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1                                              HSQC analysis overcame this problem.
2                                              HSQC and GC-MS then jointly guided purification and stru
3                                              HSQC experiments performed in organic solvents and deter
4                                              HSQC spectra of the enzyme bound to cognate (specific) a
5  trained on a database containing over 2,054 HSQC spectra as the training set.
6                       Two-dimensional 1H-13C HSQC (heteronuclear single quantum correlation) and fast
7 D NMR (DQF-COSY, TOCSY, NOESY, ROESY, 1H-13C HSQC and 1H-31P HXTOCSY) and GC-MS data.
8 we have recorded ultrahigh-resolution 1H-13C HSQC NMR spectra of cell extracts, which exhibit spectra
9                 Moreover, both CD and 1H-13C HSQC NMR studies reveal that these short peptoid helices
10 ows recording of ultrahigh resolution 1H-13C HSQC spectra in a fraction of the time needed for record
11 hydrogen dimension from heteronuclear 1H-13C HSQC spectroscopy, which did not detect resonances for t
12 ample we measured a natural abundance 1H-13C HSQC spectrum of metabolites from granulocyte cell extra
13        We show that a high-resolution 1H-13C HSQC spectrum with 4k complex increments recorded linear
14  the experiments of TOCSY, NOESY, ROESY, 13C HSQC 2D NMR, and ESI-MS and GC.
15 helix and the third strand in 3D H(1), N(15)-HSQC-NOESY-HSQC experiments on perdeuterated samples.
16                                          15N HSQC NMR and CD spectral analyses were employed to chara
17                                          15N HSQC NMR spectra of both the apo and Zn(II) proteins rev
18 ion in intensity and disappearance of 1H-15N HSQC cross-peaks, were observed with the addition of eit
19  identifies the sequence positions of 1H-15N HSQC cross-peaks.
20 ased on 1H-1H NOESY and heteronuclear 1H-15N HSQC high-resolution NMR spectra.
21                 Using two-dimensional 1H-15N HSQC NMR analysis, we demonstrate that C-terminal peptid
22  intermediate species populate the 2D 1H-15N HSQC NMR spectra between pH 4 and 5.
23  chemical shift perturbations in a 2D 1H-15N HSQC NMR spectrum to verify specific interactions of the
24 ubset of the p53TAD residues that had 1H-15N HSQC resonance intensity reductions during the complex f
25 tial broadening of MMOB resonances in 1H-15N HSQC spectra acquired at different molar ratios of MMOH
26 CSP) data routinely obtained using 2D 1H-15N HSQC spectra in high-throughput ligand affinity screens.
27                       Two-dimensional 1H-15N HSQC spectra were recorded for 15N- and 13C-labeled muri
28 trate binding monitored by changes in 1H-15N HSQC spectra yielded a dissociation constant for the bin
29 exchange broadening of cross-peaks in 1H-15N HSQC spectra.
30 sponding large intensity reduction in 1H-15N HSQC spectra.
31 affinity b-MBD is readily observed by 1H-15N HSQC spectroscopy.
32                      In addition, the 1H-15N HSQC spectrum taken at 1.5 M guanidinium chloride reveal
33 s of NMR experiments: two-dimensional 1H-15N HSQC titrations of backbone NH and of Arg N epsilonH res
34 protons in successive acquisitions of 1H-15N HSQC-NOESY-HSQC spectra provides the first direct observ
35 gomerization process was monitored by 1H/15N HSQC NMR experiments, which provided the first residue-s
36 the resonances in the two-dimensional 1H/15N HSQC spectrum of uniformly 15N labeled Vpu(2-30+) in mic
37   Ubiquitin resonances were monitored by 15N HSQC NMR experiments at varying temperatures and salt co
38                                          15N-HSQC NMR spectra of betaK87T and betaE109D mutant Trp sy
39 aD305A Trp synthase mutant only showed a 15N-HSQC signal in the presence of disodium alpha-glyceropho
40 Chemical shift perturbations observed in 15N-HSQC spectra upon the addition of CoA indicated that the
41                                       No 15N-HSQC signal was detected for 1-15N-L-Trp in 10 mm trieth
42 um coherence nuclear magnetic resonance (15N-HSQC NMR) spectroscopy for the presence of 1-15N-L-Trp b
43         Our results demonstrate that the 15N-HSQC NMR spectra of 1-15N-L-Trp bound to Trp synthase ca
44 ing and shifting observed in the 2D-{1H,15N}-HSQC-monitored titrations of 15N-Phe-labeled P450(eryF)
45                   Most significantly, 15N-1H HSQC experiments showed that temperature-dependent shift
46                                   The 15N-1H HSQC NMR spectrum of the human alpha-lactalbumin (alpha-
47 rse relaxation-optimized spectroscopy 15N-1H HSQC spectroscopy of apo-AChBP revealed seven well resol
48 a dramatic sharpening of peaks in the 15N-1H HSQC spectrum of human alpha-LA at pH 2.
