ansP1 Resolved · high auto-curated
H37Rv Rv2127 · MTBC0 - ·
489 aa ·
2388616–2390085 H37Rv
(+) ·
RefSeq YP_177863.1
Non-canonical microproteins (overlapping smORFs)
1 MS-proven microprotein from the separate microproteome track overlap this locus (existence proven, function unknown; not counted among the canonical genes).
| Microprotein | Relationship | Length | Essentiality |
|---|---|---|---|
| gORF_57646 | same-strand overlap (alternative frame) | 37 aa | — |
Genomic neighbourhood (genome browser)
Open in full genome browser →This gene (outlined) in its genomic context; arrows are neighbouring genes coloured by verdict. Click any gene to navigate. Pan and zoom in the full browser.
Annotation: from legacy to revised
| Legacy (H37Rv / Mycobrowser) | L-asparagine permease |
|---|---|
| MTBC0 PGAP re-annotation | — |
| Revised (this work) | L-asparagine permease. Pfam: AA_permease (PF00324.28), AA_permease_2 (PF13520.13). |
| Functional category (TubercuList) | cell wall and cell processes |
Auto-curated: this verdict and function were generated by rules from PGAP + Pfam + Foldseek and have not been hand-reviewed.
Annotated on the H37Rv protein: this gene has no 1:1 ancestral MTBC0 anchor (PE/PPE, paralogue, IS element, or otherwise unanchored CDS).
In the literature (TB corpus sweep) 1 publication
1 TB publication mentions this gene. 1 publication(s) discuss this gene (1 in a M. tuberculosis context).
| Publication | Date |
|---|---|
| Mycobacterium tuberculosis nitrogen assimilation and host colonization require aspartate. doi:10.1038/nchembio.1355 | 2013 |
This layer CITES the literature and adds context; it does not change the verdict or the function stated elsewhere in this fiche. This distinguishes a gene that is dark because nobody has looked from one that is dark despite having been studied. Source: PubMed (whole): H37Rv locus tag + GENE NAME + ortholog identifiers (Mb…, MMAR_…, MSMEG_…, ML…, MAB_…), under a mycobacterial context filter; hits verified against the abstract text. Species-context counts distinguish M. tuberculosis literature from literature on other mycobacteria. phase76/phase77, 2026-07-13.
Genomic-neighbour overlap (structural caveat) co-directional · 0 % of gene
| Neighbour | Rv2128 (Rv2128, + strand) |
|---|---|
| Overlap | 1 bp, 0 % of this gene's length |
co-directional overlap: ordinary (e.g. shared stop/start codons in an operon), not the Rv2438A-type artefact P20.1, derived from GFF3 gene coordinates, 2026-08-03.
CRISPRi vulnerability
Vulnerability index 1.26 (95% CI -0.47 to 4.25). A more negative index = more vulnerable to knockdown (better drug-target quality); indicative threshold VI ≤ -6 = highly vulnerable.
Quantitative CRISPRi knockdown, graded (finer than binary Tn-seq essentiality). Source: CRISPRi vulnerability index (Bosch 2021, pebble.rockefeller.edu).
Legacy record & comparison (Mycobrowser)
| Mycobrowser function | Involved in L-asparagine transport. |
|---|
The legacy Mycobrowser record is shown for verification. Mycobrowser is no longer maintained; its EC numbers predate recent nomenclature revisions, so a class change usually reflects re-numbering, not a conflict.
Orthologues (reciprocal best hits across mycobacteria)
| M. bovis |
Mb2151
· 99.4% identity |
|---|---|
| M. leprae |
ML1304c
· 83.0% identity |
| M. marinum |
MMAR_4815
· 74.5% identity |
| M. orygis |
RJtmp_002195
· 99.6% identity |
| M. abscessus |
MAB_2914
· 66.2% identity |
Reciprocal-best-hit orthologues (DIAMOND) against the Mycobrowser reference proteomes. A missing species is informative: e.g. a gene absent from M. leprae was likely lost in its reductive genome evolution. Locus tags link to Mycobrowser.
