[Home] [Server] [Queue] [About] [Remove] [Statistics]

I-TASSER results for job id S773655

(Click on S773655_results.tar.bz2 to download the tarball file including all modeling results listed on this page. Click on Annotation of I-TASSER Output to read the instructions for how to interpret the results on this page. Model results are kept on the server for 60 days, there is no way to retrieve the modeling data older than 2 months)

  Submitted Sequence in FASTA format

>protein
LTVSNTNAKRGLGSTLKQGTVKVTASMGGIEDSVDFTVTQATLTSIEVSPTRASIAKGMT
QKFTATGIFTDHSKKNITEQVTWKSSSKALSMLNAPGEEGTGKAIAVGNISITATLEKLS
GKTDITVTPAILTSIQISPVKHCLVKGLTEKFSATGIYSDNSSKDITSAVTWHSSNNSVA
TISNTKGYQGQAHGTGTGTVDIKATLGNVSSQVSKLSVTAAELIEIVLNPTSSHKAKGLT
ENFKATGVFTDNSTKDITDQVTWKSSNTAYAKISNATGSKGVVNALSKGTSHISATLGSI
SSANATFQVTPAKVVSIEVIPNNISFAKGNSYQFKATGIYTDHSEADITEQVTWSSSNPK
IASVENTFGSAGLVNTTNIGSTNITAKLSDTVSGSSVLNVTPALLRYIMITPSYAGIEKG
YTKQFSAIGTYSDQSTKDLTEDVTWFSSNPSSVVIENTPGKKGLAFASELGEPDITVFYD
HHTQSSYTPVTVTESGIVNITISLSSISKTKGSTHQFKATGKFENGAEIDLTELVTWSSS
NPTVVSISNVDDERGLATALSVGSSKISVDYNSISSSIDFEVTPEILASIKTEP

  Predicted Secondary Structure

Sequence                  20                  40                  60                  80                 100                 120                 140                 160                 180                 200                 220                 240                 260                 280                 300                 320                 340                 360                 380                 400                 420                 440                 460                 480                 500                 520                 540                 560                 580
                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |              
LTVSNTNAKRGLGSTLKQGTVKVTASMGGIEDSVDFTVTQATLTSIEVSPTRASIAKGMTQKFTATGIFTDHSKKNITEQVTWKSSSKALSMLNAPGEEGTGKAIAVGNISITATLEKLSGKTDITVTPAILTSIQISPVKHCLVKGLTEKFSATGIYSDNSSKDITSAVTWHSSNNSVATISNTKGYQGQAHGTGTGTVDIKATLGNVSSQVSKLSVTAAELIEIVLNPTSSHKAKGLTENFKATGVFTDNSTKDITDQVTWKSSNTAYAKISNATGSKGVVNALSKGTSHISATLGSISSANATFQVTPAKVVSIEVIPNNISFAKGNSYQFKATGIYTDHSEADITEQVTWSSSNPKIASVENTFGSAGLVNTTNIGSTNITAKLSDTVSGSSVLNVTPALLRYIMITPSYAGIEKGYTKQFSAIGTYSDQSTKDLTEDVTWFSSNPSSVVIENTPGKKGLAFASELGEPDITVFYDHHTQSSYTPVTVTESGIVNITISLSSISKTKGSTHQFKATGKFENGAEIDLTELVTWSSSNPTVVSISNVDDERGLATALSVGSSKISVDYNSISSSIDFEVTPEILASIKTEP
PredictionCSSSSSCCCCSSSSSSCCSSSSSSSSSCCSSSSSSSSSSCCCCCSSSSCCCCCSSSCCCSSSSSSSSSSCCCCCCCCSSSSSSSSCCCCSSSSSCCCCCSSSSSSSCSSSSSSSSSCCCSSSSSSSSCCCCCCSSSSCCCCSSSSCCCSSSSSSSSSSCCCCCCCCCSSSSSSSCCCCSSSSSCCCCSSSSSSSSSSSSSSSSSSSCCCCSSSSSSSSCCCCSSSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCSSSSSSSSCCSSSSSSSSSCCCCCCSSSSSSCCCCSSSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCCSSSSSSSCCSSSSSSSSSCCCCCSSSSSSSSCCCCCSSSSCCCCSSSSCCCSSSSSSSSSSCCCCCCCCSSSSSSSSCCCCSSSSCCCCCCSSSSSSSSSSSSSSSSSSCCCCSSSSSSSSSCCCCCCSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCCCSSSSSSSSSSSSSSSSSCCSSSSSSSSSSCCCCCSSSSCC
Conf.Score978176478569999846899999998999999999994787457998088658966976999999996898766301238999389857999778752699987453999999978813899999906722369986874199689859999999978987653102699995898589991777279999985259999999969850689999962651147771577347726976999999997888665235338999889808999345530599999423489999996136650799997076035798537734870697799999999479987653316999978985799953444026999723439999999899742058999963653158866764499059779899999959987565106899995798389996677503899999116999999999962799999999278500799655416874897899999999689961320116999948996699964468628999995379999999898679999999889734388579
H:Helix; S:Strand; C:Coil

