コーパス検索結果 (1語後でソート)
通し番号をクリックするとPubMedの該当ページを表示します
1 r monoallelic gene inference from chromatin (MaGIC).
2 entists have shown an increasing interest in magic.
4 ent the modulated gene/gene set interaction (MAGIC) analysis to systematically identify genome-wide m
6 genome-wide association studies (DIAGRAM and MAGIC), and a proxy for the PFKM eQTL (rs11168327; r(2)
7 ved only for angles within 0.1 degree of the magic angle and occur in adjacent or overlapping electro
8 Two graphene monolayers twisted by a small magic angle exhibit nearly flat bands, leading to correl
9 accurate fine-tuning required to obtain the magic angle in twisted-bilayer graphene poses challenges
12 ein particles by circular dichroism (CD) and magic angle solid-state nuclear magnetic resonance (MAS
14 SpSEEKFLRRIGRFG) are studied using deuterium magic angle spinning ((2)H MAS) line shape and spin-latt
17 opy and solid-state (13)C cross-polarization magic angle spinning (CP-MAS) NMR spectroscopy of the fr
19 changes during storage, (1)H high resolution-magic angle spinning (HR-MAS) NMR spectroscopy of apple
21 nd subsequent application of high-resolution magic angle spinning (HRMAS) (1)H nuclear magnetic reson
22 his paper describes a proton high resolution magic angle spinning (HRMAS) nuclear magnetic resonance
24 We demonstrate the performance of TIDE for magic angle spinning (MAS) [(13)C,(13)C]-DARR NMR spectr
25 proton-detected NMR spectroscopy under fast magic angle spinning (MAS) and dynamic nuclear polarizat
26 (1)H and (19)F afforded by 60 kHz ultrafast magic angle spinning (MAS) and enable the analysis of mi
27 designed 3D (2)H-(13)C-(13)C solid-state NMR magic angle spinning (MAS) experiment is presented and d
28 longitudinal relaxation time (T(1e) ) during magic angle spinning (MAS) NMR by observation of DNP-enh
29 dard addition of water is combined with (1)H magic angle spinning (MAS) NMR detection, absolute quant
30 e we report atomic-level characterization by magic angle spinning (MAS) NMR of the muscle isoform of
32 ombine solid-state (17)O, (27)Al, and (71)Ga magic angle spinning (MAS) NMR spectroscopy and density-
38 absorption fine structure (EXAFS) and (27)Al magic angle spinning (MAS) nuclear magnetic resonance (N
39 ce-specific backbone resonance assignment of magic angle spinning (MAS) nuclear magnetic resonance (N
41 ons are supported by data from phosphorus-31 magic angle spinning (MAS) solid state NMR spectroscopy,
45 in (19)F dynamic nuclear polarization (DNP) magic angle spinning (MAS) spectra at 14.1 T on HIV-1 ca
46 field of dynamic nuclear polarization under magic angle spinning (MAS-DNP) could be used to dramatic
47 ing sPREs in practically the entire range of magic angle spinning frequencies used for biomolecular s
48 al, immunohistochemistry and high resolution magic angle spinning magnetic resonance spectroscopy (MR
51 ound to end-binding protein EB1 and free, by magic angle spinning NMR and molecular dynamics simulati
52 th solid-state wide-line and high resolution magic angle spinning NMR as well as with fluorescence co
54 version by solid state (13)C cross-polarized magic angle spinning NMR reveals that solid heptacene ha
57 NMR crystallography approach based on (51)V magic angle spinning NMR spectroscopy and Density Functi
60 ol) in monounsaturated model membranes using magic angle spinning NMR to measure these interactions t
62 spectroscopy (XAS), (13)C Cross polarization-magic angle spinning nuclear magnetic resonance (CP-MAS
64 ric brain tumours using (1)H-High-Resolution Magic Angle Spinning nuclear magnetic resonance spectros