Curated reference (UniProt)
| UniProt |
P9WQM9
SwissProt · reviewed
· Evidence at protein level
|
|---|---|
| UniProt name | L-asparagine permease 1 |
Functional vocabulary (eggNOG-mapper, orthology transfer)
| COG category |
E Amino acid transport and metabolism
|
|---|---|
| Preferred name | ansP |
| eggNOG description | permease |
| Orthologous group | COG1113 |
| KEGG orthology |
K11738
|
| Gene Ontology (2) |
GO:0005575, GO:0005576
|
Orthology-based transfer (eggNOG 5.0.2, diamond). EC/KO/GO/CAZy are computed annotations, not manual curation; cross-check against the primary literature before treating a specific reaction as established.
Conservation & selection (intra-MTBC, 145 209 strains)
| pN/pS | 0.353 · purifying |
|---|---|
| Polymorphic sites (≥ 0.1% of strains) | 6 synonymous, 6 missense, 0 nonsense, 0 frameshift |
pN/pS from segregating SNPs (singletons removed) normalised by possible sites. Low pN/pS = purifying selection (a strong signal that a "hypothetical" is a real, constrained gene). A high pN/pS is ambiguous: relaxed constraint or positive selection (drug resistance, antigenic variation) inflate it; e.g. rpoB/katG/pncA score high here for resistance, not loss of function. A clonal disruption (one allele over a clade) suggests lineage pseudogenisation; a convergent one (many independent alleles) is typical of resistance loss-of-function.
Outgroup conservation (beyond the MTBC) Bacteria
| M. canettii dN/dS (deep-divergence selection) |
0.118 (low power)
· 4 consensus substitution(s) low power (4 canettii-consensus substitution(s)); present in M. canettii but dN/dS not reliable |
|---|---|
| Genus-wide presence (~53 non-MTBC Mycobacterium) |
present in 52/53 (98%) · mean identity 71.0%
· 4/4 closest MTBAP relatives conserved across the genus (present in 52/53 non-MTBC Mycobacterium genomes, incl. distant relatives) — an ancient core gene predating the genus radiation |
| Phylostratum (deepest detected homolog) |
MTBC-specific → Mycobacterium → Mycobacteriaceae → Corynebacteriales → Actinomycetia → Bacteria detected in 13/13 non-Mycobacterium reference genomes (down to Bacteria) · mean identity 47.6% detected down to outside the phylum (Proteobacteria/Firmicutes controls) — a universally conserved, ancient bacterial gene |
Two orthogonal outgroup signals. M. canettii (the immediate outgroup) gives a deep-divergence dN/dS (a low value confirms a constrained, real gene; shown as confident only at ≥8 substitutions, else flagged low-power). Genus-wide presence/absence (tblastn vs assembled non-MTBC genomes) places the gene on the ancient-core ↔ MTBC-specific axis: a gene absent even from the closest MTBAP relatives is a candidate MTBC-specific innovation (possible host-adaptation factor, to confirm by synteny). The phylostratum extends that axis outside the genus (tblastn vs 13 reference genomes spanning Mycobacteriaceae → Corynebacteriales → Actinomycetia → outside the phylum): it is the deepest clade in which a homolog is still detected, i.e. a proxy for gene age. Read it with the null model in mind: a shallow (young) stratum can also reflect homology-detection failure for short or fast-evolving ORFs, so it is a descriptive axis, not a proof of novelty.
Essentiality (transposon mutagenesis)
| DeJesus 2017 call | NE · non-essential |
|---|---|
| What the call means | non-essential |
| TA sites (Himar1) | 26 in the ORF — 0 in the essential state, 0 growth-defect, 26 non-essential, 0 growth-advantage. Saturation 1.000, mean read count 192.192307692. A region of the protein devoid of TA sites is invisible to this assay: nothing can be inferred about it, in either direction. |
Genome-wide Himar1 transposon essentiality in H37Rv (DeJesus 2017). An essential call (ES/ESD/GD) is strong, independent evidence that a "hypothetical" locus encodes a functional, selectively required gene — orthogonal to intra-species conservation.
Conditional fitness (RB-TnSeq, 95 conditions) carbon source
| Condition | Group | Direction | log2 fitness | t |
|---|---|---|---|---|
| L-Asparagine | carbon source | mutant depleted (gene required) | -1.728 | -11.147 |
| L-Aspartic Acid | carbon source | mutant depleted (gene required) | -1.632 | -11.021 |
| casamino acids | carbon source | mutant depleted (gene required) | -1.291 | -9.631 |
Randomly-barcoded transposon screen across 95 carbon/nitrogen sources, pH, stressors and antibiotics (3 condition-specific phenotype(s) for this gene). A conditional fitness phenotype is a context lead, not a proven function, and never changes the verdict here. Note the blind spot: RB-TnSeq cannot measure essential genes. Source: RB-TnSeq 95-condition barcoded transposon screen, Mtb (PLoS Biol 2026, doi:10.1371/journal.pbio.3003529).
