplasmic domain in pulldown assays, we identified human angiomotin (Amot),
204 pitation (co-IP), mass spectrometry, and GST pulldown assays, we identified poly(ADP-ribose) polymera
205 re, using an array of immunofluorescence and pulldown assays, we report that expression of active or
206  assays, and glutathione S-transferase (GST) pulldown assays, we show that NR2A subunits interact dir
207                                        Using pulldown assays, we showed that vRNPs but not complement
208  depending on its CTD phosphorylation state, pulldown assays were performed using the CTD of the duck
209 tial effect, glutathione S-transferase (GST) pulldown assays were performed, revealing that Y544 is c
210              Glutathione-S-transferase (GST) pulldown assays were used to show that RPTPrho interacts
211 rmed in vitro by a glutathione S-transferase pulldown assay, which allowed us to detect 2C/2C associa
212 V envelope glycoproteins were also used in a pulldown assay with beads coated with heparin, a close H
213 s and analyzed Rab5 binding with an in vitro pulldown assay with GST-Rab5(GTP) Of the 35 p110beta hel
214 otein-RNA reconstitution and a stringent RNA pulldown assay with human choriocarcinoma (JAR) cells, w
215 lectrophoretic mobility shift assays and DNA pulldown assays with ChIP-PCR confirmed that MZF1 binds
216                          However, our enzyme pulldown assays with different polymeric substrates sugg
217 o-immunoprecipitation, two-hybrid assay, and pulldown assays with expressed proteins.
218        For the active residues, we performed pulldown assays with membrane-impermeable 2-aminoethyl m
219                                              Pulldown assays with purified GST-l-PGDS and His(6)-Rab4
220 o-immunoprecipitation with ACCA antibody and pulldown assays with recombinant AKR1B10 protein.
221 ed both in vitro by Far-Western and antibody pulldown assays with recombinant proteins and in vivo by
222 say that combines principles of conventional pulldown assays with single-molecule fluorescence micros
223                            We next performed pulldown assays, with GGGGCC5, in conjunction with mass

 
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