GapMind for catabolism of small carbon sources

 

Alignments for a candidate for paaJ2 in Stenotrophomonas chelatiphaga DSM 21508

Align β-ketoadipyl-CoA thiolase (EC 2.3.1.174; EC 2.3.1.223) (characterized)
to candidate WP_057506694.1 ABB28_RS00230 acetyl-CoA acetyltransferase

Query= metacyc::MONOMER-15952
         (401 letters)



>NCBI__GCF_001431535.1:WP_057506694.1
          Length = 402

 Score =  317 bits (812), Expect = 4e-91
 Identities = 192/415 (46%), Positives = 246/415 (59%), Gaps = 31/415 (7%)

Query: 1   MNEALIIDAVRTPIGRYA-GALASVRADDLGAIPLKALIARHPQLDWSAVDDVIYGCANQ 59
           + +A I+ A RTP+G+   G   + R DD+ A  L++++A+ P +D + +DD I GCA  
Sbjct: 5   IQDAYIVAATRTPVGKAPKGVFRNTRPDDMLAHVLRSVVAQAPGIDVNRIDDAIIGCAMP 64

Query: 60  AGEDNRNVARMAALLAGLPVSVPGTTLNRLCGSGLDAVGSAARALRCGEAGLMLAGGVES 119
             E   NVAR+  LLAGLP ++   T+NR C SGL AV  AA  +R G A LMLAGG ES
Sbjct: 65  EAEQGMNVARIGVLLAGLPDTIAAQTVNRFCSSGLQAVAMAADQIRLGNADLMLAGGTES 124

Query: 120 MSRAPFVMGKSEQAFGRSAEIFDTTIGWRFVNKLMQQGFGIDSMPETAENVAAQFNISRA 179
           MS  P +  K   A      +FD        +  +  G GI     TAE VA ++ +SR 
Sbjct: 125 MSMVPMMGNKIAMA----PSVFDND------HVAIAYGMGI-----TAEKVAEEWKVSRE 169

Query: 180 DQDAFALRSQHKAAAAIANGRLAKEIVAVEIAQRKGPA----------KIVEHDEHPRGD 229
           +QDAFAL S  KA AAI NG    EI   ++  R+             KIV+ DE PR D
Sbjct: 170 EQDAFALASHQKAIAAIQNGEFKDEISPYDVRTRQPDLADGRRIITRDKIVDTDEGPRLD 229

Query: 230 TTLEQLAKLGTPFRQG---GSVTAGNASGVNDGACALLLASSEAAQRHGLKARARVVGMA 286
           ++ E LAKL   FR G   G+VTAGN+S ++DGA A+LLAS +A + +GLK  AR V  +
Sbjct: 230 SSAEGLAKLRPVFRNGQFGGTVTAGNSSQMSDGAGAVLLASEQAVKDYGLKPLARFVSFS 289

Query: 287 TAGVEPRIMGIGPVPATRKVLELTGLALADMDVIELNEAFAAQGLAVLRELGLADDDERV 346
            AGV P +MGIGP+ A  K L+  GL    +D IELNEAFAAQ LAV+R+ GL  D  +V
Sbjct: 290 VAGVRPEVMGIGPIAAIPKALKQAGLTQDQLDWIELNEAFAAQSLAVIRDCGL--DPSKV 347

Query: 347 NPNGGAIALGHPLGMSGARLVTTALHELEERQGRYALCTMCIGVGQGIALIIERI 401
           NP GGAIALGHPLG +GA    T LH L  RQ +Y + TMCIG G G A I E +
Sbjct: 348 NPLGGAIALGHPLGATGAIRTATLLHGLRRRQQKYGMVTMCIGTGMGAAGIFESL 402


Lambda     K      H
   0.319    0.134    0.384 

Gapped
Lambda     K      H
   0.267   0.0410    0.140 


Matrix: BLOSUM62
Gap Penalties: Existence: 11, Extension: 1
Number of Sequences: 1
Number of Hits to DB: 427
Number of extensions: 16
Number of successful extensions: 6
Number of sequences better than 1.0e-02: 1
Number of HSP's gapped: 1
Number of HSP's successfully gapped: 1
Length of query: 401
Length of database: 402
Length adjustment: 31
Effective length of query: 370
Effective length of database: 371
Effective search space:   137270
Effective search space used:   137270
Neighboring words threshold: 11
Window for multiple hits: 40
X1: 16 ( 7.4 bits)
X2: 38 (14.6 bits)
X3: 64 (24.7 bits)
S1: 41 (21.8 bits)
S2: 50 (23.9 bits)

This GapMind analysis is from Sep 24 2021. The underlying query database was built on Sep 17 2021.

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About GapMind

Each pathway is defined by a set of rules based on individual steps or genes. Candidates for each step are identified by using ublast (a fast alternative to protein BLAST) against a database of manually-curated proteins (most of which are experimentally characterized) or by using HMMer with enzyme models (usually from TIGRFam). Ublast hits may be split across two different proteins.

A candidate for a step is "high confidence" if either:

where "other" refers to the best ublast hit to a sequence that is not annotated as performing this step (and is not "ignored").

Otherwise, a candidate is "medium confidence" if either:

Other blast hits with at least 50% coverage are "low confidence."

Steps with no high- or medium-confidence candidates may be considered "gaps." For the typical bacterium that can make all 20 amino acids, there are 1-2 gaps in amino acid biosynthesis pathways. For diverse bacteria and archaea that can utilize a carbon source, there is a complete high-confidence catabolic pathway (including a transporter) just 38% of the time, and there is a complete medium-confidence pathway 63% of the time. Gaps may be due to:

GapMind relies on the predicted proteins in the genome and does not search the six-frame translation. In most cases, you can search the six-frame translation by clicking on links to Curated BLAST for each step definition (in the per-step page).

For more information, see:

If you notice any errors or omissions in the step descriptions, or any questionable results, please let us know

by Morgan Price, Arkin group, Lawrence Berkeley National Laboratory