49 were characterized by (1)H and (13)C NMR, 2D HSQC and COSY NMR, mass spectrometry, and elemental anal
50  KmTx9 (3)] was achieved through overlaid 2D HSQC NMR techniques, while the relative configurations w
51 of methyl groups in a 1D NMR spectrum, a 2D- HSQC NMR spectrum of ImmE1 in the mixed polarity solvent
52 copy to extract chemical information from 2D-HSQC spectra, termed HSQC correlation spectroscopy (HSQC
53 and sensitive NMR experiments (1D-proton, 2D-HSQC) for the unique identification of known flavones, f
54                               Furthermore, a HSQC spectrum collected with a multiplicity-edited pulse
55 tation decoupling) to data acquisition in an HSQC experiment causes broadband homonuclear decoupling,
56       With (15)N label in the proteinase, an HSQC spectrum was obtained that more closely resembled t
57 th conventional and accelerated DQF-COSY and HSQC.
58 roups is demonstrated by (1)H-(15)N HMBC and HSQC NMR analysis.
59             In addition, (15)N-(1)H HSQC and HSQC-filtered NOESY spectra carried out with a duplex ha
60                Calorimetric measurements and HSQC NMR spectra confirm that the engineered variants ar
61                                (13)C NMR and HSQC spectra confirmed the presence of pectic- and gluco
62    Conventional two-dimensional NMR, such as HSQC experiments, can provide residue-specific informati
63  in small molecule NMR spectroscopy, such as HSQC, HMQC, HMBC, COSY, NOESY, TOCSY, and similar, can b
64   A novel NMR experiment, the so-called ASAP-HSQC, is introduced that allows the detection of heteron
65 ialysis procedure, signals were monitored by HSQC NMR.
66 e (1)H and (15)N NMR resonances, obtained by HSQC experiments, are shown to differentiate subunits an
67  per mil) can be reached with the (1)H-(13)C HSQC (Heteronuclear Single Quantum Correlation) experime
68   With the use of high-resolution (1)H-(13)C HSQC experiments, complexes of amphiphiles with more tha
69  spectra, utilizing both (1)H and (1)H-(13)C HSQC NMR experiments, of Lovenox and Enoxaparin, the lat
70 cid binding protein (I-BABP), and (1)H-(13)C HSQC spectra were recorded to show the utility of the co
71  been studied using (13)C NMR and (1)H-(13)C HSQC spectroscopy.
72                               The (1)H-(13)C HSQC spectrum of p51 obtained at micromolar concentratio
73 uclear couplings ((1)H-(1)H COSY; (1)H-(13)C HSQC), in conjunction with high-level structural DFT cal
74 h two-dimensional (1)H-(1)H COSY, (1)H-(13)C HSQC, and (1)H-(19)F HETCOR NMR techniques, the solution
75 shift changes in (1)H-(15)N HSQC, (1)H-(13)C HSQC, and (19)F NMR spectra of the different single site
76 le quantum correlation (HSQC) and (1)H-(13)C HSQC.
