Query         011752
Match_columns 478
No_of_seqs    149 out of 261
Neff          3.3 
Searched_HMMs 46136
Date          Fri Mar 29 04:50:53 2013
Command       hhsearch -i /work/01045/syshi/csienesis_hhblits_a3m/011752.a3m -d /work/01045/syshi/HHdatabase/Cdd.hhm -o /work/01045/syshi/hhsearch_cdd/011752hhsearch_cdd -cpu 12 -v 0 

 No Hit                             Prob E-value P-value  Score    SS Cols Query HMM  Template HMM
  1 PF02701 zf-Dof:  Dof domain, z 100.0 1.2E-36 2.6E-41  241.7   4.9   63  125-187     1-63  (63)
  2 TIGR02159 PA_CoA_Oxy4 phenylac  89.0    0.19 4.1E-06   46.5   1.2   34  129-164   105-140 (146)
  3 PF12760 Zn_Tnp_IS1595:  Transp  87.1    0.43 9.3E-06   35.8   1.9   31  125-162    15-45  (46)
  4 PF03811 Zn_Tnp_IS1:  InsA N-te  86.8    0.35 7.7E-06   35.5   1.3   30  130-161     6-36  (36)
  5 COG3677 Transposase and inacti  83.7    0.64 1.4E-05   42.2   1.8   35  130-166    31-65  (129)
  6 smart00440 ZnF_C2C2 C2C2 Zinc   77.6     1.6 3.6E-05   32.3   1.9   36  130-165     1-39  (40)
  7 cd00202 ZnF_GATA Zinc finger D  73.5       4 8.8E-05   32.1   3.2   40  131-173     1-40  (54)
  8 PF01096 TFIIS_C:  Transcriptio  69.1     2.6 5.7E-05   31.0   1.2   36  130-165     1-39  (39)
  9 PF13453 zf-TFIIB:  Transcripti  64.0     1.6 3.4E-05   32.0  -0.8   37  131-172     1-37  (41)
 10 PHA02998 RNA polymerase subuni  59.4     7.1 0.00015   38.3   2.5   39  128-166   142-183 (195)
 11 TIGR01384 TFS_arch transcripti  56.8       9  0.0002   32.6   2.4   40  128-167    61-103 (104)
 12 smart00401 ZnF_GATA zinc finge  55.6     8.2 0.00018   30.0   1.8   39  129-170     3-41  (52)
 13 PRK14810 formamidopyrimidine-D  49.8     8.8 0.00019   38.5   1.4   29  129-162   244-272 (272)
 14 TIGR01385 TFSII transcription   49.2      11 0.00023   39.0   2.0   40  126-165   255-297 (299)
 15 PF04981 NMD3:  NMD3 family ;    48.0     7.4 0.00016   38.0   0.6   26  143-168    19-49  (236)
 16 PRK14811 formamidopyrimidine-D  45.1      12 0.00025   37.6   1.5   29  129-162   235-263 (269)
 17 PF09526 DUF2387:  Probable met  43.6      14  0.0003   30.9   1.5   31  129-162     8-38  (71)
 18 KOG2691 RNA polymerase II subu  43.1      15 0.00032   33.5   1.7   68   82-166    40-113 (113)
 19 PRK01103 formamidopyrimidine/5  42.2      14  0.0003   37.0   1.5   29  129-162   245-273 (274)
 20 PF04216 FdhE:  Protein involve  42.0      11 0.00023   37.8   0.7   36  129-164   211-248 (290)
 21 PF14690 zf-ISL3:  zinc-finger   41.7      11 0.00024   27.5   0.6   29  129-160     2-47  (47)
 22 PF06220 zf-U1:  U1 zinc finger  40.6     9.9 0.00021   28.1   0.2   17  152-168     1-17  (38)
 23 PRK13945 formamidopyrimidine-D  39.6      16 0.00035   36.7   1.6   29  129-162   254-282 (282)
 24 PRK10445 endonuclease VIII; Pr  39.1      16 0.00034   36.5   1.4   29  129-162   235-263 (263)
 25 TIGR00244 transcriptional regu  35.8      22 0.00047   33.7   1.7   45  131-175     2-49  (147)
 26 TIGR00577 fpg formamidopyrimid  35.0      20 0.00044   35.9   1.4   28  129-161   245-272 (272)
 27 PRK00464 nrdR transcriptional   33.1      24 0.00053   33.3   1.5   45  130-174     1-48  (154)
 28 PHA00626 hypothetical protein   31.6      24 0.00052   29.0   1.0   37  131-169     2-38  (59)
 29 PRK14892 putative transcriptio  30.5      28 0.00062   30.8   1.4   38  122-164    15-52  (99)
 30 PF14354 Lar_restr_allev:  Rest  29.7      37 0.00081   26.1   1.8   35  128-162     2-37  (61)
 31 COG0266 Nei Formamidopyrimidin  29.3      28 0.00061   35.8   1.3   30  128-162   244-273 (273)
 32 TIGR01562 FdhE formate dehydro  29.2      37 0.00079   35.3   2.2   10  152-161   222-231 (305)
 33 PRK00432 30S ribosomal protein  28.4      25 0.00053   27.5   0.6   25  130-162    21-45  (50)
 34 PRK03564 formate dehydrogenase  28.0      39 0.00083   35.3   2.1   14  149-162   221-234 (309)
 35 TIGR03655 anti_R_Lar restricti  28.0      41 0.00089   25.9   1.8   32  130-162     2-34  (53)
 36 PF06827 zf-FPG_IleRS:  Zinc fi  24.6      26 0.00055   24.0   0.1   28  130-162     2-29  (30)
 37 TIGR02443 conserved hypothetic  24.3      51  0.0011   27.1   1.7   31  128-161     8-38  (59)
 38 PF00446 GnRH:  Gonadotropin-re  23.1      43 0.00093   19.1   0.7    8  316-323     3-10  (10)
 39 PF08273 Prim_Zn_Ribbon:  Zinc-  22.3      46   0.001   25.1   1.1   33  128-162     2-34  (40)
 40 PF01783 Ribosomal_L32p:  Ribos  21.3      41  0.0009   26.5   0.7   27  122-161    20-46  (56)
 41 COG4260 Membrane protease subu  20.4      59  0.0013   34.4   1.7   36  125-162   302-342 (345)
 42 PF05129 Elf1:  Transcription e  20.1      47   0.001   28.2   0.8   44  121-165    14-57  (81)

No 1  
>PF02701 zf-Dof:  Dof domain, zinc finger;  InterPro: IPR003851 Zinc finger (Znf) domains are relatively small protein motifs which contain multiple finger-like protrusions that make tandem contacts with their target molecule. Some of these domains bind zinc, but many do not; instead binding other metals such as iron, or no metal at all. For example, some family members form salt bridges to stabilise the finger-like folds. They were first identified as a DNA-binding motif in transcription factor TFIIIA from Xenopus laevis (African clawed frog), however they are now recognised to bind DNA, RNA, protein and/or lipid substrates [, , , , ]. Their binding properties depend on the amino acid sequence of the finger domains and of the linker between fingers, as well as on the higher-order structures and the number of fingers. Znf domains are often found in clusters, where fingers can have different binding specificities. There are many superfamilies of Znf motifs, varying in both sequence and structure. They display considerable versatility in binding modes, even between members of the same class (e.g. some bind DNA, others protein), suggesting that Znf motifs are stable scaffolds that have evolved specialised functions. For example, Znf-containing proteins function in gene transcription, translation, mRNA trafficking, cytoskeleton organisation, epithelial development, cell adhesion, protein folding, chromatin remodelling and zinc sensing, to name but a few []. Zinc-binding motifs are stable structures, and they rarely undergo conformational changes upon binding their target.  This entry consists of proteins containing a Dof domain, which is a zinc finger DNA-binding domain that shows resemblance to the Cys2 zinc finger, although it has a longer putative loop where an extra Cys residue is conserved []. AOBP, a DNA-binding protein in pumpkin (Cucurbita maxima), contains a 52 amino acid Dof domain, which is highly conserved in several DNA-binding proteins of higher plants. More information about these proteins can be found at Protein of the Month: Zinc Fingers [].; GO: 0003677 DNA binding, 0008270 zinc ion binding, 0006355 regulation of transcription, DNA-dependent
Probab=100.00  E-value=1.2e-36  Score=241.70  Aligned_cols=63  Identities=71%  Similarity=1.460  Sum_probs=60.9