65 e matrix were investigated using solid-state magic angle spinning nuclear magnetic resonance spectros
67 inescent scaffolds, (13)C cross-polarization magic angle spinning solid-state (CP-MAS) NMR spectrosco
68 sorption experiments, infrared spectroscopy, magic angle spinning solid-state NMR spectroscopy, and v
72 t with dynamic nuclear polarization enhanced magic angle spinning solid-state NMR to study this chall
76 BMS) leads to broadening of resonances under magic angle spinning, we show that for monodisperse and
78 rstitial oxygen, can be resolved by advanced magic angle turning and phase-adjusted sideband separati
79 al and electronic properties of TBG near the magic angle using scanning tunnelling microscopy and spe
80 in twisted bilayer graphene (TBG) near the 'magic angle' of twist of about 1.1 degrees, with a phase
84 icted(1,2) to narrow markedly(9,10) near the magic angle, leading to a variety of possible symmetry-b
85 pin-locking the (1)H magnetization along the magic angle, the (1)H spin diffusion is suppressed such
86 aviour of this material, we find that at the magic angle, the ratio of the Coulomb interaction to the
87 s) in the local density of states around the magic angle, with an energy separation of 57 millielectr
89 1)H NMR microprobe featuring high-resolution magic-angle coil spinning (HR-MACS), a simple conversion
90 the electronic band structure, resulting in magic-angle flat-band superconductivity(1,2), the format
91 ic character, is important in the physics of magic-angle graphene, forming the parent state out of wh
93 diffraction, solid-state cross-polarization/magic-angle spinning (13)C NMR, and Bloch-decay (13)C NM
98 peptides or proteins by measuring RDCs using magic-angle spinning (MAS) in combination with dipolar r
99 blies in the escape from CypA dependence, by magic-angle spinning (MAS) NMR and molecular dynamics (M
100 powder XRD, (1)H double-quantum solid-state magic-angle spinning (MAS) NMR and small-angle neutron s
102 n structure determination by proton-detected magic-angle spinning (MAS) NMR has focused on highly deu
103 lear polarization (DNP)-enhanced solid-state magic-angle spinning (MAS) NMR in combination with light
105 y depends on their dynamics, and solid-state magic-angle spinning (MAS) nuclear magnetic resonance (N
106 loprotein from a powder sample, by combining magic-angle spinning (MAS) nuclear magnetic resonance (N
110 ta yielded orientational restraints, whereas magic-angle spinning data yielded interhelical distance
111 amically hyperpolarized (1)H to (13)C during magic-angle spinning dynamic nuclear polarization (DNP)
113 application of (1)H-detected experiments at magic-angle spinning frequencies of >50 kHz enables the
114 , based on a series of temperature-dependent magic-angle spinning multinuclear nuclear-magnetic-reson
115 of capsid protein (CA) tubes, determined by magic-angle spinning NMR and data-guided molecular dynam
116 This approach combining oriented-sample and magic-angle spinning NMR spectroscopy in native-like lip
119 study provides, to our knowledge, the first magic-angle spinning NMR structure of an intact filament
120 we utilized state-of-the-art high-resolution magic-angle spinning nuclear magnetic resonance (HRMAS N
121 )3 NASICON series has been analyzed by (31)P magic-angle spinning nuclear magnetic resonance (MAS NMR
124 tate NMR measurements at very fast (100 kHz) magic-angle spinning rates and at high (23.5 T) magnetic
125 guided by structure restraints obtained from magic-angle spinning solid-state NMR experimental data.
