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1 n structures, particularly in the context of structural genomics.
2 ng reduces cost and material requirements in structural genomics.
3 or structure determination in the context of structural genomics.
4 (a)s or electrostatic strain is relevant for structural genomics.
5 terest for automated resonance assignment in structural genomics.
6 mportant implications for bioinformatics and structural genomics.
7  of function to structures in the context of structural genomics.
8 s each of which may be a suitable target for structural genomics.
9 e number of structures that will evolve from structural genomics.
10 ose in PDB, and discuss the implications for structural genomics.
11 nd protein complexes in the growing field of structural genomics.
12 hods play in the growing worldwide effort in structural genomics.
13  Data Bank, and discuss the implications for structural genomics.
14 and sensitivity remains a major challenge in structural genomics.
15 ture are of growing importance in the age of structural genomics.
16 iscrete space has important implications for structural genomics.
17 r discovering new motifs, a basic premise of structural genomics.
18 AGE database is a collaborative resource for structural genomics.
19 ated by the New York SGX Research Center for Structural Genomics.
20 rotein modelling coverage, in the context of structural genomics.
21 ent a broader view of structural biology and structural genomics.
22 mportant task in comparative, functional and structural genomics.
23 protein structures is a central challenge in structural genomics.
24 assignment to sequences, as in computational structural genomics, a fast yet sensitive sequence searc
25                    A worldwide initiative in structural genomics aims to capitalize on the recent suc
26                                              Structural Genomics aims to elucidate protein structures
27 nd proteome technologies-in combination with structural genomics and combinatorial chemistry-the floo
28 ealth of data being generated by large-scale structural genomics and disease association studies.
29 ombinant proteins are a major issue for both structural genomics and enzymology research.
30             These are necessary criteria for structural genomics and proteomics applications.
31                              With the use of structural genomics and systems biology, we generated a
32 bundance of protein structures emerging from structural genomics and the Protein Structure Initiative
33 ed for future expression array construction, structural genomics, and analyses of the mechanism and r
34 ns in related fields such as bioinformatics, structural genomics, and proteomics, in which one's abil
35  Consortium in establishing its pipeline for structural genomics, and some of the experimental and bi
36                         Current interests in structural genomics, and the associated need for high th
37 ture of unknown function, such as those from structural genomics, and with no prior knowledge of its
38 e- and metabolome-wide experimental studies; structural genomics; and atomistic simulations of cellul
39               Enzyme/non-enzyme homologues, "structural genomics" annotated proteins and catalytic/no
40 e difficulty of assigning function through a structural genomics approach for some folds.
41  in various types of cancers, as well as the structural genomics approach to develop new therapeutic
42     These discoveries highlight the value of structural genomics approaches in identifying ligands wi
43 f the multitude of structures available from structural genomics approaches.
44                                 The field of Structural Genomics arose over the last 3 decades to add
45 ion and improve the efficiency and output of structural genomics, as well as general structural biolo
46 ures offers an assessment of the progress of structural genomics based on the functional coverage of
47 NA synthetases to be targeted in the Seattle Structural Genomics Center for Infectious Disease (SSGCI
48  context of structures recently deposited by structural genomics centers (i.e., NudCL and mouse NudCL
49 at includes protein target data from the NIH structural genomics centers and a number of internationa
50 the exchange and deposition of data with the structural genomics centers and creating software tools
51                          The progress of the structural genomics centers in the U.S. and around the w
52                                            A structural genomics comparison of purine nucleoside phos
53 t of our target selection for the North-East Structural Genomics Consortium (NESG).
54 nd 'Donated Chemical Probes' collated by the Structural Genomics Consortium (SGC) and identified the
55 escribe the methods used in the Tuberculosis Structural Genomics Consortium (TBSGC), ranging from pro
56 -scale experimental results of the Northeast Structural Genomics Consortium and experimental folding
57 -5360) are chemical probes available via the Structural Genomics Consortium chemical probe program.
58  DNA reporter model of FRDA, we screened the Structural Genomics Consortium epigenetic probe collecti
59                                          The Structural Genomics Consortium is an international open
60 ight NMR protein structures of the Northeast Structural Genomics Consortium pipeline.
61 gh-quality structure of the 14 kDa Northeast Structural Genomics consortium target protein, YqfB (PDB
62                                   Within the Structural Genomics Consortium we have utilized SATurn t
63  serves as the central hub for the Northeast Structural Genomics Consortium, allowing collaborative s
64 ystal structures determined by the Northeast Structural Genomics Consortium, for proteins ranging in
65  which were recently solved by the Northeast Structural Genomics Consortium.