  Predicted Solvent Accessibility

Sequence                  20                  40                  60                  80                 100                 120                 140                 160                 180                 200                 220                 240                 260                 280                 300                 320                 340                 360                 380                 400                 420                 440                 460                 480                 500                 520                 540                 560                 580
                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |              
LTVSNTNAKRGLGSTLKQGTVKVTASMGGIEDSVDFTVTQATLTSIEVSPTRASIAKGMTQKFTATGIFTDHSKKNITEQVTWKSSSKALSMLNAPGEEGTGKAIAVGNISITATLEKLSGKTDITVTPAILTSIQISPVKHCLVKGLTEKFSATGIYSDNSSKDITSAVTWHSSNNSVATISNTKGYQGQAHGTGTGTVDIKATLGNVSSQVSKLSVTAAELIEIVLNPTSSHKAKGLTENFKATGVFTDNSTKDITDQVTWKSSNTAYAKISNATGSKGVVNALSKGTSHISATLGSISSANATFQVTPAKVVSIEVIPNNISFAKGNSYQFKATGIYTDHSEADITEQVTWSSSNPKIASVENTFGSAGLVNTTNIGSTNITAKLSDTVSGSSVLNVTPALLRYIMITPSYAGIEKGYTKQFSAIGTYSDQSTKDLTEDVTWFSSNPSSVVIENTPGKKGLAFASELGEPDITVFYDHHTQSSYTPVTVTESGIVNITISLSSISKTKGSTHQFKATGKFENGAEIDLTELVTWSSSNPTVVSISNVDDERGLATALSVGSSKISVDYNSISSSIDFEVTPEILASIKTEP
Prediction221332435403020344330201021443433040304534144040334423034444230202020333443413340303033431010214344030303331302010204444330303034331440404344230334443302020103334434223203030434310101344323030313431302010214434331120313424234030434433333343230201020232333423330203033331030333433402020333220202020343433302030433423404134442303444423030201033334442333020304343103033443330203034422010102033444331203033331431313344330344433302020203333444233302030433310101244333020203442302010103444331303030343414404033442313444323020202034244342343030304343001012344340202034423010101034343403030345325506048
Values range from 0 (buried residue) to 9 (highly exposed residue)

   Predicted normalized B-factor

(B-factor is a value to indicate the extent of the inherent thermal mobility of residues/atoms in proteins. In I-TASSER, this value is deduced from threading template proteins from the PDB in combination with the sequence profiles derived from sequence databases. The reported B-factor profile in the figure below corresponds to the normalized B-factor of the target protein, defined by B=(B'-u)/s, where B' is the raw B-factor value, u and s are respectively the mean and standard deviation of the raw B-factors along the sequence. Click here to read more about predicted normalized B-factor)


  Top 10 threading templates used by I-TASSER

(I-TASSER modeling starts from the structure templates identified by LOMETS from the PDB library. LOMETS is a meta-server threading approach containing multiple threading programs, where each threading program can generate tens of thousands of template alignments. I-TASSER only uses the templates of the highest significance in the threading alignments, the significance of which are measured by the Z-score, i.e. the difference between the raw and average scores in the unit of standard deviation. The templates in this section are the 10 best templates selected from the LOMETS threading programs. Usually, one template of the highest Z-score is selected from each threading program, where the threading programs are sorted by the average performance in the large-scale benchmark test experiments.)