Q ss_pred             CCCCccCCCCCCCCCCceeeecccCCCCCcchhhhhhhhhccCCcccccccCCCccCCCCCCC
Q 011752          125 KPDKILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTAGGTMRNVPVGAGRRKNKNCAS  187 (478)
Q Consensus       125 ~p~~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~GG~lRnvPvGgG~RK~k~s~S  187 (478)
                      +|++.++||||+|++|||||||||++.||||||++|+||||+||+|||||||||+||+|+++|
T Consensus         1 ~~~~~~~CPRC~S~nTKFcYyNNy~~~QPR~~Ck~C~rywT~GG~lRnVPvggg~Rk~k~~~s   63 (63)
T PF02701_consen    1 KPEQPLPCPRCDSTNTKFCYYNNYNLSQPRYFCKSCRRYWTHGGTLRNVPVGGGCRKNKRSSS   63 (63)
T ss_pred             CCccCCCCCCcCCCCCEEEeecCCCCCCcchhhHHHHHHHHhcceecCCccCCCcccCCcCCC
Confidence            588999999999999999999999999999999999999999999999999999999999764


No 2  
>TIGR02159 PA_CoA_Oxy4 phenylacetate-CoA oxygenase, PaaJ subunit. Phenylacetate-CoA oxygenase is comprised of a five gene complex responsible for the hydroxylation of phenylacetate-CoA (PA-CoA) as the second catabolic step in phenylacetic acid (PA) degradation. Although the exact function of this enzyme has not been determined, it has been shown to be required for phenylacetic acid degradation and has been proposed to function in a multicomponent oxygenase acting on phenylacetate-CoA.
Probab=88.99  E-value=0.19  Score=46.53  Aligned_cols=34  Identities=29%  Similarity=0.679  Sum_probs=27.6

Q ss_pred             ccCCCCCCCCCCceeeeccc--CCCCCcchhhhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNY--NINQPRHFCKACQRYW  164 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny--~~~qPR~fCk~C~Ryw  164 (478)
                      ...||||.|.+|+.  .+.|  +.++.-|+|++|+.=+
T Consensus       105 ~~~cp~c~s~~t~~--~s~fg~t~cka~~~c~~c~epf  140 (146)
T TIGR02159       105 SVQCPRCGSADTTI--TSIFGPTACKALYRCRACKEPF  140 (146)
T ss_pred             CCcCCCCCCCCcEe--ecCCCChhhHHHhhhhhhCCcH
Confidence            58999999999997  5666  4567889999998643


No 3  
>PF12760 Zn_Tnp_IS1595:  Transposase zinc-ribbon domain;  InterPro: IPR024442 This zinc binding domain is found in a range of transposase proteins such as ISSPO8, ISSOD11, ISRSSP2 etc. It may be a zinc-binding beta ribbon domain that could bind DNA.
Probab=87.05  E-value=0.43  Score=35.80  Aligned_cols=31  Identities=39%  Similarity=0.808  Sum_probs=23.8

Q ss_pred             CCCCccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          125 KPDKILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       125 ~p~~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      =|+. ..||+|.+.  ++..+.+    +.++.|++|++
T Consensus        15 W~~g-~~CP~Cg~~--~~~~~~~----~~~~~C~~C~~   45 (46)
T PF12760_consen   15 WPDG-FVCPHCGST--KHYRLKT----RGRYRCKACRK   45 (46)
T ss_pred             CCCC-CCCCCCCCe--eeEEeCC----CCeEECCCCCC
Confidence            3444 679999998  6655655    78999999985


No 4  
>PF03811 Zn_Tnp_IS1:  InsA N-terminal domain;  InterPro: IPR003220 Insertion elements are mobile elements in DNA, usually encoding proteins required for transposition, for example transposases. Protein InsA is absolutely required for transposition of insertion element 1. This entry represents a short zinc binding domain found in IS1 InsA family protein. It is found at the N terminus of the protein and may be a DNA-binding domain.; GO: 0006313 transposition, DNA-mediated
Probab=86.76  E-value=0.35  Score=35.48  Aligned_cols=30  Identities=33%  Similarity=0.700  Sum_probs=21.4

Q ss_pred             cCCCCCCCCCCceeeecccCCC-CCcchhhhhh
Q 011752          130 LPCPRCNSMDTKFCYYNNYNIN-QPRHFCKACQ  161 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~-qPR~fCk~C~  161 (478)
                      +.||||.+.+.=  |=|-.+.. ..||+|++|+
T Consensus         6 v~CP~C~s~~~v--~k~G~~~~G~qryrC~~C~   36 (36)
T PF03811_consen    6 VHCPRCQSTEGV--KKNGKSPSGHQRYRCKDCR   36 (36)
T ss_pred             eeCCCCCCCCcc--eeCCCCCCCCEeEecCcCC
Confidence            689999998721  23444433 5899999996


No 5  
>COG3677 Transposase and inactivated derivatives [DNA replication, recombination, and repair]
Probab=83.75  E-value=0.64  Score=42.19  Aligned_cols=35  Identities=29%  Similarity=0.632  Sum_probs=27.8

Q ss_pred             cCCCCCCCCCCceeeecccCCCCCcchhhhhhhhhcc
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTA  166 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~  166 (478)
                      ..||+|.+.+  +-=++-+.....|+.|++|++=|+.
T Consensus        31 ~~cP~C~s~~--~~k~g~~~~~~qRyrC~~C~~tf~~   65 (129)
T COG3677          31 VNCPRCKSSN--VVKIGGIRRGHQRYKCKSCGSTFTV   65 (129)
T ss_pred             CcCCCCCccc--eeeECCccccccccccCCcCcceee
Confidence            4899999999  2235555666999999999998874


No 6  
>smart00440 ZnF_C2C2 C2C2 Zinc finger. Nucleic-acid-binding motif in transcriptional elongation factor TFIIS and RNA polymerases.
Probab=77.64  E-value=1.6  Score=32.26  Aligned_cols=36  Identities=25%  Similarity=0.809  Sum_probs=26.9

Q ss_pred             cCCCCCCCCCCceeeecccCCCCC---cchhhhhhhhhc
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQP---RHFCKACQRYWT  165 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qP---R~fCk~C~RywT  165 (478)
                      .+||+|...+.-|-..+-.....|   -|.|.+|...|.
T Consensus         1 ~~Cp~C~~~~a~~~q~Q~RsaDE~mT~fy~C~~C~~~w~   39 (40)
T smart00440        1 APCPKCGNREATFFQLQTRSADEPMTVFYVCTKCGHRWR   39 (40)
T ss_pred             CcCCCCCCCeEEEEEEcccCCCCCCeEEEEeCCCCCEeC
Confidence            379999977777655555555445   499999999986


No 7  
>cd00202 ZnF_GATA Zinc finger DNA binding domain; binds specifically to DNA consensus sequence [AT]GATA[AG] promoter elements; a subset of family members may also bind protein; zinc-finger consensus topology is C-X(2)-C-X(17)-C-X(2)-C
Probab=73.51  E-value=4  Score=32.08  Aligned_cols=40  Identities=28%  Similarity=0.683  Sum_probs=29.2

Q ss_pred             CCCCCCCCCCceeeecccCCCCCcchhhhhhhhhccCCccccc
Q 011752          131 PCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTAGGTMRNV  173 (478)
Q Consensus       131 ~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~GG~lRnv  173 (478)
                      .|-.|....|..=+-.   ......+|-+|..||...|.+|-+
T Consensus         1 ~C~~C~~~~Tp~WR~g---~~~~~~LCNaCgl~~~k~~~~rp~   40 (54)
T cd00202           1 ACSNCGTTTTPLWRRG---PSGGSTLCNACGLYWKKHGVMRPL   40 (54)
T ss_pred             CCCCCCCCCCcccccC---CCCcchHHHHHHHHHHhcCCCCCc
Confidence            3778888777542222   256789999999999999976544


