GapMind for catabolism of small carbon sources

 

Aligments for a candidate for malK in Pseudomonas simiae WCS417

Align Maltose-transporting ATPase (EC 3.6.3.19) (characterized)
to candidate GFF4321 PS417_22130 sugar ABC transporter ATPase

Query= reanno::psRCH2:GFF857
         (371 letters)



>FitnessBrowser__WCS417:GFF4321
          Length = 386

 Score =  293 bits (750), Expect = 5e-84
 Identities = 166/364 (45%), Positives = 232/364 (63%), Gaps = 12/364 (3%)

Query: 1   MASVTLRDICKSYD-GTPIT-RHIDLDIEDGEFVVFVGPSGCGKSTLLRLIAGLEDITSG 58
           MA++ LR++ K+Y  G P T ++I+L I++GEF++ VGPSGCGKSTL+  IAGLE IT G
Sbjct: 1   MATLELRNVNKTYGAGLPDTLKNIELSIKEGEFLILVGPSGCGKSTLMNCIAGLETITGG 60

Query: 59  DLLIDNQRVNDLPPKDRSVGMVFQSYALYPHMTVAENMAFGLKLASVDKREIKRRVEAVA 118
            ++I +Q V+ + PKDR + MVFQSYALYP M+V EN+ FGLK+  + + +I   V  VA
Sbjct: 61  AIMIGDQDVSGMSPKDRDIAMVFQSYALYPTMSVRENIEFGLKIRKMPQADIDAEVARVA 120

Query: 119 EILQLDKLLERKPKDLSGGQRQRVAIGRTMVREPKVFLFDEPLSNLDAFLRVQMRIEIAR 178
           ++LQ++ LL RKP  LSGGQ+QRVA+GR + R PK++LFDEPLSNLDA LRV+MR E+  
Sbjct: 121 KLLQIEHLLNRKPGQLSGGQQQRVAMGRALARRPKIYLFDEPLSNLDAKLRVEMRTEMKL 180

Query: 179 LHQRIRSTMIYVTHDQVEAMTLADKIVVLNAGEIAQVGQPLHLYHYPKNRFVAGFLGSPQ 238
           +HQR+++T +YVTHDQ+EAMTL DK+ V+  G I Q G P  +Y+ P N+FVA F+GSP 
Sbjct: 181 MHQRLKTTTVYVTHDQIEAMTLGDKVAVMKDGIIQQFGTPKEIYNNPANQFVASFIGSPP 240

Query: 239 MNFVEVRAISASPETVTIELPSGY---PLTLPVDGSAVSPGDPLTLGIRPEHFVM---PD 292
           MNFV +R        V + L SG     L L    + +   D + LG+RPE  ++     
Sbjct: 241 MNFVPLRLQRKDGRLVAL-LDSGQARCELALNTTEAGLEDRD-VILGLRPEQIMLAAGEG 298

Query: 293 EADFTFHGQITVAERLGQYNLLYLTLERLQDVITLCVDGNLRVTEGETFAAGLKADKCHL 352
           ++  +   ++ V E  G   L+++ L   +    L  D   +V  GET        K  L
Sbjct: 299 DSASSIRAEVQVTEPTGPDTLVFVQLNDTKVCCRLAPDVAPQV--GETLTLQFDPSKVLL 356

Query: 353 FREN 356
           F  N
Sbjct: 357 FDAN 360


Lambda     K      H
   0.322    0.139    0.405 

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: 398
Number of extensions: 10
Number of successful extensions: 1
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: 371
Length of database: 386
Length adjustment: 30
Effective length of query: 341
Effective length of database: 356
Effective search space:   121396
Effective search space used:   121396
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 (21.9 bits)
S2: 50 (23.9 bits)

This GapMind analysis is from Sep 17 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 the paper from 2019 on GapMind for amino acid biosynthesis, the paper from 2022 on GapMind for carbon sources, or view the source code.

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