Rank PDB
Hit
Iden1Iden2CovNorm.
Z-score
Download
Align.
                   20                  40                  60                  80                 100                 120                 140                 160                 180                 200                 220                 240                 260                 280                 300                 320                 340                 360                 380                 400                 420                 440                 460                 480                 500                 520                 540                 560                 580
                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |                   |              
Sec.Str
Seq
CSSSSSCCCCSSSSSSCCSSSSSSSSSCCSSSSSSSSSSCCCCCSSSSCCCCCSSSCCCSSSSSSSSSSCCCCCCCCSSSSSSSSCCCCSSSSSCCCCCSSSSSSSCSSSSSSSSSCCCSSSSSSSSCCCCCCSSSSCCCCSSSSCCCSSSSSSSSSSCCCCCCCCCSSSSSSSCCCCSSSSSCCCCSSSSSSSSSSSSSSSSSSSCCCCSSSSSSSSCCCCSSSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCSSSSSSSSCCSSSSSSSSSCCCCCCSSSSSSCCCCSSSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCCSSSSSSSCCSSSSSSSSSCCCCCSSSSSSSSCCCCCSSSSCCCCSSSSCCCSSSSSSSSSSCCCCCCCCSSSSSSSSCCCCSSSSCCCCCCSSSSSSSSSSSSSSSSSSCCCCSSSSSSSSSCCCCCCSSSSCCCCSSSCCCCSSSSSSSSSSCCCCCCCCCCSSSSSSCCCCSSSSSCCCCCCSSSSSSSSSSSSSSSSSCCSSSSSSSSSSCCCCCSSSSCC
LTVSNTNAKRGLGSTLKQGTVKVTASMGGIEDSVDFTVTQATLTSIEVSPTRASIAKGMTQKFTATGIFTDHSKKNITEQVTWKSSSKALSMLNAPGEEGTGKAIAVGNISITATLEKLSGKTDITVTPAILTSIQISPVKHCLVKGLTEKFSATGIYSDNSSKDITSAVTWHSSNNSVATISNTKGYQGQAHGTGTGTVDIKATLGNVSSQVSKLSVTAAELIEIVLNPTSSHKAKGLTENFKATGVFTDNSTKDITDQVTWKSSNTAYAKISNATGSKGVVNALSKGTSHISATLGSISSANATFQVTPAKVVSIEVIPNNISFAKGNSYQFKATGIYTDHSEADITEQVTWSSSNPKIASVENTFGSAGLVNTTNIGSTNITAKLSDTVSGSSVLNVTPALLRYIMITPSYAGIEKGYTKQFSAIGTYSDQSTKDLTEDVTWFSSNPSSVVIENTPGKKGLAFASELGEPDITVFYDHHTQSSYTPVTVTESGIVNITISLSSISKTKGSTHQFKATGKFENGAEIDLTELVTWSSSNPTVVSISNVDDERGLATALSVGSSKISVDYNSISSSIDFEVTPEILASIKTEP
18oprA 0.13 0.22 0.93 3.01Download VT---------DVKVSEPTKLTLTGTGLDKLSADDVTLEGDKAVAIEASTD------GTSAVVT------LGGKVAPNKDLTVKVKNSFVTKFVYEVKKLAVEKL-------TFDDDRAGQAIAFKLNDEK------GNADVEYLNLANHDVKFVANNLDGSPANIFEGGEATSTTGKLAVGIKQGDYKVEVQVTKSNTGIITVKNLDTPASAIKNVVYGSKLSGKDFALNSQNLVVGEKASLNKLVATIAGEDKVVPGSISIKSSNHGIISVVN-----NYITAEAAGEATLTIKVGDVTKDKFKVTTDSRKLVSVKANPDKLQVVQNKTLPVTFVTTDQYGDPFGANTAIKEVLPKTGVVAEGSIGTKTIGVTGNDVGEGTVHFQNGNGATGSLYVNVTEGNVAFKNFPDTKLDLNVSTTVEYQLSKYTSDRVYSDPENGYEVESKNLAVADAKIVGN-KVVVTGKTPGKVDIHLTKNGATAKATVEIVQETIAIKSVNFKPVQTENFVEKKINIGTVLELEKSNLDDIVKGINLTKETQHKVRVVKSGAEQGKLYLDRNGDGDVTVSQTSDKGTLVFKVLKDKSQAVHVNP
28oprA 0.11 0.22 0.92 1.67Download -----------------GQMAYVTDVKVSEPTKLTLTGTGLSADDVTLKAVAIEASTDGTS-----AVVTLGGKVAPNKDLTVKVK-NQSFVTKFVYEVKKLAVEKLQAIAFKLNDEKGNADVKFVANNLDGSPANIFEGGEATSTTGKLDYKVEVQVTKRGGLTVSNTGIITVKNLDT-------------PASAIKNVVFALDADNDGVVNY-----GSKLSGKDFALNSQNLVVGEKASLNKLVATIAGEDKVVDPSISIKSSNHGIISVVN-----NYITAEAAGEATLTIKVGDV-TKDVKFKVTTDSRVSVKANPDKLQVVQNKTLPVTFVTTDQYGDPFGANAAIKEVLPKTGVVAEGSIGTKTIGVTGNDVGEGTVHFQNGNGASLYVNVTEGNVAFKNFELPDTKLDLNVSTTVEYQLSKYTSDRVYSDPENGYEVESKNLAVADAKIVGN-KVVVTGKTPGKVDIHLTKNGA-TAGKATVEIVQETIAIKSVNFKPVQTENEKKINIGTVLELEKSNLDDIVKGINLTKETQHKVRVVKSGAEQGKLYLDRNDVKLGDVTVSLDKGTLVFKVLKDKVITSEIGS