No 8  
>PF01096 TFIIS_C:  Transcription factor S-II (TFIIS);  InterPro: IPR001222 Zinc finger (Znf) domains are relatively small protein motifs which contain multiple finger-like protrusions that make tandem contacts with their target molecule. Some of these domains bind zinc, but many do not; instead binding other metals such as iron, or no metal at all. For example, some family members form salt bridges to stabilise the finger-like folds. They were first identified as a DNA-binding motif in transcription factor TFIIIA from Xenopus laevis (African clawed frog), however they are now recognised to bind DNA, RNA, protein and/or lipid substrates [, , , , ]. Their binding properties depend on the amino acid sequence of the finger domains and of the linker between fingers, as well as on the higher-order structures and the number of fingers. Znf domains are often found in clusters, where fingers can have different binding specificities. There are many superfamilies of Znf motifs, varying in both sequence and structure. They display considerable versatility in binding modes, even between members of the same class (e.g. some bind DNA, others protein), suggesting that Znf motifs are stable scaffolds that have evolved specialised functions. For example, Znf-containing proteins function in gene transcription, translation, mRNA trafficking, cytoskeleton organisation, epithelial development, cell adhesion, protein folding, chromatin remodelling and zinc sensing, to name but a few []. Zinc-binding motifs are stable structures, and they rarely undergo conformational changes upon binding their target.  This entry represents a zinc finger motif found in transcription factor IIs (TFIIS). In eukaryotes the initiation of transcription of protein encoding genes by polymerase II (Pol II) is modulated by general and specific transcription factors. The general transcription factors operate through common promoters elements (such as the TATA box). At least eight different proteins associate to form the general transcription factors: TFIIA, -IIB, -IID, -IIE, -IIF, -IIG, -IIH and -IIS []. During mRNA elongation, Pol II can encounter DNA sequences that cause reverse movement of the enzyme. Such backtracking involves extrusion of the RNA 3'-end into the pore, and can lead to transcriptional arrest. Escape from arrest requires cleavage of the extruded RNA with the help of TFIIS, which induces mRNA cleavage by enhancing the intrinsic nuclease activity of RNA polymerase (Pol) II, past template-encoded pause sites []. TFIIS extends from the polymerase surface via a pore to the internal active site. Two essential and invariant acidic residues in a TFIIS loop complement the Pol II active site and could position a metal ion and a water molecule for hydrolytic RNA cleavage. TFIIS also induces extensive structural changes in Pol II that would realign nucleic acids in the active centre.  TFIIS is a protein of about 300 amino acids. It contains three regions: a variable N-terminal domain not required for TFIIS activity; a conserved central domain required for Pol II binding; and a conserved C-terminal C4-type zinc finger essential for RNA cleavage. The zinc finger folds in a conformation termed a zinc ribbon [] characterised by a three-stranded antiparallel beta-sheet and two beta-hairpins. A backbone model for Pol II-TFIIS complex was obtained from X-ray analysis. It shows that a beta hairpin protrudes from the zinc finger and complements the pol II active site [].  Some viral proteins also contain the TFIIS zinc ribbon C-terminal domain. The Vaccinia virus protein, unlike its eukaryotic homologue, is an integral RNA polymerase subunit rather than a readily separable transcription factor []. More information about these proteins can be found at Protein of the Month: Zinc Fingers [].; GO: 0003676 nucleic acid binding, 0008270 zinc ion binding, 0006351 transcription, DNA-dependent; PDB: 3M4O_I 3S14_I 2E2J_I 4A3J_I 3HOZ_I 1TWA_I 3S1Q_I 3S1N_I 1TWG_I 3I4M_I ....
Probab=69.07  E-value=2.6  Score=30.98  Aligned_cols=36  Identities=22%  Similarity=0.706  Sum_probs=23.1

Q ss_pred             cCCCCCCCCCCceeeecccCCCCC---cchhhhhhhhhc
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQP---RHFCKACQRYWT  165 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qP---R~fCk~C~RywT  165 (478)
                      ..||.|...+.-|--.+.....-|   .|.|.+|..-|+
T Consensus         1 ~~Cp~Cg~~~a~~~~~Q~rsaDE~~T~fy~C~~C~~~wr   39 (39)
T PF01096_consen    1 IKCPKCGHNEAVFFQIQTRSADEPMTLFYVCCNCGHRWR   39 (39)
T ss_dssp             S--SSS-SSEEEEEEESSSSSSSSSEEEEEESSSTEEEE
T ss_pred             CCCcCCCCCeEEEEEeeccCCCCCCeEEEEeCCCCCeeC
Confidence            379999998766644455444444   389999998885


No 9  
>PF13453 zf-TFIIB:  Transcription factor zinc-finger
Probab=64.03  E-value=1.6  Score=32.01  Aligned_cols=37  Identities=22%  Similarity=0.587  Sum_probs=26.4

Q ss_pred             CCCCCCCCCCceeeecccCCCCCcchhhhhhhhhccCCcccc
Q 011752          131 PCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTAGGTMRN  172 (478)
Q Consensus       131 ~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~GG~lRn  172 (478)
                      +||+|...=...-+     ..-+-+.|.+|...|-..|.+..
T Consensus         1 ~CP~C~~~l~~~~~-----~~~~id~C~~C~G~W~d~~el~~   37 (41)
T PF13453_consen    1 KCPRCGTELEPVRL-----GDVEIDVCPSCGGIWFDAGELEK   37 (41)
T ss_pred             CcCCCCcccceEEE-----CCEEEEECCCCCeEEccHHHHHH
Confidence            59999885444433     22456889999999988776543


No 10 
>PHA02998 RNA polymerase subunit; Provisional
Probab=59.36  E-value=7.1  Score=38.27  Aligned_cols=39  Identities=26%  Similarity=0.659  Sum_probs=32.9

Q ss_pred             CccCCCCCCCCCCceeeecccCCCCCc---chhhhhhhhhcc
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQPR---HFCKACQRYWTA  166 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~qPR---~fCk~C~RywT~  166 (478)
                      ...+||+|...++-|--.|-.....|-   |.|..|..-|.-
T Consensus       142 t~v~CPkCg~~~A~f~qlQTRSADEPmT~FYkC~~CG~~wkp  183 (195)
T PHA02998        142 YNTPCPNCKSKNTTPMMIQTRAADEPPLVRHACRDCKKHFKP  183 (195)
T ss_pred             cCCCCCCCCCCceEEEEEeeccCCCCceEEEEcCCCCCccCC
Confidence            458999999999998888888777774   899999998864


No 11 
>TIGR01384 TFS_arch transcription factor S, archaeal. There has been an apparent duplication event in the Halobacteriaceae lineage (Haloarcula, Haloferax, Haloquadratum, Halobacterium and Natromonas). There appears to be a separate duplication in Methanosphaera stadtmanae.
Probab=56.83  E-value=9  Score=32.60  Aligned_cols=40  Identities=18%  Similarity=0.558  Sum_probs=27.9

Q ss_pred             CccCCCCCCCCCCceeeecccCCCCC---cchhhhhhhhhccC
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQP---RHFCKACQRYWTAG  167 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~qP---R~fCk~C~RywT~G  167 (478)
                      -...||+|...+.-|-..+-.....|   -|.|.+|+-.|+.+
T Consensus        61 ~~~~Cp~Cg~~~a~f~~~Q~RsadE~~T~fy~C~~C~~~w~~~  103 (104)
T TIGR01384        61 TRVECPKCGHKEAYYWLLQTRRADEPETRFYKCTKCGYVWREY  103 (104)
T ss_pred             ccCCCCCCCCCeeEEEEeccCCCCCCcEEEEEeCCCCCeeEeC
Confidence            35799999877766644444443333   28999999999875


No 12 
>smart00401 ZnF_GATA zinc finger binding to DNA consensus sequence [AT]GATA[AG].
Probab=55.58  E-value=8.2  Score=29.98  Aligned_cols=39  Identities=21%  Similarity=0.542  Sum_probs=29.1

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhhhhccCCcc
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTAGGTM  170 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~GG~l  170 (478)
                      ...|--|....|..=.-.   ..-++.+|-+|.-||...|.+
T Consensus         3 ~~~C~~C~~~~T~~WR~g---~~g~~~LCnaCgl~~~k~~~~   41 (52)
T smart00401        3 GRSCSNCGTTETPLWRRG---PSGNKTLCNACGLYYKKHGGL   41 (52)
T ss_pred             CCCcCCCCCCCCCccccC---CCCCCcEeecccHHHHHcCCC
Confidence            468999998888642221   223379999999999998886