Mutant phenotypes (conditional Tn-seq, MtbTnDB) in-vivo phenotype
| Condition | log2FC | q | Effect |
|---|---|---|---|
| fitness in mouse infection (in vivo) | -1.62 | 0.027 | required |
| altered fitness under nitrosative (NO) stress (stress) | -1.18 | 0.022 | required |
Conditional fitness of transposon-disruption mutants across 2 significant condition(s) (|log2FC|≥1, q≤0.05), from the standardized MtbTnDB compendium. A negative log2FC means the mutant is depleted — the gene contributes to fitness in that condition. An in-vivo defect for a "hypothetical" is strong evidence it matters for infection, even without a known molecular function. Disruption (Tn insertion), not a clean deletion; genetic-interaction screens excluded.
Proteomics (mass spectrometry) detected
| MS detection | detected in 10 of 16 independent MS datasets |
|---|---|
| Integrated abundance | 10.2 ppm · rank 2671/3519 (24.1th percentile) |
Detection by mass spectrometry is direct, experimental evidence that the protein product exists — orthogonal to sequence conservation and to Tn-seq essentiality, and especially decisive for a "hypothetical" locus. Reproducible detection across several independent datasets (PaxDb) makes the existence claim robust; the integrated abundance places the protein in the proteome's dynamic range.
Predicted localisation (DeepTMHMM + lipobox)
| Prediction | predicted membrane protein (12 TM helixes) |
|---|---|
| DeepTMHMM class | TM |
| TM helices (DeepTMHMM) | 12 |
Transmembrane topology and signal peptide from DeepTMHMM (deep-learning reference predictor); lipoproteins from a (myco)bacterial lipobox motif. A sequence-based prediction of subcellular context.
Physico-chemical properties (computed, ProtParam)
| Length | 489 aa |
|---|---|
| Molecular weight | 52.4 kDa |
| Theoretical pI | 9.85 |
| GRAVY | 0.7 (hydrophobic) |
| Aliphatic index | 113.1 |
| Aromaticity | 0.115 |
| Instability index | 29.8 (stable) |
Computed from the ancestral MTBC0 sequence with the ExPASy ProtParam method (Biopython). Descriptive biophysical context: a positive GRAVY flags a hydrophobic (often membrane) protein, a high instability index (>40) predicts a short in-vitro half-life, an extreme pI hints at compartment or binding partner.
Domains (Pfam, hmmscan --cut_ga)
| Pfam | Accession | i-Evalue | Residues | Description |
|---|---|---|---|---|
AA_permease | PF00324.28 | 1.0e-111 | 26–444 | Amino acid permease |
AA_permease_2 | PF13520.13 | 2.4e-35 | 26–449 | Amino acid permease |
Structural search (AlphaFold DB model, Foldseek vs PDB — genome-wide) pLDDT 87.5
| PDB hit | prob | TM-score | E-value | Description |
|---|---|---|---|---|
7o82-assembly1_B |
1.00 | 0.85 | 5.0e-14 sig | 7o82-assembly1_B The L-arginine/agmatine antiporter from E. coli at 1.7 A resolution |
5oqt-assembly1_A |
1.00 | 0.83 | 2.3e-13 sig | 5oqt-assembly1_A Crystal structure of a bacterial cationic amino acid transporter (CAT) homologue |
9h76-assembly1_A |
1.00 | 0.85 | 3.3e-13 sig | 9h76-assembly1_A Bacterial LAT transporter BASC in complex with L-Ala and NB53 |
6f34-assembly1_A |
1.00 | 0.81 | 1.5e-13 sig | 6f34-assembly1_A Crystal structure of a bacterial cationic amino acid transporter (CAT) homologue bound to Arginine. |
3ob6-assembly1_A |
1.00 | 0.83 | 4.7e-13 sig | 3ob6-assembly1_A Structure of AdiC(N101A) in the open-to-out Arg+ bound conformation |
Foldseek search of the AlphaFold DB model (mean pLDDT 87.5, gated at 70) against the PDB — a genome-wide extension of the ESMFold dark-gene search that also covers proteins beyond the single-sequence length limit. Confident structural neighbours (E < 0.01) shown.