37z47 0.17 0.24 0.90 4.16Download --------------------ALYPIKSLGA---VGVIADQA-PTDLAPNAINARFVEQRVFKTGAPLSYVDE-DKDLTPLSDYYSAGNSFLVVGT---NKKLYKLDESLTDISRKVATVTASASIKIYPV-VSQIVPKESTISMNFNQTKNLEVSLLPADANN----TNLIWEVSNSSYGSITVDPSLATLTSFEKEGNLVVTISTANESVAQIAVNIIDG-DSGIFLSQDTVTIRKGGTTTLTAVTG---------KTPVTWSSNNASIVSVTPNNSLTAVITANGEGNVTITADNGTKTAS-CEIVSIPQ-IDSISLSQSDVTVSRGSQYILTATLSPANAP----NQNITWTSSNPNIATVS----GTGTINALLAGFTEITATTEGNRVAVCTVRVDLTPLSSVTLDIVSASLDVGEEIVITATASPEGE------YSYQWSVDKTGYVSTTSVTGKSIKLVALRKGEINVTCTVSQMTQDYDICAVATTHYPQVKEFESEYFVDLPGWQRSFNNRLFALNMRETNYPLRLRWSNFAENKTLWDDFGDSNGSLIDIPLKDYLFVYTEFET---YIGSPTNNTYLMFKLFN
47z47 0.15 0.24 0.94 2.75Download GNSFLVVGTNKKLYKLDESLTDISRKVATVTKSASIKIYP-VVSQIVPKESTISMNFNQTKNLEVSLLPADANN----TNLIWEVSNSSYGSITVDPSATLTSFEKEGNLVVTISTANESAQIAVNIIDG-DSGIFLSQDTVTIRKGGTTTLTAVTG---------KTPVTWSSNNASIVSVTPNANLTAVITANGEGNVTITADNGTKTASCEIVSIP--QIDSISLSQSDVTVSRGSQYILTATLSPANAP----NQNITWTSSNPNIATVSGTS-TQGTINALLAGFTEITATTEEGRVAVCTVRVDLTPLSSVTLDIVSASLDVGEEIVITATASPEGE------YSYQWSVDKTGYVSTTSVTGKSIKLVALRKGEINVTCTVSQMTQKDYDAFDDTTHYTPQVKEFEFVDLPGWGQWKCRLFALNMREANTNYPLRLLWDDFNGSLIDILPLKDY--LFVYTEFETYIGSPT--NNTYPLMFK-KLF---NDSGILAPECVVEVEGSHFVVTQVILHNGATKKSIAKEVWVLYVGPGKAAVWNYEFDRVTIVGSFLKGFYVDVGDDRLEMRLERTGIDFDNHINRFRP
55n8pA 0.12 0.25 0.99 2.60Download VTVASTGVTSGTTTVGASGTVSVSVANSGTAVTVAQTAGNAVNTTLTQADVTVTGNSSTAVTVTQTAAATAGATVAGRVNGAVTITDSAAASATTAGKIATVTLGSFGAATIDSSAL-TTVNLSGTGTSLGIGRGALTAANTLTLNVNGLTTTGAITDSEAAADDGFTTINIAGSTASSTIASLVAADATTLNISGDARVTITSHTAAALT---GITVTNSVGATLGAELATGLVFTGGAGADSILLGATTKAIVMGAGDDTVTVSSATLGAGGSVNGGDGTDVLVANVNGSSFSADPAFGGFETLRVAGAAAQGSHNANGFTALQLGATAGATTFTNVAVNVGLAAPTGTTTVTLANANLTLSSSAALAAGTVALAGVETVNIAATDTNTTAHVDTLTLQATSAKSIVVTGNAGLNLTNTGNTAVTSFDASAVTGTGSAVTFVSANTTVGEVVTIRGGAGADSLTGSATANDTIIGGAGTGADIFDINAIGTSTAFVTITDAAVGDKLDLVGISTNGAIADGAFGAAVTLGAAATLAQYLDAAAAGDGSGTSVAKWFQFGGDTYVVVDSSAGATFVSGADAVIKLTGLVTLTT
67z47 0.23 0.24 0.36 3.24Download -------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------TPVTWSSNNASIVSVTPNANLTAVITANGEGNVTITADNGTK-TASCEIVSIP-QIDSISLSQSDVTVSRGSQYILTATLSPANAP----NQNITWTSSNPNIATVSGTS-TQGTINALLAGFTEITATTEEGNRVAVCTVRVDLTPLSSVTLDIVSASLDVGEEIVITATASPEGE------YSYQWSVDKTGYVSTTSVTGKSIKLVALRKGEINVTCTVSQ---------------------
75n8pA 0.14 0.23 0.92 4.47Download DTLTGTANNDTFVAGEVAGAATLTLSGGAGTDVLNWVQAAAVTA----LPTGVTISGIETMNVTSGTLNTSSGVTGLTALNTNTSGA-AQTVTAGAGQNLTATTAAQAANNVAVDGGAN---VTVASTGVTSGTTTVGANS-----AASGTVSVSVANSSTTTTGTAVTVAQTAGNAVNTTLTQTTAVTVTQTGRVNGAVTITDSAAASATTFGAATIDSSALTTVNLSGALTATPTANTLTLNVNITDSEAAADDGFTTINIAGSTASIASLVAADATTLNISGDARVTITTGITVTNSVGATLGAELATAGADSILLGATTIVMGAGD-----DTVTVSSATLGAGG---SVNGGDGTDVLVANVFETLRVAGAAAQGSHNAALQLGATAGATTFTNVAVNVG--LTVLAAPTG---------TTTVTLANATGTSDVFNLTLSSSAALAATDTNTTAHVDTLTLQATSAKSIVVTGNA----GLNLTNTGNTAVTSFDASSAVTFVSANTTVGEVVTIRGGAGA-------DSLTGSATANDTIIGGAGADTLVYT--GGTDTFTG--GTGADIFDINAIGTSTAFVTITD