No 13 
>PRK14810 formamidopyrimidine-DNA glycosylase; Provisional
Probab=49.77  E-value=8.8  Score=38.45  Aligned_cols=29  Identities=24%  Similarity=0.654  Sum_probs=21.2

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ..+||||...=.+.-+=     .+.-|||..||+
T Consensus       244 g~pCprCG~~I~~~~~~-----gR~t~~CP~CQ~  272 (272)
T PRK14810        244 GEPCLNCKTPIRRVVVA-----GRSSHYCPHCQK  272 (272)
T ss_pred             CCcCCCCCCeeEEEEEC-----CCccEECcCCcC
Confidence            46999998766554332     266699999995


No 14 
>TIGR01385 TFSII transcription elongation factor S-II. This model represents eukaryotic transcription elongation factor S-II. This protein allows stalled RNA transcription complexes to perform a cleavage of the nascent RNA and restart at the newly generated 3-prime end.
Probab=49.24  E-value=11  Score=38.95  Aligned_cols=40  Identities=15%  Similarity=0.595  Sum_probs=28.8

Q ss_pred             CCCccCCCCCCCCCCceeeecccCCCCCc---chhhhhhhhhc
Q 011752          126 PDKILPCPRCNSMDTKFCYYNNYNINQPR---HFCKACQRYWT  165 (478)
Q Consensus       126 p~~~~~CPRc~S~~tkfcyyNny~~~qPR---~fCk~C~RywT  165 (478)
                      ....+.||+|...+..|-..+......|-   |.|.+|...|.
T Consensus       255 ~t~~~~C~~C~~~~~~~~q~QtrsaDEpmT~f~~C~~Cg~~w~  297 (299)
T TIGR01385       255 VTDLFTCGKCKQKKCTYYQLQTRSADEPMTTFVTCEECGNRWK  297 (299)
T ss_pred             CcccccCCCCCCccceEEEecccCCCCCCeEEEEcCCCCCeee
Confidence            44468999999877776555555544443   78999999884


No 15 
>PF04981 NMD3:  NMD3 family ;  InterPro: IPR007064 The NMD3 protein is involved in nonsense mediated mRNA decay. This N-terminal region contains four conserved CXXC motifs that could be metal binding. NMD3 is involved in export of the 60S ribosomal subunit is mediated by the adapter protein Nmd3p in a Crm1p-dependent pathway [].
Probab=47.96  E-value=7.4  Score=38.02  Aligned_cols=26  Identities=31%  Similarity=0.848  Sum_probs=18.2

Q ss_pred             eeecccCCCC-----CcchhhhhhhhhccCC
Q 011752          143 CYYNNYNINQ-----PRHFCKACQRYWTAGG  168 (478)
Q Consensus       143 cyyNny~~~q-----PR~fCk~C~RywT~GG  168 (478)
                      ||+..+.+..     --.+|+.|.||+..|.
T Consensus        19 C~~~~~~i~ei~~~i~v~~C~~Cg~~~~~~~   49 (236)
T PF04981_consen   19 CYLKRFDIIEIPDRIEVTICPKCGRYRIGGR   49 (236)
T ss_pred             HhcccCCeeecCCccCceECCCCCCEECCCE
Confidence            5666665433     2378999999999854


No 16 
>PRK14811 formamidopyrimidine-DNA glycosylase; Provisional
Probab=45.11  E-value=12  Score=37.59  Aligned_cols=29  Identities=38%  Similarity=0.839  Sum_probs=21.3

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ..+||||...=.|.-+ .    .+.-|||..||+
T Consensus       235 g~pC~~Cg~~I~~~~~-~----gR~ty~Cp~CQ~  263 (269)
T PRK14811        235 GQPCPRCGTPIEKIVV-G----GRGTHFCPQCQP  263 (269)
T ss_pred             cCCCCcCCCeeEEEEE-C----CCCcEECCCCcC
Confidence            4589999977665433 2    366799999996


No 17 
>PF09526 DUF2387:  Probable metal-binding protein (DUF2387);  InterPro: IPR012658 Members of this family are small proteins, about 70 residues in length, with a basic triplet near the N terminus and a probable metal-binding motif CPXCX(18)CXXC. Members are found in various proteobacteria.
Probab=43.60  E-value=14  Score=30.88  Aligned_cols=31  Identities=29%  Similarity=0.533  Sum_probs=24.8

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      +..||+|.++||=..|+-|.   ..-.-|-.|.-
T Consensus         8 Ga~CP~C~~~D~i~~~~e~~---ve~vECV~CGy   38 (71)
T PF09526_consen    8 GAVCPKCQAMDTIMMWRENG---VEYVECVECGY   38 (71)
T ss_pred             CccCCCCcCccEEEEEEeCC---ceEEEecCCCC
Confidence            57899999999888887776   55667888853


No 18 
>KOG2691 consensus RNA polymerase II subunit 9 [Transcription]
Probab=43.11  E-value=15  Score=33.54  Aligned_cols=68  Identities=24%  Similarity=0.434  Sum_probs=42.3

Q ss_pred             CCCCCCCCCCCCchhhhhhhhhhhhhhcccccCCCCccccccCC-CCCccCCCCCCCCCCceeeecccCCCC-----Ccc
Q 011752           82 SPEANVNPKTPSIDDETAKSKAAKSEKSQNDASNSNSQEKTLKK-PDKILPCPRCNSMDTKFCYYNNYNINQ-----PRH  155 (478)
Q Consensus        82 ~s~~~~~pktps~~~~~~~~k~sk~e~~q~~~~~~~sq~k~l~~-p~~~~~CPRc~S~~tkfcyyNny~~~q-----PR~  155 (478)
                      ++.+-.|+-..+.+|-+.-..             -..++.+||+ -+  ..||+|.....-|  |+--....     --|
T Consensus        40 s~~vY~~~~~~e~dE~t~ii~-------------Dl~~DPTLPrts~--~~C~~C~~~eavf--fQ~~~~r~d~~m~l~y  102 (113)
T KOG2691|consen   40 SSRVYVNELSHEHDELTQIIM-------------DLASDPTLPRTSD--KHCPKCGHREAVF--FQAQTRRADEAMRLFY  102 (113)
T ss_pred             CcceEcCCcccchhhHHHHHH-------------hhccCCCcCcccc--ccCCccCCcceEE--EecccccccceEEEEE
Confidence            444555666666654443221             2456788876 44  4999999988766  65432211     118


Q ss_pred             hhhhhhhhhcc
Q 011752          156 FCKACQRYWTA  166 (478)
Q Consensus       156 fCk~C~RywT~  166 (478)
                      .|-+|.-.||.
T Consensus       103 vC~~C~h~wte  113 (113)
T KOG2691|consen  103 VCCSCGHRWTE  113 (113)
T ss_pred             EeccccccccC
Confidence            89999999984


No 19 
>PRK01103 formamidopyrimidine/5-formyluracil/ 5-hydroxymethyluracil DNA glycosylase; Validated
Probab=42.19  E-value=14  Score=36.96  Aligned_cols=29  Identities=31%  Similarity=0.686  Sum_probs=21.3

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ..+||||...=.|. .++    .+.-|||..||+
T Consensus       245 g~pC~~Cg~~I~~~-~~~----gR~t~~CP~CQ~  273 (274)
T PRK01103        245 GEPCRRCGTPIEKI-KQG----GRSTFFCPRCQK  273 (274)
T ss_pred             CCCCCCCCCeeEEE-EEC----CCCcEECcCCCC
Confidence            45899999776553 333    366799999996


No 20 
>PF04216 FdhE:  Protein involved in formate dehydrogenase formation;  InterPro: IPR006452 This family of sequences describe an accessory protein required for the assembly of formate dehydrogenase of certain proteobacteria although not present in the final complex []. The exact nature of the function of FdhE in the assembly of the complex is unknown, but considering the presence of selenocysteine, molybdopterin, iron-sulphur clusters and cytochrome b556, it is likely to be involved in the insertion of cofactors. ; GO: 0005737 cytoplasm; PDB: 2FIY_B.
Probab=41.95  E-value=11  Score=37.82  Aligned_cols=36  Identities=22%  Similarity=0.613  Sum_probs=16.4

