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. 2024 Jun 25;121(26):e2405524121.
doi: 10.1073/pnas.2405524121. Epub 2024 Jun 17.

Multisubstrate specificity shaped the complex evolution of the aminotransferase family across the tree of life

Affiliations

Multisubstrate specificity shaped the complex evolution of the aminotransferase family across the tree of life

Kaan Koper et al. Proc Natl Acad Sci U S A. .

Abstract

Aminotransferases (ATs) are an ancient enzyme family that play central roles in core nitrogen metabolism, essential to all organisms. However, many of the AT enzyme functions remain poorly defined, limiting our fundamental understanding of the nitrogen metabolic networks that exist in different organisms. Here, we traced the deep evolutionary history of the AT family by analyzing AT enzymes from 90 species spanning the tree of life (ToL). We found that each organism has maintained a relatively small and constant number of ATs. Mapping the distribution of ATs across the ToL uncovered that many essential AT reactions are carried out by taxon-specific AT enzymes due to wide-spread nonorthologous gene displacements. This complex evolutionary history explains the difficulty of homology-based AT functional prediction. Biochemical characterization of diverse aromatic ATs further revealed their broad substrate specificity, unlike other core metabolic enzymes that evolved to catalyze specific reactions today. Interestingly, however, we found that these AT enzymes that diverged over billion years share common signatures of multisubstrate specificity by employing different nonconserved active site residues. These findings illustrate that AT family enzymes had leveraged their inherent substrate promiscuity to maintain a small yet distinct set of multifunctional AT enzymes in different taxa. This evolutionary history of versatile ATs likely contributed to the establishment of robust and diverse nitrogen metabolic networks that exist throughout the ToL. The study provides a critical foundation to systematically determine diverse AT functions and underlying nitrogen metabolic networks across the ToL.

Keywords: core metabolism; enzyme family evolution; multifunctional enzymes; nitrogen metabolism; substrate promiscuity.

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Conflict of interest statement

Competing interests statement:The authors declare no competing interest.

Figures

Fig. 1.
Fig. 1.
AT enzymes evolved with a limited copy number expansion across the ToL. (A) ATs are PLP-dependent enzymes, which catalyze reversible transamination reactions among at least four substrates. (B) Evolution of transamination since the origin of life to today. Pre-LUCA life likely had nonenzymatic, RNA, or RNP-based transamination. At the interface of RNP and protein worlds, protein-based transaminases appeared in the form of proto-ATs classes. Proto-AT classes were inherited by LUCA and its descendants. (C) Phylogenetic analysis of AT candidate genes from seven Pfam domains known to contain ATs. Classes I, II, and IV, alliinase and sugar ATs are part of PLP-fold type I, while class III is a part of the independently evolved PLP-fold type IV. (D) Average numbers, Pfam domain composition, and subcellular localization of AT and related genes from animals, plants, fungi, protists, eubacteria, and archaea. (E) The relationship between the number of AT and related genes vs. total number of genes per species. Data corresponding to key model species are labeled, and the lines show the overall trend per taxon. Blue, eubacteria; gray, archaea; brown, nonphotosynthetic protists; army green, photosynthetic protists; orange, fungi; green, plants; red, animals.
Fig. 2.
Fig. 2.
Poor conservation of AT groups across the ToL due to wide-spread replacement of ATs from distantly related nonorthologous AT groups. (A) Percent conservations (with red to yellow background colors) of 62 AT and related groups for different taxonomic groups and ranks. (B) AT and related groups were clustered based on the similarity of gene copy numbers within each species. Species were arranged based on the taxonomic relationship at the Top: Gray, brown, orange, red, green, and blue depict archaea, protists, fungi, animals, plants, and eubacteria, respectively. Species marked with a star (*) contain secondary plastids. Brown filled boxes indicate that certain enzymes (Left) are present in the corresponding species (Top). Magenta open boxes highlight 11 clusters (CTs) which are labeled at the corresponding branches of the clustering tree.
Fig. 3.
Fig. 3.
Conserved multisubstrate specificities across distantly related class I ATs. (A) Percent conversion of keto acids to amino acids by Aro ATs and other ATs. Substrate specificities of these ATs, including Aro AT activity (marked by dark red letters and line), were screened in an assay mixture employing a single amino donor (5 mM Gln or Glu) and 15 acceptors (1 mM each). The X-axis shows the amino acid products formed by each enzyme. Amino acid standard curves were used to calculate the concentration of the formed amino acids. Molar ratio of amino acid product to the starting keto acid was used to calculate percent conversion, except for Tyr that was calculated based on the decreases in 4-HPP peak area. Each data point is an average of three separate assays (n = 3), except serine which is from a single assay. Error bars show SD among the assays. hAla, homo-Ala; AAD, α-aminoadipate; AGN, arogenate. (B) Kinetic characterization of A. thaliana (At) KAT and E. coli (Ec) ybdL. Enzymatic activity of Ec ybdL and At KAT was tested with 10 mM Gln as amino donor and varying concentrations of three prominent keto acid substrates: 4-methylthio-2-oxobutanoic acid (4MTOB), imidazol-5-yl pyruvate (I5P), and phenylpyruvate (PPY). Each data point is an average of three separate assays (n = 3). Error bars show SEM. For 4MTOB and I5P, a modified Michaelis–Menten equation that considers substrate inhibition was fitted using nonlinear regression (SI Appendix, Fig. S10). For PPY, the standard Michaelis–Menten equation was fitted. Percent amino acid sequence identities between key enzymes are given on the Right, and a complete list is given in SI Appendix, Table S4.
Fig. 4.
Fig. 4.
Distinct but functionally conserved residues underlie the conserved multisubstrate specificity among distantly related ATs. (A) Active site residues are extracted from representative enzymes from each AT group and are used to determine the consensus at those residue positions using the original multiple sequence alignment, which is shown in logo style (95). Red and orange arrows show previously known well-conserved residues for PLP-fold type I ATs, and black arrows show additional residues identified in this study. Red and blue boxes show motifs that are well conserved for an entire or a subset of each AT enzyme class, respectively. (B) Active site residues that interact with the PLP-Phe aldimine. The portions of the aldimine that correspond to Phe and PLP are shown in red and blue sticks, respectively. Interacting residues are shown in black sticks and labeled with orange letters. The types of interactions are shown with colored dashed lines. Residues having a conserved function in ligand interactions are marked with red, purple, and orange stars, as described in the main text.

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