Functional Annotation Report: *accA* (Acetyl-CoA carboxylase carboxyltransferase subunit α) OpenScientist openscientist-autonomous 2 artifacts 2026-07-23T08:43:36.286034

Functional Annotation Report: accA (Acetyl-CoA carboxylase carboxyltransferase subunit α)

Gene: accA (Ordered Locus PP_1607)
UniProt: Q88MG4
Organism: Pseudomonas putida strain KT2440 (ATCC 47054 / DSM 6125 / NCIMB 11950)
Enzyme: Acetyl-coenzyme A carboxylase carboxyltransferase subunit alpha — EC 2.1.3.15
Family: AccA family; Pfam PF03255 (ACCA); InterPro IPR001095 (Acetyl_CoA_COase_a_su), IPR011763 (CoA_CT_C), IPR029045 (ClpP/crotonase-like domain superfamily)


1. Identity Verification (mandatory)

The gene symbol accA matches the UniProt protein description precisely and unambiguously:

Conclusion: This is the correct, well-characterized housekeeping enzyme. No ambiguity. Because accA is highly conserved, most mechanistic detail below derives from the extensively studied E. coli and related bacterial orthologs, which are >95% functionally equivalent to the P. putida enzyme; organism-specific data for KT2440 are noted where available.


2. Summary

accA encodes the α-subunit of carboxyltransferase (CT), one of four proteins that together constitute bacterial acetyl-CoA carboxylase (ACC) — the enzyme that catalyzes the first committed and rate-limiting step of de novo fatty acid biosynthesis. ACC converts acetyl-CoA + bicarbonate + ATP into malonyl-CoA. The reaction occurs in two half-reactions; AccA participates in the second (carboxyl-transfer) half-reaction, in which the carboxyl group is moved from carboxybiotin onto acetyl-CoA to generate malonyl-CoA (PMID 39572150, 23594205). AccA does not act alone: it pairs with the β-subunit AccD to form an α₂β₂ carboxyltransferase heterotetramer (PMID 18768797), which functions within the larger ACC holoenzyme complex together with biotin carboxylase (AccC) and the biotinylated biotin-carboxyl-carrier protein (AccB/BCCP) (PMID 23594205). The enzyme works in the cytoplasm, and its product malonyl-CoA feeds fatty-acid (FAS-II), polyketide, and — in P. putida — medium-chain-length polyhydroxyalkanoate (PHA) biosynthesis.


3. Primary Function: the reaction catalyzed

3.1 Overall ACC reaction

Acetyl-CoA carboxylase catalyzes:

acetyl-CoA + HCO₃⁻ + ATP → malonyl-CoA + ADP + Pᵢ

This is described across all organisms as "the first committed and regulated step in fatty acid synthesis" (PMID 39572150, 16707089, 21639594).

3.2 The two half-reactions and AccA's specific role

Bacterial ACC is a three-enzyme system: biotin carboxylase (AccC), biotin carboxyl carrier protein (AccB/BCCP), and carboxyltransferase (AccA + AccD) (PMID 39572150). Catalysis proceeds by a two-site ping-pong mechanism across two half-reactions:

  1. Biotin carboxylation (AccC): ATP-dependent carboxylation of the vitamin biotin, which is covalently attached to a lysine of BCCP, using bicarbonate as the CO₂ source → carboxybiotin-BCCP (PMID 39572150, 23594205).
  2. Carboxyl transfer (AccA + AccD = CT): The carboxyltransferase transfers the carboxyl group from carboxybiotin to acetyl-CoA to form malonyl-CoA (PMID 23594205, 39572150, 16707089).

AccA is a structural and catalytic component of the CT that carries out step 2 — the carboxyl-transfer reaction. This step is EC 2.1.3.15, defining AccA/AccD's assigned enzymatic activity. That the carboxyl-transfer step is the AccA/AccD function is confirmed pharmacologically: the antibiotic andrimid "blocks the carboxyl-transfer reaction of bacterial acetyl-CoA carboxylase" and acts specifically on the CT (PMID 18768797).

3.3 Substrate specificity


4. Structural role and quaternary organization


4b. Bioinformatic conservation evidence (this study)

To confirm that the well-studied E. coli mechanism transfers to the P. putida enzyme, I retrieved both sequences from UniProt and performed a global (Needleman–Wunsch) alignment:

This sequence/structure inference justifies transferring the detailed E. coli catalytic and structural knowledge to PP_1607, complementing the experimental evidence from orthologs (consistent with the demonstrated accA orthology across Pseudomonas, PMID 7693652).

5. Localization

The AccA product functions in the bacterial cytoplasm, the site of soluble fatty-acid (FAS-II) synthesis. ACC is a soluble multiprotein complex with no membrane-spanning segments; its product malonyl-CoA (as malonyl-ACP) then feeds the cytoplasmic FAS-II machinery, whose acyl products are ultimately used for membrane phospholipid synthesis. (In eukaryotes/plants the heteromeric ACC is plastid-localized and membrane-associated via α-CT — PMID 39489480 — but this is not relevant to the soluble bacterial P. putida enzyme.)