Q ss_pred             ccCCCCCCCCCCc-eeeecc-cCCCCCcchhhhhhhhh
Q 011752          129 ILPCPRCNSMDTK-FCYYNN-YNINQPRHFCKACQRYW  164 (478)
Q Consensus       129 ~~~CPRc~S~~tk-fcyyNn-y~~~qPR~fCk~C~Ryw  164 (478)
                      ...||.|...+.. +-||.. -....--+.|..|+.|+
T Consensus       211 R~~Cp~Cg~~~~~~l~~~~~e~~~~~rve~C~~C~~Yl  248 (290)
T PF04216_consen  211 RIKCPYCGNTDHEKLEYFTVEGEPAYRVEVCESCGSYL  248 (290)
T ss_dssp             TTS-TTT---SS-EEE--------SEEEEEETTTTEEE
T ss_pred             CCCCcCCCCCCCcceeeEecCCCCcEEEEECCcccchH
Confidence            4567888776654 445532 22233338899999887


No 21 
>PF14690 zf-ISL3:  zinc-finger of transposase IS204/IS1001/IS1096/IS1165
Probab=41.67  E-value=11  Score=27.48  Aligned_cols=29  Identities=34%  Similarity=0.744  Sum_probs=18.7

Q ss_pred             ccCCCCCCCCCCceeeeccc-----------------CCCCCcchhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNY-----------------NINQPRHFCKAC  160 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny-----------------~~~qPR~fCk~C  160 (478)
                      ...||.|.+..-+   .+-+                 .+..+|++|++|
T Consensus         2 ~~~Cp~Cg~~~~~---~~g~~~r~i~~l~~~~~~~~L~i~~~R~~C~~C   47 (47)
T PF14690_consen    2 PPRCPHCGSPSVH---RHGYKTRRIRHLPIGGRPVYLRIRKRRYRCKNC   47 (47)
T ss_pred             CccCCCcCCCceE---CCceEEEEEeecccCCEEEEEEEEeEEEECcCC
Confidence            3579999987622   2111                 356778888877


No 22 
>PF06220 zf-U1:  U1 zinc finger;  InterPro: IPR013085 Zinc finger (Znf) domains are relatively small protein motifs which contain multiple finger-like protrusions that make tandem contacts with their target molecule. Some of these domains bind zinc, but many do not; instead binding other metals such as iron, or no metal at all. For example, some family members form salt bridges to stabilise the finger-like folds. They were first identified as a DNA-binding motif in transcription factor TFIIIA from Xenopus laevis (African clawed frog), however they are now recognised to bind DNA, RNA, protein and/or lipid substrates [, , , , ]. Their binding properties depend on the amino acid sequence of the finger domains and of the linker between fingers, as well as on the higher-order structures and the number of fingers. Znf domains are often found in clusters, where fingers can have different binding specificities. There are many superfamilies of Znf motifs, varying in both sequence and structure. They display considerable versatility in binding modes, even between members of the same class (e.g. some bind DNA, others protein), suggesting that Znf motifs are stable scaffolds that have evolved specialised functions. For example, Znf-containing proteins function in gene transcription, translation, mRNA trafficking, cytoskeleton organisation, epithelial development, cell adhesion, protein folding, chromatin remodelling and zinc sensing, to name but a few []. Zinc-binding motifs are stable structures, and they rarely undergo conformational changes upon binding their target.  C2H2-type (classical) zinc fingers (Znf) were the first class to be characterised. They contain a short beta hairpin and an alpha helix (beta/beta/alpha structure), where a single zinc atom is held in place by Cys(2)His(2) (C2H2) residues in a tetrahedral array. C2H2 Znf's can be divided into three groups based on the number and pattern of fingers: triple-C2H2 (binds single ligand), multiple-adjacent-C2H2 (binds multiple ligands), and separated paired-C2H2 []. C2H2 Znf's are the most common DNA-binding motifs found in eukaryotic transcription factors, and have also been identified in prokaryotes []. Transcription factors usually contain several Znf's (each with a conserved beta/beta/alpha structure) capable of making multiple contacts along the DNA, where the C2H2 Znf motifs recognise DNA sequences by binding to the major groove of DNA via a short alpha-helix in the Znf, the Znf spanning 3-4 bases of the DNA []. C2H2 Znf's can also bind to RNA and protein targets []. This entry represents a C2H2-type zinc finger motif found in several U1 small nuclear ribonucleoprotein C (U1-C) proteins. Some proteins contain multiple copies of this motif. The U1 small nuclear ribonucleoprotein (U1 snRNP) binds to the pre-mRNA 5' splice site at early stages of spliceosome assembly. Recruitment of U1 to a class of weak 5' splice site is promoted by binding of the protein TIA-1 to uridine-rich sequences immediately downstream from the 5' splice site. Binding of TIA-1 in the vicinity of a 5' splice site helps to stabilise U1 snRNP recruitment, at least in part, via a direct interaction with U1-C, thus providing one molecular mechanism for the function of this splicing regulator []. More information about these proteins can be found at Protein of the Month: Zinc Fingers [].; GO: 0008270 zinc ion binding; PDB: 2VRD_A.
Probab=40.64  E-value=9.9  Score=28.08  Aligned_cols=17  Identities=35%  Similarity=0.960  Sum_probs=7.2

Q ss_pred             CCcchhhhhhhhhccCC
Q 011752          152 QPRHFCKACQRYWTAGG  168 (478)
Q Consensus       152 qPR~fCk~C~RywT~GG  168 (478)
                      +|||||.=|..|.+..-
T Consensus         1 m~ryyCdyC~~~~~~d~   17 (38)
T PF06220_consen    1 MPRYYCDYCKKYLTHDS   17 (38)
T ss_dssp             --S-B-TTT--B-S--S
T ss_pred             CcCeecccccceecCCC
Confidence            68999999999997665


No 23 
>PRK13945 formamidopyrimidine-DNA glycosylase; Provisional
Probab=39.63  E-value=16  Score=36.69  Aligned_cols=29  Identities=24%  Similarity=0.704  Sum_probs=21.2

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ..+||||...=.|.-+ .    .+--|||..||+
T Consensus       254 g~pC~~Cg~~I~~~~~-~----gR~t~~CP~CQ~  282 (282)
T PRK13945        254 GKPCRKCGTPIERIKL-A----GRSTHWCPNCQK  282 (282)
T ss_pred             cCCCCcCCCeeEEEEE-C----CCccEECCCCcC
Confidence            4599999977666544 2    256699999995


No 24 
>PRK10445 endonuclease VIII; Provisional
Probab=39.06  E-value=16  Score=36.49  Aligned_cols=29  Identities=28%  Similarity=0.661  Sum_probs=21.3

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ..+||||...=.+.-+ +    .+.-|||..||+
T Consensus       235 g~~Cp~Cg~~I~~~~~-~----gR~t~~CP~CQ~  263 (263)
T PRK10445        235 GEACERCGGIIEKTTL-S----SRPFYWCPGCQK  263 (263)
T ss_pred             CCCCCCCCCEeEEEEE-C----CCCcEECCCCcC
Confidence            4589999877655544 2    266799999985


No 25 
>TIGR00244 transcriptional regulator NrdR. Members of this almost entirely bacterial family contain an ATP cone domain (PFAM:PF03477). There is never more than one member per genome. Common gene symbols given include nrdR, ybaD, ribX and ytcG. The member from Streptomyces coelicolor is found upstream in the operon of the class II oxygen-independent ribonucleotide reductase gene nrdJ and was shown to repress nrdJ expression. Many members of this family are found near genes for riboflavin biosynthesis in Gram-negative bacteria, suggesting a role in that pathway. However, a phylogenetic profiling study associates members of this family with the presence of a palindromic signal with consensus acaCwAtATaTwGtgt, termed the NrdR-box, an upstream element for most operons for ribonucleotide reductase of all three classes in bacterial genomes.
Probab=35.81  E-value=22  Score=33.71  Aligned_cols=45  Identities=20%  Similarity=0.368  Sum_probs=32.2