126 eled octasaccharide heparin analogue enabled magic-angle spinning solid-state NMR of the GAG bound to
128 n function (PDF) analysis and ex situ (23)Na magic-angle spinning solid-state nuclear magnetic resona
132 pectroscopy (XANES), and (51)V Hahn echo and magic-angle turning with phase-adjusted sideband separat
133 ectronic bands with topological character in magic-angle twisted bilayer graphene (MATBG) has created
134 gly correlated and superconducting phases in magic-angle twisted bilayer graphene (MATBG)(1,2) crucia
135 of superconducting and insulating states in magic-angle twisted bilayer graphene (MATBG)(1,2) has ig
137 ts revealed an intriguing similarity between magic-angle twisted bilayer graphene and high-temperatur
138 ansitions in the spectroscopic properties of magic-angle twisted bilayer graphene as a function of el
141 ed insulator states and superconductivity in magic-angle twisted bilayer graphene(1,2) has enabled th
142 nducting and correlated insulating states in magic-angle twisted bilayer graphene(1-11) prompts fasci
144 um anomalous Hall effect in the flat band of magic-angle twisted bilayer graphene(4-8) has sparked th
145 a more detailed view of the phenomenology of magic-angle twisted bilayer graphene, adding to our evol
151 ating and superconducting states observed in magic-angle twisted-bilayer graphene and ABC trilayer gr
154 ovative combination of high-resolution (11)B magic-angle-spinning (MAS) and (105)Pd static solid-stat
157 Gd(III) complex, [Gd(tpatcn)], doubling the magic-angle-spinning DNP enhancement of the previous sta
158 ture information obtained from near-complete magic-angle-spinning NMR assignments of the 39 kDa-large
159 shift anisotropy (CSA) tensors, recorded in magic-angle-spinning NMR experiments, provide direct res
162 microscopy and circular dichroism and (11)B magic-angle-spinning NMR spectroscopy, is stable in wate
166 bility of dynamic nuclear polarization (DNP) magic-angle-spinning NMR techniques, along with a judici
167 al shifts (CS) from solution and solid state magic-angle-spinning nuclear magnetic resonance (NMR) sp
168 esicles were studied using (31)P solid-state magic-angle-spinning nuclear magnetic resonance spectros
170 we demonstrate through (13)C high-resolution magic-angle-spinning that (13)C acetate from fermentatio
171 flat' bands in bilayer graphene for certain 'magic' angles of twist between the orientations of the t
177 sed on these experimental findings, a novel "magic boron" counting rule is proposed to estimate the n
179 ue that technical reasoning is not quite the magic bullet that O&R assume, and instead propose a co-e
180 a decade, RNAi has ruled the lab, offering a magic bullet to disrupt gene expression in many organism
181 d more than a century ago by Paul Ehrlich's "magic bullet" concept, this Review is primarily focusing
186 w-molecular-weight, synthetic BH3 mimetics ("magic bullets") to disrupt the protein-protein interacti
187 can help us understand how the experience of magic can be aesthetically pleasurable, not despite, rat
189 ucose and Insulin-related Traits Consortium (MAGIC) data sets revealed no association with glucometab
190 When compared to other TF mining resources, MAGIC displayed favourable performance in predicting TFs
191 transformations of correlation coefficients, MAGIC features fast computation and adaption to variatio
192 ification by common database search engines, MAGIC generates in silico spectra by overwriting the ori
194 hough magnesium was found to be ineffective, MAGiC illustrates an effective strategy for rapid and ef
199 ulated data, we show that the performance of MAGIC is comparable to that of PSMC' even on single dipl
202 PR system and array-synthesized oligo pools, MAGIC is used to create, to the best of our knowledge, o
215 of the radio galaxy IC 310 obtained with the MAGIC (Major Atmospheric Gamma-ray Imaging Cherenkov) te
216 multiparent advanced generation intercross (MAGIC) mapping population, derived from 19 resistant par
217 s-directed yeast one-hybrid system using the Magic Markers of the synthetic genetic array analysis.