66  structures have recently been reported by a structural genomics consortium.
67 tabase and analysis system for the Northeast Structural Genomics Consortium.
68 n was conducted in parallel by the Northeast Structural Genomics Consortium.
69 r rapidly determining RNA conformations in a structural genomics context, and may increase the size l
70 plexes) by integrating chemical genomics and structural genomics data and by introducing a functional
71      Our results demonstrate that integrated structural genomics data sets can be employed to rationa
72 ly hosts both experimental and computational structural genomics data.
73 from structure would add tremendous value to structural genomics data.
74  on many targets in the system-wide scale of structural genomics depends critically on three paramete
75 hilus influenzae was undertaken as part of a structural genomics effort in order to assist with the f
76 been created to turn the products of the PSI structural genomics effort into knowledge that can be us
77 ase in structure determinations arising from structural genomics efforts and advances in mass spectro
78 played a central role in the coordination of structural genomics efforts and the structural biology c
79                   Although the PSI and other structural genomics efforts around the world have led to
80                                              Structural genomics efforts contribute new protein struc
81                                              Structural genomics efforts contributed approximately 50
82 n Structure Initiative and related worldwide structural genomics efforts facilitate functional annota
83 erties onto the numerous folds determined in structural genomics efforts is an area of intense intere
84                                              Structural genomics efforts previously yielded a crystal
85 tein production pipeline is a bottleneck for structural genomics efforts, as most methods require pur
86 ill be achieved within 15 y, whereas without structural genomics efforts, realizing this goal will ta
87 ein crystallization that may prove useful in structural genomics efforts.
88 lications ranging from therapeutic trials to structural genomics efforts.
89 ring and annotating structures determined by structural genomics efforts.
90              Retrospective benchmarks in 605 Structural Genomics enzymes showed that multiple templat
91 iable basis for the application of TASSER to structural genomics, especially to proteins of low seque
92                                              Structural genomics eventually aims at determining struc
93 2 protein was chosen by the Joint Center for Structural Genomics for crystal structure determination
94  data from GWAS, high-throughput sequencing, structural genomics, functional genomics, and chemical g
95 this group and others for genome annotation, structural genomics, gene prediction and domain-based ge
96 tructures originally determined by the RIKEN structural genomics group.
97                                              Structural genomics has as its goal the provision of str
98                                              Structural genomics has become a powerful tool for study
99                            As a consequence, structural genomics has developed structure-determinatio
100                The developing science called structural genomics has focused to date mainly on high-t
101                 The advent of functional and structural genomics has greatly accelerated our understa
102                                              Structural genomics has the ambitious goal of delivering
103 sion from sequence to structure (genomics to structural genomics), has been widely known as the struc
104                           Recent advances in structural genomics have identified fungal effector fami
105                       How many proteins will structural genomics have to target?
106      Protein crystals play a pivotal part in structural genomics, hence there is an urgent requiremen
107                       Similarly, advances in structural genomics in conjunction with in vitro and in
108 earch underscores the value of computational structural genomics in elucidating the functional landsc
109               Substantial new investments in structural genomics in the past 2 years indicate the hig
110 is is particularly important in the field of structural genomics, in which the fast screening approac
111               One of the primary aims of the structural genomics initiative is the determination of r
112            One of the principal goals of the structural genomics initiative is to identify the total
113                     This is critical for the structural genomics initiative where protein expression
114 verage of protein fold space afforded by the structural genomics initiative, can be used to further t
115   We present the rationale for creation of a structural genomics initiative, recount the efforts of o
116 n structures, including 20 determined by the structural genomics initiative, to show that this overla
117  should prove valuable in the context of the Structural Genomics Initiative.
118 f recently solved enzyme structures from the structural genomics initiative.
119 mining structures, for example as part of a 'structural genomics' initiative, will make a major contr
120 are currently three components to this site: Structural Genomics Initiatives contains information and
121 ing more and more important as the worldwide structural genomics initiatives gather pace and continue
122 verage of genome sequences, we show that the structural genomics initiatives should aim to provide st
123 tructural homologues being determined by the structural genomics initiatives, more sensitive methods
124 ing number of structures being solved by the structural genomics initiatives, the GRATH server also p
125 determined protein structures, stimulated by structural genomics initiatives, there will be an increa
126      We also discuss the impact of worldwide Structural Genomics initiatives, which are producing new
127 makes the resource of particular interest to structural genomics initiatives.