Q ss_pred             CCCCCCCCCCceeee---cccCCCCCcchhhhhhhhhccCCccccccc
Q 011752          131 PCPRCNSMDTKFCYY---NNYNINQPRHFCKACQRYWTAGGTMRNVPV  175 (478)
Q Consensus       131 ~CPRc~S~~tkfcyy---Nny~~~qPR~fCk~C~RywT~GG~lRnvPv  175 (478)
                      .||.|...+||+-=-   ...+.-+-|..|.+|.+-||-==.+-..|+
T Consensus         2 ~CP~C~~~dtkViDSR~~~dg~~IRRRReC~~C~~RFTTyErve~~~l   49 (147)
T TIGR00244         2 HCPFCQHHNTRVLDSRLVEDGQSIRRRRECLECHERFTTFERAELLPP   49 (147)
T ss_pred             CCCCCCCCCCEeeeccccCCCCeeeecccCCccCCccceeeecccccc
Confidence            699999999998532   233344567999999999986655444444


No 26 
>TIGR00577 fpg formamidopyrimidine-DNA glycosylase (fpg). All proteins in the FPG family with known functions are FAPY-DNA glycosylases that function in base excision repair. Homologous to endonuclease VIII (nei). This family is based on the phylogenomic analysis of JA Eisen (1999, Ph.D. Thesis, Stanford University).
Probab=34.96  E-value=20  Score=35.86  Aligned_cols=28  Identities=36%  Similarity=0.731  Sum_probs=20.7

Q ss_pred             ccCCCCCCCCCCceeeecccCCCCCcchhhhhh
Q 011752          129 ILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQ  161 (478)
Q Consensus       129 ~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~  161 (478)
                      ..+||||...=.|.- ++    .+.-|||..||
T Consensus       245 g~pC~~Cg~~I~~~~-~~----gR~t~~CP~CQ  272 (272)
T TIGR00577       245 GEPCRRCGTPIEKIK-VG----GRGTHFCPQCQ  272 (272)
T ss_pred             CCCCCCCCCeeEEEE-EC----CCCCEECCCCC
Confidence            459999997766643 33    36669999997


No 27 
>PRK00464 nrdR transcriptional regulator NrdR; Validated
Probab=33.13  E-value=24  Score=33.25  Aligned_cols=45  Identities=29%  Similarity=0.487  Sum_probs=31.8

Q ss_pred             cCCCCCCCCCCcee---eecccCCCCCcchhhhhhhhhccCCcccccc
Q 011752          130 LPCPRCNSMDTKFC---YYNNYNINQPRHFCKACQRYWTAGGTMRNVP  174 (478)
Q Consensus       130 ~~CPRc~S~~tkfc---yyNny~~~qPR~fCk~C~RywT~GG~lRnvP  174 (478)
                      ..||.|.+.+|++-   |+-.-|+-.-||-|++|.+-++.==++-..+
T Consensus         1 m~cp~c~~~~~~~~~s~~~~~~~~~~~~~~c~~c~~~f~~~e~~~~~~   48 (154)
T PRK00464          1 MRCPFCGHPDTRVIDSRPAEDGNAIRRRRECLACGKRFTTFERVELVP   48 (154)
T ss_pred             CcCCCCCCCCCEeEeccccCCCCceeeeeeccccCCcceEeEeccCcc
Confidence            36999999997764   4445455666799999999887655444443


No 28 
>PHA00626 hypothetical protein
Probab=31.55  E-value=24  Score=28.99  Aligned_cols=37  Identities=16%  Similarity=0.189  Sum_probs=24.7

Q ss_pred             CCCCCCCCCCceeeecccCCCCCcchhhhhhhhhccCCc
Q 011752          131 PCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWTAGGT  169 (478)
Q Consensus       131 ~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT~GG~  169 (478)
                      .||+|.|.+.-=|-.=  +...-||.|++|.=++|...-
T Consensus         2 ~CP~CGS~~Ivrcg~c--r~~snrYkCkdCGY~ft~~~~   38 (59)
T PHA00626          2 SCPKCGSGNIAKEKTM--RGWSDDYVCCDCGYNDSKDAF   38 (59)
T ss_pred             CCCCCCCceeeeecee--cccCcceEcCCCCCeechhhh
Confidence            6999999754322111  111357999999999988653


No 29 
>PRK14892 putative transcription elongation factor Elf1; Provisional
Probab=30.51  E-value=28  Score=30.79  Aligned_cols=38  Identities=29%  Similarity=0.468  Sum_probs=26.6

Q ss_pred             ccCCCCCccCCCCCCCCCCceeeecccCCCCCcchhhhhhhhh
Q 011752          122 TLKKPDKILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYW  164 (478)
Q Consensus       122 ~l~~p~~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~Ryw  164 (478)
                      .++. .....||.|.+ .+--|=+..   ..+++.|..|.-|-
T Consensus        15 k~kl-pt~f~CP~Cge-~~v~v~~~k---~~~h~~C~~CG~y~   52 (99)
T PRK14892         15 KPKL-PKIFECPRCGK-VSISVKIKK---NIAIITCGNCGLYT   52 (99)
T ss_pred             ccCC-CcEeECCCCCC-eEeeeecCC---CcceEECCCCCCcc
Confidence            3434 47899999995 233344443   58899999999884


No 30 
>PF14354 Lar_restr_allev:  Restriction alleviation protein Lar
Probab=29.74  E-value=37  Score=26.13  Aligned_cols=35  Identities=23%  Similarity=0.509  Sum_probs=19.7

Q ss_pred             CccCCCCCCCCCCceeeecccCCCC-Ccchhhhhhh
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQ-PRHFCKACQR  162 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~q-PR~fCk~C~R  162 (478)
                      +..+||.|.+....+.+........ -.-+|.+|..
T Consensus         2 ~LkPCPFCG~~~~~~~~~~~~~~~~~~~V~C~~Cga   37 (61)
T PF14354_consen    2 ELKPCPFCGSADVLIRQDEGFDYGMYYYVECTDCGA   37 (61)
T ss_pred             CCcCCCCCCCcceEeecccCCCCCCEEEEEcCCCCC
Confidence            4679999955555544322221111 3455888866


No 31 
>COG0266 Nei Formamidopyrimidine-DNA glycosylase [DNA replication, recombination, and repair]
Probab=29.31  E-value=28  Score=35.78  Aligned_cols=30  Identities=27%  Similarity=0.603  Sum_probs=21.6

Q ss_pred             CccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      ++-+|+||.+.=.|--.     -.+..|||..||+
T Consensus       244 ~GepC~~CGt~I~k~~~-----~gR~t~~CP~CQ~  273 (273)
T COG0266         244 AGEPCRRCGTPIEKIKL-----GGRSTFYCPVCQK  273 (273)
T ss_pred             CCCCCCccCCEeEEEEE-----cCCcCEeCCCCCC
Confidence            34599999987665422     2356799999995


No 32 
>TIGR01562 FdhE formate dehydrogenase accessory protein FdhE. The only sequence scoring between trusted and noise is that from Aquifex aeolicus, which shows certain structural differences from the proteobacterial forms in the alignment. However it is notable that A. aeolicus also has a sequence scoring above trusted to the alpha subunit of formate dehydrogenase (TIGR01553).
Probab=29.20  E-value=37  Score=35.33  Aligned_cols=10  Identities=30%  Similarity=0.663  Sum_probs=5.1

Q ss_pred             CCcchhhhhh
Q 011752          152 QPRHFCKACQ  161 (478)
Q Consensus       152 qPR~fCk~C~  161 (478)
                      -.|..|-.|.
T Consensus       222 ~~R~~C~~Cg  231 (305)
T TIGR01562       222 YVRVKCSHCE  231 (305)
T ss_pred             ccCccCCCCC
Confidence            3455555554


No 33 
>PRK00432 30S ribosomal protein S27ae; Validated
Probab=28.39  E-value=25  Score=27.46  Aligned_cols=25  Identities=36%  Similarity=0.663  Sum_probs=18.4

Q ss_pred             cCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      .-||+|.+.   |.....     .|+.|..|..
T Consensus        21 ~fCP~Cg~~---~m~~~~-----~r~~C~~Cgy   45 (50)
T PRK00432         21 KFCPRCGSG---FMAEHL-----DRWHCGKCGY   45 (50)
T ss_pred             CcCcCCCcc---hheccC-----CcEECCCcCC
Confidence            489999873   554443     6999999964


