echA6 Resolved · high auto-curated

H37Rv Rv0905 · MTBC0 mtbc0_000959 · 243 aa · 1011421–1012152 MTBC0 (+) · RefSeq NP_215420.1

Genomic neighbourhood (genome browser)

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Annotation: from legacy to revised

Legacy (H37Rv / Mycobrowser)enoyl-CoA hydratase EchA6
MTBC0 PGAP re-annotationenoyl-CoA hydratase
Revised (this work)Enoyl-CoA hydratase. Pfam: ECH_1 (PF00378.26), ECH_2 (PF16113.11).
Functional category (TubercuList)lipid metabolism

Auto-curated: this verdict and function were generated by rules from PGAP + Pfam + Foldseek and have not been hand-reviewed.

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).

PublicationDate
THPP target assignment reveals EchA6 as an essential fatty acid shuttle in mycobacteria. doi:10.1038/nmicrobiol.2015.6 2016

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.

CRISPRi vulnerability

Vulnerability index 1.32 (95% CI -0.76 to 4.53). 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 functionCould possibly oxidize fatty acids using specific components [catalytic activity: (3S)-3-hydroxyacyl-CoA = trans-2(or 3)-enoyl-CoA + H(2)O].
Mycobrowser EC 4.2.1.17 · agrees with the atlas

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 Mycobrowser is no longer maintained; its EC numbers predate recent nomenclature revisions, so a class change usually reflects re-numbering, not a conflict.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 Mb0929 · 100.0% identity
M. leprae ML2118c · 85.8% identity
M. marinum MMAR_4625 · 90.1% identity
M. smegmatis MSMEG_5639 · 74.1% identity
M. orygis RJtmp_000954 · 100.0% identity
M. abscessus MAB_0959 · 67.2% 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 P9WNP1 SwissProt · reviewed · Evidence at protein level
UniProt nameProbable enoyl-CoA hydratase EchA6
EC (curated) EC 4.2.1.17
Curated functionCould possibly oxidize fatty acids using specific components.

Functional vocabulary (eggNOG-mapper, orthology transfer)

COG category I Lipid transport and metabolism
Preferred nameechA6
eggNOG descriptionBelongs to the enoyl-CoA hydratase isomerase family
Orthologous groupCOG1024
EC number EC 4.2.1.17
KEGG orthology K01692
KEGG pathways map00071, map00280, map00281, map00310, map00360, map00362, map00380, map00410, map00627, map00640, map00650, map00903, map00930, map01100, map01110, map01120, map01130, map01212
KEGG modules M00032, M00087
Gene Ontology (43) GO:0003674, GO:0003824, GO:0004300, GO:0005575, GO:0005618, GO:0005623, GO:0005886, GO:0006082, GO:0006629, GO:0006631, GO:0006635, GO:0008150 +31 more

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 n/a
Polymorphic sites (≥ 0.1% of strains) 0 synonymous, 1 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) 0.0 (low power) · 2 consensus substitution(s)
low power (2 canettii-consensus substitution(s)); present in M. canettii but dN/dS not reliable
Genus-wide presence (~53 non-MTBC Mycobacterium) present in 53/53 (100%) · mean identity 87.6% · 4/4 closest MTBAP relatives
conserved across the genus (present in 53/53 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 9/13 non-Mycobacterium reference genomes (down to Bacteria) · mean identity 44.4%
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 callNE · non-essential
What the call meansnon-essential
TA sites (Himar1) 10 in the ORF — 0 in the essential state, 0 growth-defect, 10 non-essential, 0 growth-advantage. Saturation 1.000, mean read count 52.1. 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.

Mutant phenotypes (conditional Tn-seq, MtbTnDB) in-vivo phenotype

Conditionlog2FCqEffect
fitness in mouse infection (in vivo) -1.300.013 required

Conditional fitness of transposon-disruption mutants across 1 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 detectiondetected in 15 of 16 independent MS datasets
Integrated abundance656.0 ppm · rank 330/3519 (90.7th 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.

Physico-chemical properties (computed, ProtParam)

Length243 aa
Molecular weight26.0 kDa
Theoretical pI5.97
GRAVY-0.031 (hydrophilic)
Aliphatic index95.4
Aromaticity0.053
Instability index38.8 (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)

PfamAccessioni-EvalueResiduesDescription
ECH_1PF00378.26 7.6e-447–242 Enoyl-CoA hydratase/isomerase
ECH_2PF16113.11 9.1e-2112–223 Enoyl-CoA hydratase/isomerase

Experimental structures (Protein Data Bank) 8 solved

PDBMethodResolutionCoverage
5duf X-ray diffraction 1.5 Å 100%
5du4 X-ray diffraction 1.702 Å 100%
5dtp X-ray diffraction 1.91 Å 100%
5du8 X-ray diffraction 2.23 Å 100%
3he2 X-ray diffraction 2.3 Å 100%
5dtw X-ray diffraction 2.439 Å 100%
5du6 X-ray diffraction 2.61 Å 100%
5duc X-ray diffraction 2.704 Å 100%

Experimentally solved structures mapped from the UniProt accession via PDBe/SIFTS (8 total; up to 8 shown, ranked by sequence coverage then resolution). An experimental structure is direct proof of the folded product and the strongest structural evidence — superseding the predicted ESMFold/AlphaFold models below for any covered region.

