| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| AOI84533.1 | fae | WI67_18535 | WI67_18540 | Alcohol dehydrogenase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.650 |
| AOI84533.1 | gabD | WI67_18535 | WI67_18530 | Alcohol dehydrogenase; Derived by automated computational analysis using gene prediction method: Protein Homology. | NAD-dependent succinate-semialdehyde dehydrogenase; Catalyzes the formation of succinate from succinate semialdehyde; NADP dependent; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.729 |
| AOI84966.1 | fae | WI67_21010 | WI67_18540 | Aconitase subunit 2; Derived by automated computational analysis using gene prediction method: Protein Homology. | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.431 |
| arnA_1 | fae | WI67_09900 | WI67_18540 | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.580 |
| arnA_1 | fmt | WI67_09900 | WI67_16650 | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | methionyl-tRNA formyltransferase; Attaches a formyl group to the free amino group of methionyl- tRNA(fMet). The formyl group appears to play a dual role in the initiator identity of N-formylmethionyl-tRNA by promoting its recognition by IF2 and preventing the misappropriation of this tRNA by the elongation apparatus; Belongs to the Fmt family. | 0.935 |
| arnA_1 | folD | WI67_09900 | WI67_11580 | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Methenyltetrahydrofolate cyclohydrolase; Catalyzes the oxidation of 5,10-methylenetetrahydrofolate to 5,10-methenyltetrahydrofolate and then the hydrolysis of 5,10- methenyltetrahydrofolate to 10-formyltetrahydrofolate. | 0.545 |
| arnA_1 | glyA | WI67_09900 | WI67_03825 | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Serine hydroxymethyltransferase; Catalyzes the reversible interconversion of serine and glycine with tetrahydrofolate (THF) serving as the one-carbon carrier. This reaction serves as the major source of one-carbon groups required for the biosynthesis of purines, thymidylate, methionine, and other important biomolecules. Also exhibits THF-independent aldolase activity toward beta-hydroxyamino acids, producing glycine and aldehydes, via a retro-aldol mechanism. | 0.421 |
| arnA_1 | metG | WI67_09900 | WI67_13170 | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | methionine--tRNA ligase; Is required not only for elongation of protein synthesis but also for the initiation of all mRNA translation through initiator tRNA(fMet) aminoacylation. | 0.936 |
| atpH | fae | WI67_00630 | WI67_18540 | ATP synthase F0F1 subunit delta; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.439 |
| atpH | glyA | WI67_00630 | WI67_03825 | ATP synthase F0F1 subunit delta; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. | Serine hydroxymethyltransferase; Catalyzes the reversible interconversion of serine and glycine with tetrahydrofolate (THF) serving as the one-carbon carrier. This reaction serves as the major source of one-carbon groups required for the biosynthesis of purines, thymidylate, methionine, and other important biomolecules. Also exhibits THF-independent aldolase activity toward beta-hydroxyamino acids, producing glycine and aldehydes, via a retro-aldol mechanism. | 0.618 |
| atpH | nuoF | WI67_00630 | WI67_12190 | ATP synthase F0F1 subunit delta; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. | NADH dehydrogenase; NDH-1 shuttles electrons from NADH, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory chain. Belongs to the complex I 51 kDa subunit family. | 0.857 |
| fae | AOI84533.1 | WI67_18540 | WI67_18535 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Alcohol dehydrogenase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.650 |
| fae | AOI84966.1 | WI67_18540 | WI67_21010 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Aconitase subunit 2; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.431 |
| fae | arnA_1 | WI67_18540 | WI67_09900 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Formyltransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.580 |
| fae | atpH | WI67_18540 | WI67_00630 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | ATP synthase F0F1 subunit delta; F(1)F(0) ATP synthase produces ATP from ADP in the presence of a proton or sodium gradient. F-type ATPases consist of two structural domains, F(1) containing the extramembraneous catalytic core and F(0) containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. | 0.439 |
| fae | fmt | WI67_18540 | WI67_16650 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | methionyl-tRNA formyltransferase; Attaches a formyl group to the free amino group of methionyl- tRNA(fMet). The formyl group appears to play a dual role in the initiator identity of N-formylmethionyl-tRNA by promoting its recognition by IF2 and preventing the misappropriation of this tRNA by the elongation apparatus; Belongs to the Fmt family. | 0.582 |
| fae | folD | WI67_18540 | WI67_11580 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Methenyltetrahydrofolate cyclohydrolase; Catalyzes the oxidation of 5,10-methylenetetrahydrofolate to 5,10-methenyltetrahydrofolate and then the hydrolysis of 5,10- methenyltetrahydrofolate to 10-formyltetrahydrofolate. | 0.704 |
| fae | gabD | WI67_18540 | WI67_18530 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | NAD-dependent succinate-semialdehyde dehydrogenase; Catalyzes the formation of succinate from succinate semialdehyde; NADP dependent; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.592 |
| fae | glyA | WI67_18540 | WI67_03825 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Serine hydroxymethyltransferase; Catalyzes the reversible interconversion of serine and glycine with tetrahydrofolate (THF) serving as the one-carbon carrier. This reaction serves as the major source of one-carbon groups required for the biosynthesis of purines, thymidylate, methionine, and other important biomolecules. Also exhibits THF-independent aldolase activity toward beta-hydroxyamino acids, producing glycine and aldehydes, via a retro-aldol mechanism. | 0.429 |
| fae | metG | WI67_18540 | WI67_13170 | Aldehyde-activating protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | methionine--tRNA ligase; Is required not only for elongation of protein synthesis but also for the initiation of all mRNA translation through initiator tRNA(fMet) aminoacylation. | 0.473 |