218 r insulin secretion and sensitivity from the MAGIC (Meta-Analyses of Glucose and Insulin-related trai
219 thereby expedite broader exploration of the magic methyl effect in pursuit of new small-molecule the
222 mitochondria-mediated proteostasis mechanism MAGIC (mitochondria as guardian in cytosol) and provide
224 huasca, lysergic acid diethylamide (LSD) and magic mushrooms; demographics, current well-being and pa
225 We provide direct evidence of its doubly magic nature, which is also predicted by ab initio calcu
228 provide a spectroscopic study of the doubly magic nucleus (78)Ni, which contains fourteen neutrons m
229 wn of the neutron magic number 50 and proton magic number 28 beyond this stronghold, caused by a comp
230 s also indicate the breakdown of the neutron magic number 50 and proton magic number 28 beyond this s
233 te ligands, {Pd84 }(Gly) , and the next in a magic number series for this cluster family-a new {Pd72
234 f Au279 follows the mathematical formula for magic number shells: Au@Au12@Au42@Au92@Au54, which is fu
235 be predicted using simple 'non-interacting' magic number tables, without the need for large-scale co
236 curly-arrow" descriptions of destructive QI, magic number theory captures the many forms of construct
237 be predicted using a simple and easy-to-use "magic number theory." In contrast with counting rules an
238 Our modeling predicts the existence of a "magic number" effect associated with special, highly sta
239 3)O(+).(HDO)(D(2)O)(19) isotopologue of the "magic number" protonated water cluster, H(+).(H(2)O)(21)
241 nd analytical calculations to show that this magic-number effect can be greatly enhanced if one of th
242 ed that phase separation is suppressed by a "magic-number effect" which occurs if the two polymers ca
243 scribe the thermodynamic stability of these 'magic-number' colloidal nanoclusters as a function of th
251 py (40 Gy, 5-FU, cisplatin) or chemotherapy (MAGIC or FLOT) for cT3, Nx, M0 esophageal adenocarcinoma
253 ticentre Asthma Genetics in Childhood Study (MAGICS)/Phase II International Study of Asthma and Aller
255 me-wide association studies (GWAS) using the MAGIC population suggests that omega-6 desaturation is l
256 d a subset of 380 SSD lines of the resulting MAGIC population were phenotyped for earliness and genot
259 multiparent advanced generation intercross (MAGIC) population showed that significant natural variat
262 density functional theory demonstrate a new magic ratio rule (MRR) that captures the contribution of
263 ort calculations and also agree with recent "magic ratio rules", which capture the role of connectivi
264 ults conclusively verify recently postulated magic-ratio and orbital-product rules, and highlight a n
267 queous-phase approaches to semiconductor CdS magic-size clusters (MSCs) and the formation pathway hav
273 nt the structure of ultra-stable Au144(SR)60 magic-sized nanoclusters obtained from atomic pair distr
275 of natural and modified pentaphosphorylated magic spot nucleotides is generated in a highly efficien
276 In bacteria, a modified nucleotide ppGpp ('magic spot') is a pleiotropic second messenger that medi
277 of the issues is the efficient placement of magic state distillation sub circuits, so-called distill
278 The leading proposals for doing so, such as magic-state distillation and colour-code techniques, hav
281 eport a multi-functional genome-wide CRISPR (MAGIC) system to precisely control the expression level
282 Assumption Genomic Inference of Coalescence (MAGIC), that reconstructs key features of the evolutiona
283 en concepts that have long been discussed in magic theory, particularly misdirection, and those that
286 omated glycopeptide identification platform (MAGIC) to identify peptide sequences and glycan composit
291 il Adjuvant Gastric Infusional Chemotherapy (MAGIC) trial established perioperative epirubicin, cispl
293 tification for this growing interest is that magic tricks offer novel experimental approaches to cogn
294 hat strongly trigger curiosity (for example, magic tricks), we examine the psychological and neural m
297 to be prominent in moire graphene, where at magic twist-angle values, flat bands feature [Formula: s
298 g of one layer with respect to the other at 'magic' twist angles of around 1 degree leads to the emer
299 n, Mining Algorithm for GenetIc Controllers (MAGIC), uses ENCODE ChIP-seq data to look for statistica