85ftxA 0.15 0.21 0.94 1.08Download ----------------------------AEVSELKLTKDNKEVVTLYANGNDGNQISSGTLTLTAKFKDQYGTGKVAGTDYTFESLNPEVLVVAP---DGSVTPIVPGTALVKVKYGEVTKTIPVTVKNPVLETIAVDSTGVSVAKGQKATFKVTLKDQYGNK--FTGNVNVTSDKTETATVSVSSEYTVTVNGVAEGSTTITIKSGTKEVKVPVNVVAGGPVANYQIKKSATESPANNDVQLKVYAVDANGITNDVTITSEATDTNGVIVNASKSTNGDTVYVITDNGKETLTVKLGTVTLGTVDVEVITLKATVVTKKADLIELDAADNGD-NLDIKDQNGVDSAATPSGIVSSDTSVIGSVSNVDASISGLAVKKAGTVTLTLVFNDSKIAPIAITVKAPAATQDGVTVTGPGVTGVGKTKFTATDKIKSGHKLYYAVDDSAVPAPAVGTTRNSTKFANEIEVAANAGQIITVIEVDSSDRVVGYKTFTVEAADLSVAADKTGVTPTGGNQKTLLAVSDLANGHKLYAAAAGS-SAAAAPVKGIAYTDTTVRTTYGTEVTSGTVEVDAQD-GQHISIIEVDENGKVVGYKD
98oprA 0.11 0.22 0.96 2.87Download GQMAYV----TDVKVSEPTKLTLTGTGLDKLSADDVTLEGDKAVAIEASTDGTSA------------VVTLGGKVAPNKDLTVKVKNQSFVTKFVYEVKKLAVDDDRAGQAIAFKLNDEKGNADVEYLNLANHDVKFDGSPANIFEGGEATSTTGKLAVGIKQGDYKVEVQVTKRGGLTVSNT----GIITVKNLDTPASAIKNVVFALDADNDGVVNYGSKLSGKDFALNSQNLVVGEKASLNKLVATIAGEDKVVDGSISIKSSNHGIISVVN-----NYITAEAAGEATLTIKVGDVTKVKFKVTTDSRKLVSVKANPDKLQVVQNKTLPVTFVTTDQYGDPFGANAAIKEVLPKTGVVAEGGLDVKTIGVTGNDVGEGTVHFQNGNGATLGSLYVNVTEGNVAFKNPDTKLDLNVSTTVEYQLSKYTSDRVYPENLEGYEVESKNLAVADAKIVGN-KVVVTGKTPGKVDIHLTKNGAAGKATVEIVQETIAIKSVNFKPVQTENFVEKKINIGTVLELEKSNLDDIVKGINLTKETQHKVRVVKSGAEQGKLYLDRNGVKLGDVTVYLDKGTLVFKVLKDKDVAVHVNP
108gyrA 0.99 0.30 0.31 3.56Download --------------------------------------TQATLTSIEVSPTRASIAKGMTQKFTATGIFTDHSKKNITEQVTWKSSSKALSMLNAPGEEGTGKAIAVGNISITATLEKLSGKTDITVTPAILTSIQISPVKHCLVKGLTEKFSATGIYSDNSSKDITSAVTWHSSNNSVATISNTKGYQGQAHGTGTGTVDIKATLGNVSSAVSKLSVTA--------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------
(a)All the residues are colored in black; however, those residues in template which are identical to the residue in the query sequence are highlighted in color. Coloring scheme is based on the property of amino acids, where polar are brightly coloured while non-polar residues are colored in dark shade. (more about the colors used)
(b)Rank of templates represents the top ten threading templates used by I-TASSER.
(c)Ident1 is the percentage sequence identity of the templates in the threading aligned region with the query sequence.
(d)Ident2 is the percentage sequence identity of the whole template chains with query sequence.
(e)Cov represents the coverage of the threading alignment and is equal to the number of aligned residues divided by the length of query protein.
(f)Norm. Z-score is the normalized Z-score of the threading alignments. Alignment with a Normalized Z-score >1 mean a good alignment and vice versa.
(g)Download Align. provides the 3D structure of the aligned regions of the threading templates.
(h)The top 10 alignments reported above (in order of their ranking) are from the following threading programs:
       1: FFAS-3D   2: SPARKS-X   3: HHSEARCH2   4: HHSEARCH I   5: Neff-PPAS   6: HHSEARCH   7: pGenTHREADER   8: wdPPAS   9: PROSPECT2   10: SP3   

