Protein Synpcc7942_0031 in Synechococcus elongatus PCC 7942
Annotation: FitnessBrowser__SynE:Synpcc7942_0031
Length: 424 amino acids
Source: SynE in FitnessBrowser
Candidate for 8 steps in Amino acid biosynthesis
Pathway | Step | Score | Similar to | Id. | Cov. | Bits | Other hit | Other id. | Other bits |
L-arginine biosynthesis | argD | lo | Acetylornithine aminotransferase; ACOAT; EC 2.6.1.11 (uncharacterized) | 34% | 94% | 201.8 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-proline biosynthesis | argD | lo | Acetylornithine aminotransferase; ACOAT; EC 2.6.1.11 (uncharacterized) | 34% | 94% | 201.8 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-arginine biosynthesis | lysJ | lo | Putative [LysW]-aminoadipate semialdehyde/glutamate semialdehyde transaminase; EC 2.6.1.118; EC 2.6.1.124 (uncharacterized) | 32% | 96% | 172.2 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-lysine biosynthesis | lysJ | lo | Putative [LysW]-aminoadipate semialdehyde/glutamate semialdehyde transaminase; EC 2.6.1.118; EC 2.6.1.124 (uncharacterized) | 32% | 96% | 172.2 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-proline biosynthesis | lysJ | lo | Putative [LysW]-aminoadipate semialdehyde/glutamate semialdehyde transaminase; EC 2.6.1.118; EC 2.6.1.124 (uncharacterized) | 32% | 96% | 172.2 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-lysine biosynthesis | lysN | lo | 2-aminoadipate transaminase; 2-aminoadipate aminotransferase; L-2AA aminotransferase; EC 2.6.1.39 (characterized) | 32% | 96% | 168.7 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-arginine biosynthesis | argD'B | lo | Succinylornithine transaminase (EC 2.6.1.81) (characterized) | 33% | 91% | 162.2 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
L-lysine biosynthesis | dapC | lo | acetylornithine/N-succinyldiaminopimelate aminotransferase [EC:2.6.1.11 2.6.1.17] (characterized) | 32% | 95% | 159.8 | Adenosylmethionine-8-amino-7-oxononanoate aminotransferase; 7,8-diamino-pelargonic acid aminotransferase; DAPA AT; DAPA aminotransferase; 7,8-diaminononanoate synthase; DANS; Diaminopelargonic acid synthase; EC 2.6.1.62 | 100% | 855.1 |
Sequence Analysis Tools
View Synpcc7942_0031 at FitnessBrowser
Find papers: PaperBLAST
Find functional residues: SitesBLAST
Search for conserved domains
Find the best match in UniProt
Compare to protein structures
Predict transmenbrane helices: Phobius
Predict protein localization: PSORTb
Find homologs in fast.genomics
Fitness BLAST: loading...
Sequence
MPSHPHLWFPFTSVKDAPDPLKVVSGKGARLTLADGRELIDCISSWWVNLHGHAHLRIVE
AIAQQAATLEHVIFAGFSHEPAERLAMELCKILPEKLTRVFFSDNGSTAVEVALKMALQY
WHNLDQPRSRILAFDGAYHGDTFGAMSVGERSLFNAPFEKLLFSVEFLPYPETWWGDETV
EAKEAAAIAAVEQALAAGDVAAVIIEPLVQGAGGMRMARPQFLQQLAARVQAAGSLLIAD
EVMTGFGRTGAWFACQRAGIQPDLICLSKGLTGGFLPLSITVATEVIYDTFCSGNPDHTF
YHGHSYTANPLGCAAAIASLELLLDSEAIVQGLEDAHLPGLELLAQHPKVTRPRLTGGIA
ACDLVSDRGGYLDPIGLRVRQAAIARGLLLRPLGNVLYLLPPYCLTPTELQDIYAAIADL
LDEI
This GapMind analysis is from Jul 25 2024. The underlying query database was built on Jul 25 2024.
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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:
- ublast finds a hit to a characterized protein at above 40% identity and 80% coverage, and bits >= other bits+10.
- (Hits to curated proteins without experimental data as to their function are never considered high confidence.)
- HMMer finds a hit with 80% coverage of the model, and either other identity < 40 or other coverage < 0.75.
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:
- ublast finds a hit at above 40% identity and 70% coverage (ignoring otherBits).
- ublast finds a hit at above 30% identity and 80% coverage, and bits >= other bits.
- HMMer finds a hit (regardless of coverage or other bits).
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:
- our ignorance of proteins' functions,
- omissions in the gene models,
- frame-shift errors in the genome sequence, or
- the organism lacks the pathway.
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