77                  Here, we present (1)H/(13)C-HSQC spectra of protonated methyl groups in a model syst
78 beled at one subunit and obtained (1)H/(13)C-HSQC spectra of this assembly.
79 s represented by a doublet in the (1)H,(13)C-HSQC spectrum.
80 ((1)H,(1)H-COSY, (1)H,(1)H-NOESY, (1)H,(13)C-HSQC, (1)H,(13)C-HMBC) NMR spectroscopies, and structure
81 les including circular dichroism, (1)H,(13)C-HSQC, and (1)H,(1)H-NOESY 2D-NMR studies, validated the
82  residues) can be achieved with a single CaN HSQC experiment.
83  and heteronuclear single quantum coherence (HSQC) are also demonstrated.
84 15)N heteronuclear single quantum coherence (HSQC) as well as one-dimensional (1)H and (19)F NMR to s
85 -15N heteronuclear single quantum coherence (HSQC) correlation experiment are much broader than those
86  the heteronuclear single quantum coherence (HSQC) experiment.
87 13)C heteronuclear single quantum coherence (HSQC) HR-MAS NMR can provide rapid analysis of the cell
88 (1)H heteronuclear single-quantum coherence (HSQC) in conjunction with other two-dimensional (2D) NMR
89 -15N heteronuclear single quantum coherence (HSQC) NMR and inductively coupled plasma mass spectromet
90  NUS heteronuclear single quantum coherence (HSQC) NMR pulse sequence was adapted to a state-of-the-a
91 15)N heteronuclear single-quantum coherence (HSQC) NMR spectra from 0 to 6.5 M urea under equilibrium
92 n 2D heteronuclear single quantum coherence (HSQC) NMR spectra of the entire array of wall polymers.
93 1)H]-heteronuclear single quantum coherence (HSQC) NMR spectroscopy.
94 15)N-heteronuclear single-quantum coherence (HSQC) NMR studies with a di-domain (lipoyl domain+ linke
95      Heteronuclear single quantum coherence (HSQC) NMR titrations indicate that these compounds inter
96      Heteronuclear single quantum coherence (HSQC) NMR was then used to map out the binding surface,
97 15)N heteronuclear single-quantum coherence (HSQC) nuclear magnetic resonance (NMR) revealed that str
98 15)N heteronuclear single quantum coherence (HSQC) resonances could be used to determine the global f
99 15N} heteronuclear single quantum coherence (HSQC) show that these chiral ILs exhibit intramolecular
100 15)N-heteronuclear single quantum coherence (HSQC) spectra of CaaD showed seven to nine Arg-NepsilonH
101 15)N heteronuclear single quantum coherence (HSQC) spectra of uniformly (15)N-labeled hMTF-zf46 show
102 15)N heteronuclear single quantum coherence (HSQC) spectra of wild-type and mutant CzrAs reveal that
103 15)N heteronuclear single quantum coherence (HSQC) spectra, limited proteolytic digestion, and fluore
104      Heteronuclear single quantum coherence (HSQC) spectroscopy shows that both peptides bind in the
105 -15N heteronuclear single quantum coherence (HSQC) spectroscopy, is highly cooperative.
106 -15N heteronuclear single quantum coherence (HSQC) titration experiment was performed on a 15N-labele
107 15)N-heteronuclear single quantum coherence (HSQC) titrations of this kinase domain with the RBDs.
108 15)N heteronuclear single quantum coherence (HSQC)) NMR.
109 nts (heteronuclear single-quantum coherence (HSQC)) of (13)C-labeled tunicamycin enriched from D-[1-(
110 d by heteronuclear single quantum coherence (HSQC), nuclear magnetic resonance (NMR), and py-GC/MS.
111 sing heteronuclear single quantum coherence (HSQC)-based NMR techniques.
112  and heteronuclear single quantum coherence, HSQC) nuclear magnetic resonance spectra of undiluted wi
113 l experiment time compared to a conventional HSQC.