6. Pathway context and biological process


7. Regulation (elucidating the precise role)

AccA/CT activity is controlled to match cellular demand for acyl chains:

  1. Feedback inhibition by acyl-ACP: ACC is allosterically inhibited by acylated-ACP (e.g., palmitoyl-ACP), and this inhibition displays pronounced hysteresis (time-dependent onset), providing end-product feedback control of fatty-acid synthesis (PMID 29100983).
  2. Moonlighting mRNA-binding autoregulation: The E. coli CT (AccA/AccD) binds its own accA/accD mRNA and acetyl-CoA, attenuating its own translation and enzymatic activity through a negative-feedback loop; this lets the enzyme "sense the metabolic state of the cell" (PMID 21639594). This dual sensing (acetyl-CoA substrate level + its own transcript) is a documented second, RNA-based function of AccA beyond catalysis.

8. Evidence summary

Claim Evidence type Source
CT (AccA+AccD) transfers carboxyl from biotin to acetyl-CoA → malonyl-CoA (EC 2.1.3.15) Biochemical review + kinetics PMID 39572150, 23594205, 16707089
AccA forms an active α₂β₂ CT with a β-subunit In vitro reconstitution + crystallography of A₂D₂ PMID 18768797
ACC is a communicating three-component complex (ping-pong) Steady-state kinetics + pull-downs PMID 23594205
Feedback inhibition by acyl-ACP (hysteresis) Enzyme kinetics PMID 29100983
CT autoregulates via mRNA/acetyl-CoA binding Biochemistry + mathematical modeling PMID 21639594
accA/accD conserved in Pseudomonas Cloning/hybridization PMID 7693652
ACC complex = malonyl-CoA source / flux node in P. putida KT2440 Metabolic engineering PMID 40107409
Malonyl-CoA feeds FAS-II and P. putida PHA/polyketide synthesis Genetics/pathway analysis PMID 22038854, 16085828
PP_1607 is a 68.6%-identity ortholog of E. coli AccA with fully conserved CT active-site motifs Sequence/evolution inference (this study) UniProt Q88MG4 vs P0ABD5; PMID 7693652

Most mechanistic evidence is from E. coli and closely related γ-proteobacteria; given the high conservation of the AccA family and the demonstrated conservation of accA/accD in Pseudomonas, these mechanisms apply to P. putida PP_1607. Direct KT2440-specific evidence is currently limited to functional-genomics and metabolic-engineering studies of the assembled ACC complex (PMID 40107409, 32826213).


9. Supported vs. refuted hypotheses

Supported
- H1: AccA is the α-subunit of carboxyltransferase catalyzing acetyl-CoA → malonyl-CoA carboxyl transfer (EC 2.1.3.15). ✅
- H2: AccA acts only as part of an α₂β₂ CT (with AccD) inside the ACC holoenzyme. ✅
- H3: The enzyme is cytoplasmic and initiates FAS-II. ✅
- H4: AccA activity is feedback-regulated and additionally autoregulates via mRNA binding. ✅
- H5: In P. putida, AccA's malonyl-CoA product feeds fatty-acid, polyketide and PHA metabolism and is a flux-control node. ✅

Refuted / not applicable
- The bacterial AccA is not a membrane-integral protein and does not carry out its function extracellularly (contrast with plant plastidic α-CT membrane association). ✅ refuted for this organism.
- AccA is not a standalone monofunctional enzyme active in isolation. ✅ refuted.


10. Limitations and future directions


11. Conclusion (consolidated across iterations)

accA / PP_1607 encodes the α-subunit of the carboxyltransferase of acetyl-CoA carboxylase (EC 2.1.3.15). Its precise, primary function is catalytic: as part of an obligate α₂β₂ CT (AccA·AccD) operating within the cytoplasmic ACC holoenzyme (with AccB/BCCP and AccC), it transfers the carboxyl group from carboxybiotin to acetyl-CoA to make malonyl-CoA — the first committed, rate-limiting, and regulated step of de novo fatty-acid synthesis (PMID 39572150, 23594205, 16707089). This function is essential because membrane lipid biogenesis is required for growth, making ACC a validated antibacterial target (PMID 16707089). The activity is tuned by acyl-ACP feedback inhibition and a moonlighting mRNA-binding autoregulatory loop (PMID 29100983, 21639594). In P. putida KT2440 specifically, the AccABCD complex is the demonstrated malonyl-CoA source and a flux-control node feeding fatty-acid, polyketide, and PHA biosynthesis (PMID 40107409, 16085828). Direct sequence analysis confirms PP_1607 is a 68.6%-identity ortholog of E. coli AccA with fully conserved active-site motifs, so this mechanistic picture applies with high confidence to the P. putida enzyme.

Report generated over Iterations 1–3. Citations refer to PubMed IDs (PMID) of the supporting literature; the conservation analysis (Section 4b) was computed in this study from UniProt sequences Q88MG4 and P0ABD5.

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