No 34 
>PRK03564 formate dehydrogenase accessory protein FdhE; Provisional
Probab=27.99  E-value=39  Score=35.30  Aligned_cols=14  Identities=21%  Similarity=0.534  Sum_probs=8.0

Q ss_pred             CCCCCcchhhhhhh
Q 011752          149 NINQPRHFCKACQR  162 (478)
Q Consensus       149 ~~~qPR~fCk~C~R  162 (478)
                      .-.-.|..|-.|..
T Consensus       221 eW~~~R~~C~~Cg~  234 (309)
T PRK03564        221 EWHVVRVKCSNCEQ  234 (309)
T ss_pred             cccccCccCCCCCC
Confidence            34445666666663


No 35 
>TIGR03655 anti_R_Lar restriction alleviation protein, Lar family. Restriction alleviation proteins provide a countermeasure to host cell restriction enzyme defense against foreign DNA such as phage or plasmids. This family consists of homologs to the phage antirestriction protein Lar, and most members belong to phage genomes or prophage regions of bacterial genomes.
Probab=27.98  E-value=41  Score=25.90  Aligned_cols=32  Identities=25%  Similarity=0.610  Sum_probs=19.8

Q ss_pred             cCCCCCCCCCCceeeecccCCCCCcch-hhhhhh
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQPRHF-CKACQR  162 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qPR~f-Ck~C~R  162 (478)
                      .+||.|.+.+-.|=| ...+....++| |..|+.
T Consensus         2 kPCPfCGg~~~~~~~-~~~~~~~~~~~~C~~Cga   34 (53)
T TIGR03655         2 KPCPFCGGADVYLRR-GFDPLDLSHYFECSTCGA   34 (53)
T ss_pred             CCCCCCCCcceeeEe-ccCCCCCEEEEECCCCCC
Confidence            589999997775532 12334444454 877764


No 36 
>PF06827 zf-FPG_IleRS:  Zinc finger found in FPG and IleRS;  InterPro: IPR010663 Zinc finger (Znf) domains are relatively small protein motifs which contain multiple finger-like protrusions that make tandem contacts with their target molecule. Some of these domains bind zinc, but many do not; instead binding other metals such as iron, or no metal at all. For example, some family members form salt bridges to stabilise the finger-like folds. They were first identified as a DNA-binding motif in transcription factor TFIIIA from Xenopus laevis (African clawed frog), however they are now recognised to bind DNA, RNA, protein and/or lipid substrates [, , , , ]. Their binding properties depend on the amino acid sequence of the finger domains and of the linker between fingers, as well as on the higher-order structures and the number of fingers. Znf domains are often found in clusters, where fingers can have different binding specificities. There are many superfamilies of Znf motifs, varying in both sequence and structure. They display considerable versatility in binding modes, even between members of the same class (e.g. some bind DNA, others protein), suggesting that Znf motifs are stable scaffolds that have evolved specialised functions. For example, Znf-containing proteins function in gene transcription, translation, mRNA trafficking, cytoskeleton organisation, epithelial development, cell adhesion, protein folding, chromatin remodelling and zinc sensing, to name but a few []. Zinc-binding motifs are stable structures, and they rarely undergo conformational changes upon binding their target.  This entry represents a zinc finger domain found at the C-terminal in both DNA glycosylase/AP lyase enzymes and in isoleucyl tRNA synthetase. In these two types of enzymes, the C-terminal domain forms a zinc finger. Some related proteins may not bind zinc.  DNA glycosylase/AP lyase enzymes are involved in base excision repair of DNA damaged by oxidation or by mutagenic agents. These enzymes have both DNA glycosylase activity (3.2.2 from EC) and AP lyase activity (4.2.99.18 from EC) []. Examples include formamidopyrimidine-DNA glycosylases (Fpg; MutM) and endonuclease VIII (Nei). Formamidopyrimidine-DNA glycosylases (Fpg, MutM) is a trifunctional DNA base excision repair enzyme that removes a wide range of oxidation-damaged bases (N-glycosylase activity; 3.2.2.23 from EC) and cleaves both the 3'- and 5'-phosphodiester bonds of the resulting apurinic/apyrimidinic site (AP lyase activity; 4.2.99.18 from EC). Fpg has a preference for oxidised purines, excising oxidized purine bases such as 7,8-dihydro-8-oxoguanine (8-oxoG). ITs AP (apurinic/apyrimidinic) lyase activity introduces nicks in the DNA strand, cleaving the DNA backbone by beta-delta elimination to generate a single-strand break at the site of the removed base with both 3'- and 5'-phosphates. Fpg is a monomer composed of 2 domains connected by a flexible hinge []. The two DNA-binding motifs (a zinc finger and the helix-two-turns-helix motifs) suggest that the oxidized base is flipped out from double-stranded DNA in the binding mode and excised by a catalytic mechanism similar to that of bifunctional base excision repair enzymes []. Fpg binds one ion of zinc at the C terminus, which contains four conserved and essential cysteines []. Endonuclease VIII (Nei) has the same enzyme activities as Fpg above, but with a preference for oxidized pyrimidines, such as thymine glycol, 5,6-dihydrouracil and 5,6-dihydrothymine [, ].  An Fpg-type zinc finger is also found at the C terminus of isoleucyl tRNA synthetase (6.1.1.5 from EC) [, ]. This enzyme catalyses the attachment of isoleucine to tRNA(Ile). As IleRS can inadvertently accommodate and process structurally similar amino acids such as valine, to avoid such errors it has two additional distinct tRNA(Ile)-dependent editing activities. One activity is designated as 'pre-transfer' editing and involves the hydrolysis of activated Val-AMP. The other activity is designated 'post-transfer' editing and involves deacylation of mischarged Val-tRNA(Ile) [].  More information about these proteins can be found at Protein of the Month: Zinc Fingers [].; GO: 0003824 catalytic activity; PDB: 1K82_C 1Q39_A 2OQ4_B 2OPF_A 1K3X_A 1K3W_A 1Q3B_A 2EA0_A 1Q3C_A 2XZF_A ....
Probab=24.60  E-value=26  Score=24.01  Aligned_cols=28  Identities=25%  Similarity=0.615  Sum_probs=15.2

Q ss_pred             cCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          130 LPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       130 ~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      .+||||...-.++-..+     +.-+||..|+.
T Consensus         2 ~~C~rC~~~~~~~~~~~-----r~~~~C~rCq~   29 (30)
T PF06827_consen    2 EKCPRCWNYIEDIGING-----RSTYLCPRCQK   29 (30)
T ss_dssp             SB-TTT--BBEEEEETT-----EEEEE-TTTCC
T ss_pred             CcCccCCCcceEeEecC-----CCCeECcCCcC
Confidence            47999998877764421     33478888863


No 37 
>TIGR02443 conserved hypothetical metal-binding protein. Members of this family are small proteins, about 70 residues in length, with a basic triplet near the N-terminus and a probable metal-binding motif CPXCX(18)CXXC. Members are found in various Proteobacteria.
Probab=24.27  E-value=51  Score=27.11  Aligned_cols=31  Identities=26%  Similarity=0.422  Sum_probs=22.5

Q ss_pred             CccCCCCCCCCCCceeeecccCCCCCcchhhhhh
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQ  161 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~  161 (478)
                      -+..||+|..+||=..|.-|.-   ...-|-.|.
T Consensus         8 AGA~CP~C~~~Dtl~~~~e~~~---e~vECv~Cg   38 (59)
T TIGR02443         8 AGAVCPACSAQDTLAMWKENNI---ELVECVECG   38 (59)
T ss_pred             ccccCCCCcCccEEEEEEeCCc---eEEEeccCC
Confidence            3678999999999988755543   345677774


No 38 
>PF00446 GnRH:  Gonadotropin-releasing hormone;  InterPro: IPR002012 The gonadotropin-releasing hormones (GnRH) (gonadoliberin) [] are a family of peptides that play a pivotal role in reproduction. The main function of GnRH is to act on the pituitary to stimulate the synthesis and secretion of luteinizing and follicle-stimulating hormones, but GnRH also acts on the brain, retina, sympathetic nervous system, gonads and placenta in certain species. There seems to be at least three forms of GnRH. The second form is expressed in midbrain and seems to be widespread. The third form has only been found so far in fish. GnRH is a C-terminal amidated decapeptide processed from a larger precursor protein. Four of the ten residues are perfectly conserved in all species where GnRH has been sequenced.; GO: 0005179 hormone activity, 0007275 multicellular organismal development, 0005576 extracellular region
Probab=23.06  E-value=43  Score=19.06  Aligned_cols=8  Identities=25%  Similarity=1.103  Sum_probs=6.2