114 nd in two-dimensional (13)C-(1)H correlated (HSQC) NMR spectra of lignins isolated from cinnamoyl CoA
115 5)N heteronuclear single-quantum correlated (HSQC) spectra for both wild-type K3 and mutated [r(K57D)
116 rotein's [15N-1H]-heteronuclear correlation (HSQC) spectrum recorded under conditions generally suita
117 MR heteronuclear single quantum correlation (HSQC) analysis revealed chemical perturbations after tit
118 )P heteronuclear single quantum correlation (HSQC) and (1)H-(13)C HSQC.
119 )H heteronuclear single quantum correlation (HSQC) and provides an additional chromatographic-like se
120 )N heteronuclear single-quantum correlation (HSQC) experiments, we were also able to examine the inte
121 )N heteronuclear single quantum correlation (HSQC) experiments.
122 nd heteronuclear single quantum correlation (HSQC) NMR spectra confirmed that the beta-trefoil global
123 in heteronuclear single quantum correlation (HSQC) NMR spectroscopic analyses.
124 of heteronuclear single-quantum correlation (HSQC) spectra even allowed for the discovery of a new tr
125 5N heteronuclear single quantum correlation (HSQC) spectra in water-alcohol mixed solvents and observ
126  A heteronuclear single quantum correlation (HSQC) spectrum of R*-generated GTPgammaS/Mg(2+)-bound Ch
127 1H heteronuclear single quantum correlation (HSQC) spectrum.
128 , 1D (1)H and (13)C NMR, as well as 2D COSY, HSQC, HSQC-TOCSY, and HMBC spectra.
129 D ((1)H NMR and (13)C NMR) and 2D-NMR (COSY, HSQC and NOESY) spectral analysis.
130 D ((1)H NMR and (13)C NMR) and 2D-NMR (COSY, HSQC and NOESY) spectral studies.
131 n this paper, a nonrefocused (1)H,(15)N CPMG HSQC of uniformly (13)C,(15)N-labeled 33-mer PEMV-1 RNA
132 (1)H TOCSY and (1)H-(13)capital ES, Cyrillic HSQC spectra.
133 g the dual carbon label selective HSQC (DCLS-HSQC) pulse sequence and exploiting differences in 1J 15
134 mension of heteronuclear broadband decoupled HSQC (heteronuclear single quantum correlation) spectra.
135 agments and examined them by two-dimensional HSQC NMR and fluorescence spectroscopies, by differentia
136 COSY, TOCSY and NOESY, and (1)H-(13)C edited HSQC spectroscopy.
137 he appearance of the (15)N- and (13)C-edited HSQC spectra, where line broadening of the same peptide
138  intensities for NH3 cross-peaks than either HSQC or heteronuclear multiple quantum coherence (HMQC)
139 es data from 3D 13C-edited, 13C/15N-filtered HSQC-NOESY spectra for evaluating ligand binding poses w
140 ng pose, the 3D 13C-edited, 13C/15N-filtered HSQC-NOESY spectrum is predicted, and the predicted and
141 changes in ChiT upon heterotrimer formation, HSQC spectra of the (15)N-ChiT-reconstituted heterotrime
142 nsional (2D) NMR spectra, namely, (13)C-(1)H HSQC (heteronuclear single quantum coherence spectroscop
143 of R69D with Ca(2+), monitored by (15)N-(1)H HSQC (heteronuclear single quantum coherence) NMR, showe
144 hen cocrystallized or analyzed by (15)N-(1)H HSQC (heteronuclear single-quantum coherence) NMR (nucle
145 spectra constructed from pairs of (13)C-(1)H HSQC and (13)C-(1)H HSQC-TOCSY spectra.