128 ng the flood of structures soon to flow from structural genomics initiatives.
129 efforts and in particular in high-throughput Structural Genomics initiatives.
130                                              Structural genomics is emerging as a principal approach
131 P revealed the significant contribution that structural genomics is making to the coverage of superfa
132 erspective of this analysis, it appears that structural genomics is on track to be a success, and it
133                      An often stated goal of structural genomics is the high-throughput structural ch
134                              A major goal of structural genomics is the provision of a structural tem
135                      An important goal after structural genomics is to build up the structures of hig
136 in the future, especially with the advent of structural genomics, is to survey and re-survey the fini
137             The Protein Structure Initiative Structural Genomics Knowledgebase (PSI SGKB) has been cr
138 as a bioreactor is especially well suited to structural genomics, large-scale protein expressions, an
139 regions that are not globular, we found that structural genomics may have to target about 48% of all
140 f function to new proteins in functional and structural genomics may require an understanding of the
141            As part of the Midwest Center for Structural Genomics (MCSG) we have developed a fully aut
142 n from the central registration database for structural genomics, namely, TargetDB.
143 esult is the ETAscape plugin, which builds a structural genomics network based on local structural an
144 ined by the New York SGX Research Center for Structural Genomics (NYSGXRC).
145 primary purpose of reporting progress of the Structural Genomics of Caenorhabditis elegans project at
146                                          The structural genomics of histone tail recognition web serv
147              These results open the door for structural genomics of RNA in living cells and reveal ke
148                      In the Joint Center for Structural Genomics, one-dimensional (1D) 1H NMR spectro
149 l-organized bioinformatics communities (e.g. structural genomics, ontologies, next-generation sequenc
150 tic membrane proteins in either an academic, structural genomics or commercial environment.
151 nd generalized method that can be applied to structural genomics or other targets in a high-throughpu
152 esulted in the formation of an International Structural Genomics Organization to formulate policy and
153 predicted NTPase was determined as part of a structural genomics pilot project.
154 s initiative, recount the efforts of ongoing structural genomics pilot studies, and detail the lofty
155 osynthesis pathway have been determined in a structural genomics pilot study.
156 sign and implementation of a high-throughput structural genomics pipeline and its application to the
157 s and its progress through each stage of the structural genomics pipeline, from cloning, expression,
158 iction into our PSI:Biology membrane protein structural genomics pipeline.
159                                              Structural genomics presents an enormous challenge with
160 tential bottlenecks in various stages of the structural genomics process through specialized "pipelin
161                       Genomic sequencing and structural genomics produced a vast amount of sequence a
162                                      Current structural genomics programs aim systematically to deter
163                The advent of high-throughput structural genomics programs and advances in cloning and
164                                              Structural genomics programs are only now moving into th
165 otein is being studied or in high-throughput structural genomics programs.
166 ests that NMR will play an important role in structural genomics programs.
167 rge number of orphan protein structures from structural genomics project are now solved without their
168                                 As part of a structural genomics project, we have determined the 2.0
169  a protein whose structure was solved by the structural genomics project.
170  make predictions for target proteins from a structural genomics project.
171                                           A 'structural genomics' project has been initiated aimed at
172                                              Structural genomics projects aim to provide a sharp incr
173                                              Structural genomics projects aim to solve the experiment
174                                              Structural genomics projects are beginning to produce pr
175 tional diversity within supefamilies for the structural genomics projects are discussed.
176                                    Worldwide structural genomics projects are increasing structure co
177                                              Structural genomics projects are producing many three-di
178                                      Current structural genomics projects are yielding structures for
179                                              Structural genomics projects as well as ab initio protei
180 mation in the Protein Data Bank generated by structural genomics projects but not described in the li
181                                    Worldwide structural genomics projects continue to release new pro
182                 The advent of sequencing and structural genomics projects has provided a dramatic boo
183 protein structural data and the emergence of structural genomics projects have increased the need for
184                                As the global Structural Genomics projects have picked up pace, the nu
185 otential cost savings of millions of US$ for structural genomics projects involving high-throughput c
186 The progress of individual targets or entire structural genomics projects may be tracked over time, a
187                                              Structural genomics projects represent major undertaking
188                                              Structural genomics projects such as the Protein Structu
189  highlights the utility of enlarging current structural genomics projects that exhaustively sample fo
190          This work is complementary to other structural genomics projects whose primary aim is to det
191 ongoing success of the genome sequencing and structural genomics projects, the increase in both seque
192 ved in various aspects of the informatics of structural genomics projects--developing and maintaining
193 known supra-domains as potential targets for structural genomics projects.