Q ss_pred             CCCCCCCC
Q 011752          316 WPYPWNAS  323 (478)
Q Consensus       316 WpYpWnp~  323 (478)
                      |.|.|+|+
T Consensus         3 wS~~w~PG   10 (10)
T PF00446_consen    3 WSHGWKPG   10 (10)
T ss_pred             cccccCCC
Confidence            88888863


No 39 
>PF08273 Prim_Zn_Ribbon:  Zinc-binding domain of primase-helicase;  InterPro: IPR013237 This entry is represented by bacteriophage T7 Gp4. The characteristics of the protein distribution suggest prophage matches in addition to the phage matches. This entry represents a zinc binding domain found in the N-terminal region of the bacteriophage T7 Gp4 and P4 alpha protein. P4 is a multifunctional protein with origin recognition, helicase and primase activities [, , ].; GO: 0003896 DNA primase activity, 0004386 helicase activity, 0008270 zinc ion binding; PDB: 1NUI_B.
Probab=22.32  E-value=46  Score=25.13  Aligned_cols=33  Identities=24%  Similarity=0.686  Sum_probs=18.9

Q ss_pred             CccCCCCCCCCCCceeeecccCCCCCcchhhhhhh
Q 011752          128 KILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQR  162 (478)
Q Consensus       128 ~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~R  162 (478)
                      +..+||-|-. ..+|..|-+. .-+-..+|+.|..
T Consensus         2 ~h~pCP~CGG-~DrFri~~d~-~~~G~~~C~~C~~   34 (40)
T PF08273_consen    2 KHGPCPICGG-KDRFRIFDDK-DGRGTWICRQCGG   34 (40)
T ss_dssp             EEE--TTTT--TTTEEEETT-----S-EEETTTTB
T ss_pred             CCCCCCCCcC-ccccccCcCc-ccCCCEECCCCCC
Confidence            3568999988 5688866554 3347899999954


No 40 
>PF01783 Ribosomal_L32p:  Ribosomal L32p protein family;  InterPro: IPR002677 Ribosomes are the particles that catalyse mRNA-directed protein synthesis in all organisms. The codons of the mRNA are exposed on the ribosome to allow tRNA binding. This leads to the incorporation of amino acids into the growing polypeptide chain in accordance with the genetic information. Incoming amino acid monomers enter the ribosomal A site in the form of aminoacyl-tRNAs complexed with elongation factor Tu (EF-Tu) and GTP. The growing polypeptide chain, situated in the P site as peptidyl-tRNA, is then transferred to aminoacyl-tRNA and the new peptidyl-tRNA, extended by one residue, is translocated to the P site with the aid the elongation factor G (EF-G) and GTP as the deacylated tRNA is released from the ribosome through one or more exit sites [, ]. About 2/3 of the mass of the ribosome consists of RNA and 1/3 of protein. The proteins are named in accordance with the subunit of the ribosome which they belong to - the small (S1 to S31) and the large (L1 to L44). Usually they decorate the rRNA cores of the subunits.  Many ribosomal proteins, particularly those of the large subunit, are composed of a globular, surfaced-exposed domain with long finger-like projections that extend into the rRNA core to stabilise its structure. Most of the proteins interact with multiple RNA elements, often from different domains. In the large subunit, about 1/3 of the 23S rRNA nucleotides are at least in van der Waal's contact with protein, and L22 interacts with all six domains of the 23S rRNA. Proteins S4 and S7, which initiate assembly of the 16S rRNA, are located at junctions of five and four RNA helices, respectively. In this way proteins serve to organise and stabilise the rRNA tertiary structure. While the crucial activities of decoding and peptide transfer are RNA based, proteins play an active role in functions that may have evolved to streamline the process of protein synthesis. In addition to their function in the ribosome, many ribosomal proteins have some function 'outside' the ribosome [, ]. Ribosomal protein L32p is part of the 50S ribosomal subunit. This family is found in both prokaryotes and eukaryotes. Ribosomal protein L32 of yeast binds to and regulates the splicing and the translation of the transcript of its own gene [].; GO: 0003735 structural constituent of ribosome, 0006412 translation, 0015934 large ribosomal subunit; PDB: 3PYT_2 3F1F_5 3PYV_2 3D5B_5 3MRZ_2 3D5D_5 3F1H_5 1VSP_Y 3PYR_2 3MS1_2 ....
Probab=21.29  E-value=41  Score=26.50  Aligned_cols=27  Identities=33%  Similarity=0.972  Sum_probs=20.3

Q ss_pred             ccCCCCCccCCCCCCCCCCceeeecccCCCCCcchhhhhh
Q 011752          122 TLKKPDKILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQ  161 (478)
Q Consensus       122 ~l~~p~~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~  161 (478)
                      .|+.| .+..||-|..            +.+|.+.|.+|.
T Consensus        20 ~l~~~-~l~~c~~cg~------------~~~~H~vc~~cG   46 (56)
T PF01783_consen   20 KLKAP-NLVKCPNCGE------------PKLPHRVCPSCG   46 (56)
T ss_dssp             S--TT-SEEESSSSSS------------EESTTSBCTTTB
T ss_pred             ccccc-ceeeeccCCC------------EecccEeeCCCC
Confidence            56666 8889999985            238899999996


No 41 
>COG4260 Membrane protease subunit, stomatin/prohibitin family [Amino acid    transport and metabolism]
Probab=20.37  E-value=59  Score=34.38  Aligned_cols=36  Identities=31%  Similarity=0.796  Sum_probs=23.1

Q ss_pred             CCCCccCCCCCCCCCCceeeeccc-----CCCCCcchhhhhhh
Q 011752          125 KPDKILPCPRCNSMDTKFCYYNNY-----NINQPRHFCKACQR  162 (478)
Q Consensus       125 ~p~~~~~CPRc~S~~tkfcyyNny-----~~~qPR~fCk~C~R  162 (478)
                      .|...-+||||...+  ||.---.     -.+-..-||++|..
T Consensus       302 ~pa~t~~~~r~~k~n--fc~ncG~~~t~~~~ng~a~fcp~cgq  342 (345)
T COG4260         302 APAATWPCARCAKLN--FCLNCGCGTTADFDNGKAKFCPECGQ  342 (345)
T ss_pred             CCcccCcchhccccc--cccccCcccccCCccchhhhChhhcC
Confidence            566778999999988  7653321     11223578888753


No 42 
>PF05129 Elf1:  Transcription elongation factor Elf1 like;  InterPro: IPR007808 This family of uncharacterised, mostly short, proteins contain a putative zinc binding domain with four conserved cysteines.; PDB: 1WII_A.
Probab=20.06  E-value=47  Score=28.17  Aligned_cols=44  Identities=20%  Similarity=0.357  Sum_probs=21.4

Q ss_pred             cccCCCCCccCCCCCCCCCCceeeecccCCCCCcchhhhhhhhhc
Q 011752          121 KTLKKPDKILPCPRCNSMDTKFCYYNNYNINQPRHFCKACQRYWT  165 (478)
Q Consensus       121 k~l~~p~~~~~CPRc~S~~tkfcyyNny~~~qPR~fCk~C~RywT  165 (478)
                      +...+.++...||.|+..++=-|=+..- ......-|+.|.-++.
T Consensus        14 k~~~~l~~~F~CPfC~~~~sV~v~idkk-~~~~~~~C~~Cg~~~~   57 (81)
T PF05129_consen   14 KKKPKLPKVFDCPFCNHEKSVSVKIDKK-EGIGILSCRVCGESFQ   57 (81)
T ss_dssp             ------SS----TTT--SS-EEEEEETT-TTEEEEEESSS--EEE
T ss_pred             CcCCCCCceEcCCcCCCCCeEEEEEEcc-CCEEEEEecCCCCeEE
Confidence            3444667889999999888877777433 5567788999965553


Done!