146                      In addition, (15)N-(1)H HSQC and HSQC-filtered NOESY spectra carried out with a
147 r creating labeling schedules for (15)N-(1)H HSQC experiments as well as results for each of the indi
148                            For 2D (15)N-(1)H HSQC experiments, we can produce an exact solution using
149 persed amide crosspeaks in 2D NMR (15)N-(1)H HSQC fingerprint region, and rotational correlation time
150 Cys-83 was determined to be <6 by (13)C-(1)H HSQC NMR experiments with [3-(13)C]cysteine-labeled Zn(2
151                   Two-dimensional (15)N-(1)H HSQC NMR spectra of intact LigBCen2 in the absence and p
152                             Here, (15)N-(1)H HSQC NMR spectroscopy demonstrates that 0118 indeed targ
153 e differ, as defined by comparing (15)N,(1)H HSQC spectra of a (15)N-labeled model TM peptide in both
154 n the analysis of two-dimensional (15)N/(1)H HSQC spectra of uniformly (15)N-labeled samples of ZnFpg
155                           Similar (15)N-(1)H HSQC spectra were obtained in a variety of detergents, i
156 the grouping of resonances in the (15)N-(1)H HSQC spectrum and display pseudo-symmetry of the motifs
157                              Zinc (15)N-(1)H HSQC titrations indicate that the fold of the isolated D
158 or covariance (1)H-(1)H TOCSY and (13)C-(1)H HSQC-TOCSY spectra and triple-rank correlation spectra c
159 g it to 2D (1)H-(1)H TOCSY and 2D (13)C-(1)H HSQC-TOCSY spectra of a cell lysate from E. coli, which
160 ions of 2D (1)H-(1)H TOCSY and 2D (13)C-(1)H HSQC-TOCSY spectra, it allows the straightforward and un
161 from pairs of (13)C-(1)H HSQC and (13)C-(1)H HSQC-TOCSY spectra.
162 al correlation spectroscopy), and (13)C-(1)H HSQC-TOCSY, for the comprehensive, accurate, and efficie
163 DI using (19)F ligand-observe and (15)N,(1)H-HSQC protein-observe NMR methods.
164  ligand-observe and complimentary (15)N,(1)H-HSQC titrations to monitor interactions from the protein
165  (15)N) NMR experiments and 2D [(13)C, (1)H] HSQC.
166 ity and signal dispersion of 2D [(13)C,(1)H]-HSQC offer new avenues to study challenging systems wher
167  were assigned by 2D 1H-15N heterocorrelated HSQC NMR spectroscopy, and the 15N-1H coupling constant
168 peaks from the two-dimensional heteronuclear HSQC spectrum of a sample of natural organic matter that
169 r TOCSY-based DemixC method to heteronuclear HSQC-TOCSY NMR spectroscopy.
170                                     However, HSQC titrations monitoring Trp253 (located between monom
171 1)H and (13)C NMR, as well as 2D COSY, HSQC, HSQC-TOCSY, and HMBC spectra.
172                        There were changes in HSQC-chemical shifts throughout the domain on binding fo
173 e broadening of the majority of the peaks in HSQC spectra except for the residues at the termini, pre
174  whose diverse composition causes signals in HSQC spectra to disperse.
175 substance of molecular mass <3 kDa, which is HSQC NMR silent, and is not taken up by the cell.
176 We report here the use of J-resolved HSQC (J-HSQC) for 13C isotopomer analysis of tissue samples.
177                               We show that J-HSQC reports isotopomer multiplet patterns identical to
178 ield gradient NMR diffusion experiments (LED-HSQC), measures hydrodynamic properties, or molecular si
179 and (7)Li NMR ((1)H NOESY, TOCSY, (1)H/(7)Li HSQC, and DO-NMR) studies on the solution structure of 3
180 reduce the number of overlaps in the 500 MHz HSQC spectrum from 10 to 1 using four samples with a tru
181                               The (1)H-(15)N HSQC (heteronuclear single quantum correlation) solution
182                                   (1)H-(15)N HSQC analysis indicates that enzyme conformations in the
183                                   (1)H-(15)N HSQC and 3D (1)H-(15)N NOESY HSQC spectra of the F50Y mu
184                   Two-dimensional (1)H-(15)N HSQC and three-dimensional (1)H-(15)N NOESY-HSQC spectra
185 le synergy between NADH and PDC, (1)H- (15)N HSQC chemical shift perturbation and saturation transfer
186           We used two-dimensional (1)H,(15)N HSQC chemical shift perturbation mapping of (15)N-labele
187               The majority of the (1)H-(15)N HSQC cross-peaks of the folded state show only a limited
188                               The (1)H-(15)N HSQC data also provide clear evidence that despite being
189                                   (1)H-(15)N HSQC data of nFGF-1, acquired in the denatured state(s)
190  pressure-dependent site-specific (1)H-(15)N HSQC data with coarse-grained molecular dynamics simulat
191 ctroscopic analysis via (19)F and (1)H-(15)N HSQC experiments indicates that a number of side chain a
192                                   (1)H-(15)N HSQC experiments were collected at stoichiometric interv
193                Acquisition of the (1)H-(15)N HSQC from a phosphate-free sample demonstrated that the
194 ic of an unstructured peptide, and the (15)N HSQC NMR spectra of IA(3) were characteristic of a polyp
195 ifts of the amino acids of CaM in (1)H-(15)N HSQC NMR spectra.