   Top 5 final models predicted by I-TASSER

(For each target, I-TASSER simulations generate a large ensemble of structural conformations, called decoys. To select the final models, I-TASSER uses the SPICKER program to cluster all the decoys based on the pair-wise structure similarity, and reports up to five models which corresponds to the five largest structure clusters. The confidence of each model is quantitatively measured by C-score that is calculated based on the significance of threading template alignments and the convergence parameters of the structure assembly simulations. C-score is typically in the range of [-5, 2], where a C-score of a higher value signifies a model with a higher confidence and vice-versa. TM-score and RMSD are estimated based on C-score and protein length following the correlation observed between these qualities. Since the top 5 models are ranked by the cluster size, it is possible that the lower-rank models have a higher C-score in rare cases. Although the first model has a better quality in most cases, it is also possible that the lower-rank models have a better quality than the higher-rank models as seen in our benchmark tests. If the I-TASSER simulations converge, it is possible to have less than 5 clusters generated; this is usually an indication that the models have a good quality because of the converged simulations.)
    (By right-click on the images, you can export image file or change the configurations, e.g. modifying the background color or stopping the spin of your models)
  • Download Model 1
  • C-score=-1.22 (Read more about C-score)
  • Estimated TM-score = 0.56±0.15
  • Estimated RMSD = 10.6±4.6Å

  • Download Model 2
  • C-score = -1.43

  • Download Model 3
  • C-score = -2.03

  • Download Model 4
  • C-score = -0.39

  • Download Model 5
  • C-score = -2.24


  Proteins structurally close to the target in the PDB (as identified by TM-align)

(After the structure assembly simulation, I-TASSER uses the TM-align structural alignment program to match the first I-TASSER model to all structures in the PDB library. This section reports the top 10 proteins from the PDB that have the closest structural similarity, i.e. the highest TM-score, to the predicted I-TASSER model. Due to the structural similarity, these proteins often have similar function to the target. However, users are encouraged to use the data in the next section 'Predicted function using COACH' to infer the function of the target protein, since COACH has been extensively trained to derive biological functions from multi-source of sequence and structure features which has on average a higher accuracy than the function annotations derived only from the global structure comparison.)