Structural search (AlphaFold DB model, Foldseek vs PDB — genome-wide) pLDDT 95.1

PDB hitprobTM-scoreE-valueDescription
5duf-assembly1_A 1.00 0.98 2.6e-44 sig 5duf-assembly1_A Crystal structure of M. tuberculosis EchA6 bound to ligand GSK729A
5du8-assembly1_B 1.00 0.97 2.3e-43 sig 5du8-assembly1_B Crystal structure of M. tuberculosis EchA6 bound to GSK572A
3he2-assembly1_B 1.00 0.97 2.7e-43 sig 3he2-assembly1_B Crystal structure of enoyl-CoA hydratase from Mycobacterium tuberculosis
5dtw-assembly1_B 1.00 0.98 8.2e-43 sig 5dtw-assembly1_B Crystal structure of M. tuberculosis EchA6 bound to C20-CoA
3he2-assembly1_C 1.00 0.98 9.2e-43 sig 3he2-assembly1_C Crystal structure of enoyl-CoA hydratase from Mycobacterium tuberculosis

Foldseek search of the AlphaFold DB model (mean pLDDT 95.1, 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)accD3 (- strand, 26 bp gap)
Downstream (3' on genome)Rv0906 (+ strand, 5 bp gap)
Predicted operon echA6 · Rv0906

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) higA (represses)

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: accD3 (acetyl-CoAcarboxylase carboxyl transferase subunit beta), high confidence from genomic context alone (score 805 excluding text-mining).

PartnerProductScoreNo text-miningChannels (≥400)
Rv0906 hyp hypothetical protein 914 914 ctx neighborhood:881
Rv0468 fadB2 exp 3-hydroxybutyryl-CoA dehydrogenase 902 896 database:650
Rv1715 fadB3 exp 3-hydroxybutyryl-CoA dehydrogenase FadB 876 869 database:650
Rv3140 fadE23 exp acyl-CoA dehydrogenase FadE23 851 846 database:750
Rv0154c fadE2 exp acyl-CoA dehydrogenase FadE2 850 845 database:750
Rv0400c fadE7 exp acyl-CoA dehydrogenase FadE7 850 845 database:750
Rv2500c fadE19 exp acyl-CoA dehydrogenase FadE19 849 844 database:750
Rv0131c fadE1 exp acyl-CoA dehydrogenase FadE1 849 844 database:750
Rv0231 fadE4 exp acyl-CoA dehydrogenase FadE4 849 844 database:750
Rv0975c fadE13 exp acyl-CoA dehydrogenase FadE13 849 844 database:750
Rv0904c accD3 acetyl-CoAcarboxylase carboxyl transferase subunit beta 824 805 ctx neighborhood:790
Rv2524c fas fatty acid synthase 816 789 coexpression:646
Rv0860 fadB exp fatty oxidation protein FadB 795 785 database:650
Rv3563 fadE32 exp acyl-CoA dehydrogenase FadE32 785 778 database:643
Rv1935c echA13 enoyl-CoA hydratase EchA13 777 770 ctx cooccurence:762

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

  • Legacy H37Rv annotation: enoyl-CoA hydratase EchA6
  • MTBC0 PGAP product: enoyl-CoA hydratase
  • Pfam (hmmscan --cut_ga): ECH_1 PF00378.26 (E=8e-44), ECH_2 PF16113.11 (E=9e-21)
  • (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 NP_215420.1)
  • Domains: Pfam-A via hmmscan --cut_ga — ECH_1 (PF00378.26), ECH_2 (PF16113.11)
  • 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 COG1024
  • Curated reference: UniProt P9WNP1 (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 95.1)
  • Interaction network: STRING v12.0 (Szklarczyk et al. 2023, doi:10.1093/nar/gkac1000), taxon 83332, CC-BY 4.0 — 151 functional partner(s); context anchor accD3
  • 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
  • Experimental structures: PDBe/SIFTS UniProt→PDB mapping (Dana et al. 2019, doi:10.1093/nar/gky1114)
  • 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
  • Primary literature: none located yet; annotation rests on the domain/homology sources above.

Ancestral MTBC0 protein sequence

>mtbc0_000959|Rv0905|echA6
MIGITQAEAVLTIELQRPERRNALNSQLVEELTQAIRKAGDGSARAIVLTGQGTAFCAGADLSGDAFAADYPDRLIELHKAMDASPMPVVGAINGPAIGAGLQLAMQCDLRVVAPDAFFQFPTSKYGLALDNWSIRRLSSLVGHGRARAMLLSAEKLTAEIALHTGMANRIGTLADAQAWAAEIARLAPLAIQHAKRVLNDDGAIEEAWPAHKELFDKAWGSQDVIEAQVARMEKRPPKFQGA