196  22 amide groups were observed in (1)H-(15)N HSQC NMR spectra.
197 lmodulin has been monitored using (1)H-(15)N HSQC NMR spectra.
198                             Here, (1)H-(15)N HSQC NMR spectroscopy is applied to PvuII endonuclease (
199 f 508 compounds and validation by (1)H-(15)N HSQC NMR spectroscopy led to the identification of a min
200 re, as there is no change in the (1)H- (15)N HSQC NMR spectrum in comparison to wild-type CaM.
201                                 A (1)H-(15)N HSQC NMR titration study with three different tropocolla
202 ring Ca(2+) binding, we have used (1)H-(15)N HSQC NMR to monitor more than 40 residues in Paramecium
203  different urea concentrations by (1)H-(15)N HSQC NMR.
204  titration calorimetry (ITC), and (1)H-(15)N HSQC NMR.
205                                   (1)H-(15)N HSQC nuclear magnetic resonance (NMR) spectroscopic stud
206 t-range distance information from (1)H-(15)N HSQC perturbation spectroscopy give strong indication fo
207                                   (1)H-(15)N HSQC spectra acquired for wt-, 10L-fCzrA and H97N 10L-fC
208       Both states exhibit similar (1)H-(15)N HSQC spectra and the same pattern of peptidyl-prolyl pep
209 onformation, and the solution NMR (1)H/(15)N HSQC spectra have a single well resolved resonance for e
210 ional proton, and two-dimensional (1)H-(15)N HSQC spectra of Ca(2+)-bound T3-Cterm indicate a distinc
211 a-sheet of Trx disappear from the (1)H-(15)N HSQC spectra of isolated labeled N- and C-fragments, res
212                   Two-dimensional (1)H-(15)N HSQC spectra of mutated T3-Cterm showed little evidence
213                                   (1)H-(15)N HSQC spectra of the F50A mutant reveal widespread and la
214                                   (1)H-(15)N HSQC spectra showed largely intact protein structures fo
215 t despite some differences in the (1)H-(15)N HSQC spectra the two are nearly identical in NOE distanc
216 DCA) and successive heteronuclear (1)H-(15)N HSQC spectra were collected to identify the backbone ami
217 e damaged E44D mutant detected in (1)H-(15)N HSQC spectra were largely limited to the loop I-helix I
218 f chemical shift perturbations of (1)H-(15)N HSQC spectra, relaxation-dispersion experiments, and fil
219 he well-dispersed two-dimensional (1)H-(15)N HSQC spectrum in SDS micelles indicates that it is feasi
220                           The NMR (1)H-(15)N HSQC spectrum of CH1-Zn(2+) exhibits few poorly disperse
221 ectroscopy was used to assign the (1)H-(15)N HSQC spectrum of the B6-hbeta2m complex, revealing that
222 tigation of the dependence of the (1)H-(15)N HSQC spectrum of the RNase H domain on [Mg(2+)] indicate
223 a-sheet assembly and interaction: (1)H,(15)N HSQC studies facilitate the identification of the monome
224 sistent with this kinetic scheme, (1)H-(15)N HSQC titration of MutT with dGMP reveals weak binding an
225         Chemical shift changes in (1)H-(15)N HSQC, (1)H-(13)C HSQC, and (19)F NMR spectra of the diff
226 mensional proton, two-dimensional (1)H-(15)N HSQC, and (19)F NMR spectroscopies were used to examine
227 the coassembly of the peptides by (1)H,(15)N HSQC.