Genomic context (neighbours & predicted operon) operon of 2
| Upstream (5' on genome) | PE_PGRS37 (- strand, 643 bp gap) |
|---|---|
| Downstream (3' on genome) | Rv2128 (+ strand, -1 bp gap) |
| Predicted operon |
ansP1 · Rv2128
|
Neighbours from the H37Rv annotation (+ strand). The operon is predicted by co-directional intergenic distance (same strand, gaps ≤50 bp) — a transcription-unit hypothesis, not a mapped TSS. For a "hypothetical", co-transcription with a characterised operon is a concrete functional lead (complements the STRING neighborhood channel below).
Transcriptional regulation (signed TRN: ChIP-seq + TFOE)
| Regulated by (1 TF) |
trcR (activates)
|
|---|
Regulatory edges from the ISB signed transcriptional regulatory network (TF ChIP-seq binding, Minch 2015 + TF-overexpression response, Rustad 2014). An edge is regulatory evidence (binding and/or expression change), not necessarily direct. For a "hypothetical", membership in a known regulon (e.g. DosR dormancy, PhoP virulence) is a strong physiological-context lead.
Functional interaction network (STRING v12, guilt-by-association)
Explore full network →Node colour = verdict, dashed = hypothetical; edge colour = evidence (green experimental, orange genomic-context, grey co-expression), width ∝ score. Click a partner to open its page; "Explore full network" to walk the graph.
Closest characterised functional partner: Rv2128 (transmembrane protein), high confidence from genomic context alone (score 922 excluding text-mining).
| Partner | Product | Score | No text-mining | Channels (≥400) |
|---|---|---|---|---|
Rv2128 |
transmembrane protein | 922 | 922 ctx | neighborhood:882 |
Rv1902c nanT |
sialic acid-transport integral membrane protein NanT | 528 | 208 | textmining:429 |
Rv1538c ansA |
L-aparaginase | 932 | 100 | textmining:929 |
Rv1272c |
drug ABC transporter ATP-binding protein | 521 | 55 | textmining:514 |
Rv0655 mkl |
ABC transporter ATP-binding protein | 447 | 55 | textmining:439 |
Rv2220 glnA1 |
glutamine synthetase | 539 | 53 | textmining:533 |
Rv2221c glnE |
[glutamate--ammonia-ligase | 457 | 51 | textmining:451 |
Rv3565 aspB |
aspartate aminotransferase AspB | 538 | 44 | textmining:537 |
Rv0362 mgtE |
Mg2+ transport transmembrane protein MgtE | 495 | 42 | textmining:495 |
STRING combines evidence channels (neighborhood, fusion, cooccurrence, coexpression, experimental, database, text-mining) into a 0–1000 score. The ctx badge marks edges carried by the genomic-context channels (conserved neighborhood, fusion, phylogenetic co-occurrence), which are independent of orthology and structure and the strongest signal for an unknown gene. The exp badge marks an experimentally-supported partner (measured interaction, experimental/database channel ≥400) as opposed to a purely predicted one — but note that the M. tuberculosis experimental interactome is dominated by a noisy bacterial-two-hybrid screen, so a strong measured link that contradicts the operon/localisation context is likely a false positive. The no text-mining column recomputes the score from data alone, so a link that does not depend on the literature is visible. Association is a function hypothesis, not proof: corroborate with the operon context and the primary literature before assigning a function.