Top 10 Identified stuctural analogs in PDB

Click
to view
RankPDB HitTM-scoreRMSDaIDENaCovAlignment
18oprA0.909 1.800.1200.934Download
24aq1A0.446 5.860.0690.601Download
35ftxA0.370 6.570.1400.532Download
46eqoA0.364 7.990.0390.601Download
56cinA0.362 7.660.0570.586Download
67rozA0.358 8.050.0240.596Download
78fiaA0.356 7.760.0290.569Download
87oriA0.356 7.950.0530.584Download
96npsA0.352 7.700.0450.569Download
106l7iF0.348 8.300.0330.589Download

(a)Query structure is shown in cartoon, while the structural analog is displayed using backbone trace.
(b)Ranking of proteins is based on TM-score of the structural alignment between the query structure and known structures in the PDB library.
(c)RMSDa is the RMSD between residues that are structurally aligned by TM-align.
(d)IDENa is the percentage sequence identity in the structurally aligned region.
(e)Cov represents the coverage of the alignment by TM-align and is equal to the number of structurally aligned residues divided by length of the query protein.


  Predicted function using COFACTOR and COACH

(This section reports biological annotations of the target protein by COFACTOR and COACH based on the I-TASSER structure prediction. While COFACTOR deduces protein functions (ligand-binding sites, EC and GO) using structure comparison and protein-protein networks, COACH is a meta-server approach that combines multiple function annotation results (on ligand-binding sites) from the COFACTOR, TM-SITE and S-SITE programs.)

  Ligand binding sites


Click
to view
RankC-scoreCluster
size
PDB
Hit
Lig
Name
Download
Complex
Ligand Binding Site Residues
10.12 6 2wieB CVM Rep, Mult 144,145,148
20.04 2 4zh2J 4OB Rep, Mult 248,249,257,296
30.02 1 4ylnJ Nuc.Acid Rep, Mult 326,330,362,364,366
40.02 1 N/A N/A N/A 324,334,354,356,364,365,366,367,373,384,396
50.02 1 3q2wA MAN Rep, Mult 414,472,489


Download the residue-specific ligand binding probability, which is estimated by SVM.
Download the all possible binding ligands and detailed prediction summary.
Download the templates clustering results.
(a)C-score is the confidence score of the prediction. C-score ranges [0-1], where a higher score indicates a more reliable prediction.
(b)Cluster size is the total number of templates in a cluster.
(c)Lig Name is name of possible binding ligand. Click the name to view its information in the BioLiP database.
(d)Rep is a single complex structure with the most representative ligand in the cluster, i.e., the one listed in the Lig Name column.
Mult is the complex structures with all potential binding ligands in the cluster.

  Enzyme Commission (EC) numbers and active sites


Click
to view
RankCscoreECPDB
Hit
TM-scoreRMSDaIDENaCovEC NumberActive Site Residues
10.1163ecqB0.338 8.200.0220.572 3.2.1.97  NA
20.1153f2bA0.325 7.860.0450.529 2.7.7.7  NA
30.1131bglA0.320 7.850.0380.527 3.2.1.23  NA
40.1112zzgA0.317 7.560.0470.502 6.1.1.7  14
50.1113iydD0.325 8.320.0390.552 2.7.7.6  NA

 Click on the radio buttons to visualize predicted active site residues.
(a)CscoreEC is the confidence score for the EC number prediction. CscoreEC values range in between [0-1];
where a higher score indicates a more reliable EC number prediction.
(b)TM-score is a measure of global structural similarity between query and template protein.
(c)RMSDa is the RMSD between residues that are structurally aligned by TM-align.
(d)IDENa is the percentage sequence identity in the structurally aligned region.
(e)Cov represents the coverage of global structural alignment and is equal to the number of structurally aligned residues divided
by length of the query protein.