194 ber of experimental structures expected from structural genomics projects.
195 iochemical functions of orphan proteins from structural genomics projects.
196 ficult to crystallise and largely ignored in structural genomics projects.
197 pid determination of protein structures from structural-genomics projects will make it increasingly d
198 locking the secrets in both the sequence and structural-genomics projects.
199                                            A structural genomics protein from Mycobacterium avium (PD
200                                      For the structural genomics protein PY01515 (PDB ID 2aqw) from P
201 y and speed, for large scale applications in structural genomics, protein structure prediction and pr
202 yme functional site predictions are made for structural genomics proteins, suggesting that a substant
203 d structure will, inter alia, be valuable in structural genomics/proteomics since disordered regions
204                            As the science of structural genomics ramps up adding more and more inform
205 d structure-based annotation by the New York Structural Genomics Research Consortium, models for pred
206 hroughput structural studies by the New York Structural Genomics Research Consortium.
207 d structure-based annotation by the New York Structural Genomics Research Consortium; e.g. the 53 new
208 ling technology that may change the way that structural genomics research is done.
209      Since the advent of investigations into structural genomics, research has focused on correctly i
210 e is intended to enhance communication among structural genomics researchers and aid dissemination of
211 unction based on our interpretation of prior structural genomics results and on its sequence homology
212  structural information may be combined on a Structural Genomics scale to create motifs of mixed cata
213    In the last 3 years, structures solved by structural genomics (SG) initiatives, especially the Uni
214 ructure determination inspired the launch of structural genomics (SG) initiatives.
215                                              Structural genomics (SG) projects aim to expand our stru
216                                   By design, structural genomics (SG) solves many structures that can
217 s, and reflects a major focus on classifying structural genomics (SG) structures and transmembrane pr
218                             When focusing on structural genomics (SG) structures, we observe that the
219 tives contains information and links on each structural genomics site, including progress reports, ta
220 spects for prediction of functional sites in structural genomics structures of unknown function, and
221                 The method can be applied in structural genomics studies where protein binding sites
222 l protease site such as are being created in structural genomics studies worldwide.
223 ly-specific studies, genomic annotation, and structural genomics target suggestion and assessment.
224 erage of the human genome by PDB structures, structural genomics targets and homology models.
225 y, we apply the method to approximately 1700 structural genomics targets and predict that 37 targets
226                    MTH538 is one of numerous structural genomics targets selected in a genome-wide su
227           Application of this method to 2235 structural genomics targets uncovered 37 as DNA binding
228  On the remaining members of the family (two structural genomics targets, and a protein involved in t
229 ant regions in such crude models, as well as structural genomics targets, remains an extremely import
230  further predicts 25 targets as RBPs in 2076 structural genomics targets: 20 of 25 predicted ones (80
231  and annotates sub-cellular localization for structural genomics targets; LOCnet is one of the method
232 gy development has played a critical role in structural genomics, the difficulties at each step of de
233                                  A decade of structural genomics, the large-scale determination of pr
234                           As a case study in structural genomics, this work illustrates that comparat
235     These results emphasize the potential of structural genomics to reveal new unexpected connections
236                               Here we bridge structural genomics to structural biology with a procedu
237 e hydropathy sequence analysis, an important structural genomics tool.
238 ield, which encompasses functional genomics, structural genomics, transcriptomics, pharmacogenomics,
239                                        Plant structural genomics was pioneered on a genome-scale in A
240   Taking advantage of the recent advances in structural genomics, we have compiled a relatively large
241 ins of unknown function, as might arise from structural genomics, we tested it on 618 proteins of div
242                    Caution is appropriate in structural genomics when using sequence similarity for a
243    The server is likely to be of most use in structural genomics where a large proportion of the prot
244 is of great importance as we enter an era of structural genomics where there is a likelihood of an in
245          BioEditor is relevant in the era of structural genomics, where annotation and publication co
246                       Many of the targets of structural genomics will be proteins with little or no s

 
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