Evidence
- Annotation from H37Rv (no MTBC0 1:1 anchor; H37Rv protein used): L-asparagine permease
- Pfam (hmmscan --cut_ga): AA_permease PF00324.28 (E=1e-111), AA_permease_2 PF13520.13 (E=2e-35)
- (auto-curated by rules from PGAP + Pfam + Foldseek; not hand-reviewed)
Sources
- Ancestral sequence & coordinates: Harrison LB et al. (2024), An imputed ancestral reference genome for the MTBC, doi:10.1101/2023.09.07.556366
- Product annotation: NCBI PGAP on MTBC0; legacy from H37Rv NC_000962.3 (RefSeq YP_177863.1)
- Domains: Pfam-A via hmmscan --cut_ga — AA_permease (PF00324.28), AA_permease_2 (PF13520.13)
- Sequence-level signal: ESM Atlas (EvolutionaryScale × BioHub) — exploratory
- Controlled vocabulary: eggNOG-mapper 2.1.12 (Cantalapiedra et al. 2021,
doi:10.1093/molbev/msab293), eggNOG 5.0 DB
(Huerta-Cepas et al. 2019) — OG
COG1113 - Curated reference: UniProt P9WQM9 (SwissProt, reviewed; Evidence at protein level)
- Intra-MTBC selection: pN/pS and disruption from SPDI variants of 145 209 MTBC strains (this work, local collection vs H37Rv NC_000962.3)
- Genome-wide structure: AlphaFold DB model (Jumper et al. 2021, doi:10.1038/s41586-021-03819-2; Varadi et al. 2024, doi:10.1093/nar/gkad1011) searched vs PDB with Foldseek (mean pLDDT 87.5)
- Interaction network: STRING v12.0 (Szklarczyk et al. 2023,
doi:10.1093/nar/gkac1000), taxon 83332, CC-BY 4.0 —
9 functional partner(s); context anchor
Rv2128 - Essentiality: genome-wide transposon mutagenesis in H37Rv — DeJesus et al. 2017 (mBio, doi:10.1128/mBio.02133-16, CC BY)
- Proteomics: integrated mass-spectrometry abundance from PaxDb 5.0 (Huang et al. 2023, doi:10.1016/j.mcpro.2023.100640), taxon 83332 — weighted average of 16 datasets, incl. Schubert et al. 2013 (doi:10.1016/j.chom.2013.04.008) and Albrethsen et al. 2013 (doi:10.1074/mcp.M112.018846)
- Functional category: TubercuList scheme (Cole et al. 1998, doi:10.1038/31159), via Mycobrowser (Kapopoulou et al. 2011, doi:10.1016/j.tube.2010.09.006)
- Orthologues: reciprocal best hits (DIAMOND, Buchfink et al. 2021, doi:10.1038/s41592-021-01101-x) against Mycobrowser release 5 reference proteomes
- Genomic context / operon: H37Rv annotation; operon predicted by co-directional intergenic distance (Salgado et al. 2000, doi:10.1073/pnas.030539397)
- Transcriptional regulation: ISB signed TRN — TF ChIP-seq (Minch et al. 2015, doi:10.1038/ncomms6829) + TF overexpression (Rustad et al. 2014, doi:10.1186/gb-2014-15-11-502)
- Mutant phenotypes: standardized Tn-seq compendium MtbTnDB (Jinich et al. 2025, doi:10.1111/mmi.15370), aggregating many primary Tn-seq studies across conditions
- Physico-chemical properties: ExPASy ProtParam method via Biopython (Gasteiger et al. 2005), computed from the MTBC0 sequence
- Predicted localisation: DeepTMHMM (Hallgren et al. 2022, doi:10.1101/2022.04.08.487609) for transmembrane topology and signal peptide
- Primary literature: none located yet; annotation rests on the domain/homology sources above.
Ancestral MTBC0 protein sequence
>H37Rv|Rv2127|ansP1 MSAASQRVGAFGEEAGYHKGLKPRQLQMIGIGGAIGTGLFLGAGGRLAKAGPGLFLVYGVCGVFVFLILRALGELVLHRPSSGSFVSYAREFFGEKAAYAVGWMYFLHWAMTSIVDTTAIATYLQRWTIFTVVPQWILALIALTVVLSMNLISVEWFGELEFWAALIKVLALMAFLVVGTVFLAGRYPVDGHSTGLSLWNNHGGLFPTSWLPLLIVTSGVVFAYSAVELVGTAAGETAEPEKIMPRAINSVVARIAIFYVGSVALLALLLPYTAYKAGESPFVTFFSKIGFHGAGDLMNIVVLTAALSSLNAGLYSTGRVMHSIAMSGSAPRFTARMSKSGVPYGGIVLTAVITLFGVALNAFKPGEAFEIVLNMSALGIIAGWATIVLCQLRLHKLANAGIMQRPRFRMPFSPYSGYLTLLFLLVVLVTMASDKPIGTWTVATLIIVIPALTAGWYLVRKRVMAVARERLGHTGPFPAVANPPVRSRD
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