228             In this work, we have used (15)N-HSQC based NMR titration experiments of a 12-residue pep
229 aride altered the two-dimensional (1)H-(15)N-HSQC spectra of CXCL12, which identified two clusters of
230                   Comparison of the 2D (15)N-HSQC spectra of IA(3) in water and in 23% 2,2,2-trifluor
231 ring chemical shift changes in protein (15)N-HSQC spectra.
232                                   (1)H-(15)N-HSQC titration of the enzyme with the substrate analogue
233 een studied at 298 K, pH 5.3 by [(1)H,(15)N] HSQC 2D NMR spectroscopy.
234 en studied at 298 K, pH 5.4, by [(1)H,(15)N] HSQC 2D NMR spectroscopy.
235 each structure, a combination of (1)H[(15)N] HSQC and HMBC and (1)H COSY and NOESY NMR spectroscopy w
236 NS demonstrating the utility of [(1)H,(15)N] HSQC NMR spectra to provide a spectroscopic fingerprint
237 amine-DNA interaction using 2D [(1)H, (15)N] HSQC NMR spectroscopy allows study of the role of the li
238 -specific assignments using the [(1)H,(15)N] HSQC-TOCSY experiment.
239 particularly robust H-bonds, and [(1)H-(15)N]HSQC-NOESY spectra lead to the identification of three a
240 escribe here the application of [(1)H-(15)N]-HSQC NMR on uniformly and residue-selectively (15)N-labe
241                    We have used [(1)H-(15)N]-HSQC NMR to investigate the structural changes that occu
242                              2D [(1)H-(15)N]-HSQC NMR was used to follow conformational changes upon
243                                 [(1)H-(15)N]-HSQC spectra confirm the functionalities of several key
244  Kd of 4.4 nM, as shown by SPR, [(1)H,(15)N]-HSQC, and (19)F NMR.
245 ree ligands as monitored by 2D {(1)H, (15)N}-HSQC NMR spectroscopy.
246  quantitative yeast two-hybrid, BIAcore, NMR HSQC and STD, and confocal analyses that amino acids phe
247 ts as assessed by poor expression and/or NMR HSQC experiments, while more conservative mutations at t
248 ometry results were validated using STD-NMR, HSQC-NMR, and ITC experiments.
249      (1)H-(15)N HSQC and 3D (1)H-(15)N NOESY HSQC spectra of the F50Y mutant demonstrate its conforma
250 single-crystal X-ray analysis and 2D (NOESY, HSQC, HMBC) NMR experiments.
251 SO-d(6) has been assigned using COSY, NOESY, HSQC, and HMBC NMR methods.
252                                        NOESY-HSQC 3D-NMR and NOESY 2D-NMR techniques have been used o
253 cted with a long mixing-time 1H-1H-15N NOESY-HSQC spectrum confirmed the formation of four clusters.
254 eronuclear single quantum correlation (NOESY-HSQC) NMR, in which the exocyclic amines at X(7) or Y(19
255 he third strand in 3D H(1), N(15)-HSQC-NOESY-HSQC experiments on perdeuterated samples.