  Gene Ontology (GO) terms
Top 10 homologous GO templates in PDB 
RankCscoreGOTM-scoreRMSDaIDENaCovPDB HitAssociated GO Terms
1 0.210.3145 7.50 0.06 0.502iceA GO:0004866
2 0.120.3400 8.18 0.02 0.573ecqB GO:0007155
3 0.120.3352 8.39 0.05 0.583k6sE GO:0005515 GO:0016021 GO:0008305 GO:0050900 GO:0004872 GO:0005886 GO:0007155 GO:0009887 GO:0007596 GO:0007229 GO:0016020
4 0.120.3314 8.47 0.04 0.573k6sA GO:0050900 GO:0007229 GO:0016021 GO:0007596 GO:0007155 GO:0009887 GO:0016020 GO:0008305 GO:0004872 GO:0005515 GO:0005886
5 0.110.3155 8.17 0.04 0.533fcsA GO:0007229 GO:0005887 GO:0016020 GO:0030168 GO:0002576 GO:0007596 GO:0050840 GO:0007411 GO:0004872 GO:0005925 GO:0016021 GO:0031092 GO:0005886 GO:0007155 GO:0009897 GO:0007160 GO:0042802 GO:0008305
6 0.110.3203 7.85 0.04 0.531bglA GO:0046872 GO:0016787 GO:0005990 GO:0016798 GO:0005515 GO:0004565 GO:0008152 GO:0003824 GO:0004553 GO:0005975 GO:0009341 GO:0030246 GO:0043169
7 0.110.3254 7.86 0.04 0.533f2bA GO:0003676 GO:0003677 GO:0003824 GO:0003887 GO:0005737 GO:0006260 GO:0008408
8 0.110.3158 8.02 0.03 0.523cmuA GO:0003697 GO:0048870 GO:0006310 GO:0017111 GO:0009432 GO:0006281 GO:0006950 GO:0003677 GO:0008094 GO:0006974 GO:0000166 GO:0006259 GO:0005737 GO:0005524
9 0.110.3168 7.56 0.05 0.502zzgA GO:0000166 GO:0003676 GO:0004813 GO:0005524 GO:0005737 GO:0006412 GO:0006419 GO:0016876 GO:0043039
10 0.110.3246 8.32 0.04 0.553iydD GO:0016740 GO:0005515 GO:0006351 GO:0016779 GO:0016020 GO:0003899 GO:0005737 GO:0003677


Consensus prediction of GO terms
 
Molecular Function GO:0061135 GO:0030414 GO:0004872
GO-Score 0.42 0.42 0.31
Biological Process GO:0009653 GO:0048513 GO:0016477 GO:0002376 GO:0007155 GO:0007596 GO:0007229
GO-Score 0.44 0.44 0.44 0.44 0.39 0.31 0.31
Cellular Component GO:0008305
GO-Score 0.31

(a)CscoreGO is a combined measure for evaluating global and local similarity between query and template protein. It's range is [0-1] and higher values indicate more confident predictions.
(b)TM-score is a measure of global structural similarity between query and template protein.
(c)RMSDa is the RMSD between residues that are structurally aligned by TM-align.
(d)IDENa is the percentage sequence identity in the structurally aligned region.
(e)Cov represents the coverage of global structural alignment and is equal to the number of structurally aligned residues divided by length of the query protein.
(f)The second table shows a consensus GO terms amongst the top scoring templates. The GO-Score associated with each prediction is defined as the average weight of the GO term, where the weights are assigned based on CscoreGO of the template.


[Click on S773655_results.tar.bz2 to download the tarball file including all modeling results listed on this page]



Please cite the following articles when you use the I-TASSER server:
  • Wei Zheng, Chengxin Zhang, Yang Li, Robin Pearce, Eric W. Bell, Yang Zhang. Folding non-homology proteins by coupling deep-learning contact maps with I-TASSER assembly simulations. Cell Reports Methods, 1: 100014 (2021).
  • Chengxin Zhang, Peter L. Freddolino, and Yang Zhang. COFACTOR: improved protein function prediction by combining structure, sequence and protein-protein interaction information. Nucleic Acids Research, 45: W291-299 (2017).
  • Jianyi Yang, Yang Zhang. I-TASSER server: new development for protein structure and function predictions, Nucleic Acids Research, 43: W174-W181, 2015.