256 successive acquisitions of 1H-15N HSQC-NOESY-HSQC spectra provides the first direct observation of th
257 nts obtained from isotope-edited (15)N NOESY-HSQC data indicated that the (R)-gamma-hydroxytrimethyle
258  HSQC and three-dimensional (1)H-(15)N NOESY-HSQC spectra of the kinetically damaged E53Q and E56Q mu
259 ues, so that assignments were based on NOESY-HSQC data and on the response to paramagnetic Co(2+) add
260              It is shown that in a VRT-NOESY-HSQC 3D experiment in 10 mM (13)C natural-abundance sucr
261 ith (13)CH(3)epsilon-methionine and obtained HSQC spectra of unliganded receptor as well as receptor
262  carbon resonance assignments, expansions of HSQC-spectra, HPLC parameters (retention time, relative
263 sion-ordered spectroscopy (DOSY): (1)H-(31)P HSQC-DOSY.
264 d quantitative heteronuclear single quantum (HSQC) (1)H-(13)C NMR spectra.
265         We report here the use of J-resolved HSQC (J-HSQC) for 13C isotopomer analysis of tissue samp
266                          A robust J-resolved HSQC experiment affording highly resolved (1)JCH/(1)TCH
267 uantum coherence-nuclear magnetic resonance (HSQC-NMR) or, following suitable derivatization, by gas
268 is of one- and two-dimensional (COSY, ROESY, HSQC, and HMBC) experiments.
269 py analyses including (1)H-NMR; COSY; ROESY; HSQC and HMBC.
270 d larger (S/N)(t) than for the (1)H-(13)C SE-HSQC reference sequence is achieved, for the sigma(32) p
271             A high-resolution band-selective HSQC experiment was developed to identify (13)C NMR sign
272     By using the dual carbon label selective HSQC (DCLS-HSQC) pulse sequence and exploiting differenc
273                    Appropriately pH-shifting HSQC NMR peaks were identified in the (13C)aziridine-mod
274  (29)Si NMR and, with the aid of (1)H-(29)Si HSQC, were assigned by comparison with parent compounds
275                                 Side-by-side HSQC comparisons of crude P450 extracts against a contro
276 ear single quantum correlation spectroscopy (HSQC) NMR spectrum of the non-covalent complex showed th
277 ear single-quantum correlation spectroscopy (HSQC)-NOESY.
278 med via spectroscopic analysis (CD spectrum, HSQC, COSY, and ROESY NMR experiments).
279 cal information from 2D-HSQC spectra, termed HSQC correlation spectroscopy (HSQCcos), is reported.
280                                          The HSQC pulse sequences are ideal for collecting high-quali
281                                          The HSQC pulse sequences, on the other hand, required roughl
282                                          The HSQC spectra of GlcNS, fondaparinux, and the low-molecul
283                                          The HSQC spectral changes indicate the structures of both C(
284                                          The HSQC spectrum of (15)N-ChiT in this complex displays a u
285  only minor changes are observed between the HSQC spectra of the two ACP species and no NOEs are obse
286                             In contrast, the HSQC NMR spectrum of the covalent complex showed that th
287          Well-defined shifts in peaks in the HSQC spectrum of (15)N labeled NusE/NusB when the unlabe
288               A subset of cross-peaks in the HSQC spectrum of p23 is shifted upon addition of the mid
289                              Analysis of the HSQC NMR peak intensity for 4 in the presence of differe
290                               Similarly, the HSQC spectrum of 15N-labeled N domain is unperturbed by
291        Database query is performed using the HSQC spectrum, and the top metabolite hits are then vali
292 elative percent congestion by 84.9% in their HSQC spectra using only four samples.
293 -H cross-peaks measured with a constant time HSQC experiment without and with J(C[bond]N) amplitude m
294 T approaches can be transferred from HMQC to HSQC-type experiments.
295        Here we propose the use of a 3D TOCSY-HSQC experiment for (13)C-MFA.
296  cytochrome b5 concentration by 1H-15N TROSY-HSQC experiments.
297 s a function of K+ concentration by 2D-TROSY-HSQC in both camphor-bound oxidized (CYP-S) and camphor-
298           Finally, a comparison of the TROSY-HSQC 2D NMR spectra of wild-type sfALR and its R194H mut
299  dynamic structural measurements using TROSY-HSQC NMR spectroscopy.
300                       Extrapolated time-zero HSQC was applied using DMSO-d6/[Emim]OAc-d14 and enabled

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