| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| ANP65093.1 | ANP67465.1 | BAU10_08835 | BAU10_21215 | Ribonucleoside-diphosphate reductase subunit alpha; Provides the precursors necessary for DNA synthesis. Catalyzes the biosynthesis of deoxyribonucleotides from the corresponding ribonucleotides. | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.877 |
| ANP66657.1 | ANP67465.1 | BAU10_16865 | BAU10_21215 | Sulfurtransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.593 |
| ANP66657.1 | glpE_1 | BAU10_16865 | BAU10_14060 | Sulfurtransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | Rhodanese-like domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.490 |
| ANP67465.1 | ANP65093.1 | BAU10_21215 | BAU10_08835 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Ribonucleoside-diphosphate reductase subunit alpha; Provides the precursors necessary for DNA synthesis. Catalyzes the biosynthesis of deoxyribonucleotides from the corresponding ribonucleotides. | 0.877 |
| ANP67465.1 | ANP66657.1 | BAU10_21215 | BAU10_16865 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Sulfurtransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.593 |
| ANP67465.1 | atpF | BAU10_21215 | BAU10_15100 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | F0F1 ATP synthase subunit B; 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. | 0.810 |
| ANP67465.1 | glpE_1 | BAU10_21215 | BAU10_14060 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Rhodanese-like domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.593 |
| ANP67465.1 | grxD | BAU10_21215 | BAU10_09730 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Monothiol glutaredoxin, Grx4 family; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the glutaredoxin family. Monothiol subfamily. | 0.580 |
| ANP67465.1 | msrB-2 | BAU10_21215 | BAU10_16515 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Methionine sulfoxide reductase; Has an important function as a repair enzyme for proteins that have been inactivated by oxidation. Catalyzes the reversible oxidation-reduction of methionine sulfoxide in proteins to methionine. | 0.651 |
| ANP67465.1 | nfuA | BAU10_21215 | BAU10_15855 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Fe-S biogenesis protein NfuA; Involved in iron-sulfur cluster biogenesis. Binds a 4Fe-4S cluster, can transfer this cluster to apoproteins, and thereby intervenes in the maturation of Fe/S proteins. Could also act as a scaffold/chaperone for damaged Fe/S proteins. | 0.574 |
| ANP67465.1 | ppa | BAU10_21215 | BAU10_00570 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Inorganic pyrophosphatase; Catalyzes the hydrolysis of inorganic pyrophosphate (PPi) forming two phosphate ions. | 0.597 |
| ANP67465.1 | ribN | BAU10_21215 | BAU10_21210 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.674 |
| ANP67465.1 | secB | BAU10_21215 | BAU10_14065 | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | Protein-export chaperone SecB; One of the proteins required for the normal export of preproteins out of the cell cytoplasm. It is a molecular chaperone that binds to a subset of precursor proteins, maintaining them in a translocation-competent state. It also specifically binds to its receptor SecA. | 0.886 |
| atpF | ANP67465.1 | BAU10_15100 | BAU10_21215 | F0F1 ATP synthase subunit B; 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. | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.810 |
| atpF | ppa | BAU10_15100 | BAU10_00570 | F0F1 ATP synthase subunit B; 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. | Inorganic pyrophosphatase; Catalyzes the hydrolysis of inorganic pyrophosphate (PPi) forming two phosphate ions. | 0.967 |
| glpE_1 | ANP66657.1 | BAU10_14060 | BAU10_16865 | Rhodanese-like domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Sulfurtransferase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.490 |
| glpE_1 | ANP67465.1 | BAU10_14060 | BAU10_21215 | Rhodanese-like domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.593 |
| glpE_1 | secB | BAU10_14060 | BAU10_14065 | Rhodanese-like domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Protein-export chaperone SecB; One of the proteins required for the normal export of preproteins out of the cell cytoplasm. It is a molecular chaperone that binds to a subset of precursor proteins, maintaining them in a translocation-competent state. It also specifically binds to its receptor SecA. | 0.541 |
| grxD | ANP67465.1 | BAU10_09730 | BAU10_21215 | Monothiol glutaredoxin, Grx4 family; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the glutaredoxin family. Monothiol subfamily. | Glutaredoxin; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.580 |
| grxD | nfuA | BAU10_09730 | BAU10_15855 | Monothiol glutaredoxin, Grx4 family; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the glutaredoxin family. Monothiol subfamily. | Fe-S biogenesis protein NfuA; Involved in iron-sulfur cluster biogenesis. Binds a 4Fe-4S cluster, can transfer this cluster to apoproteins, and thereby intervenes in the maturation of Fe/S proteins. Could also act as a scaffold/chaperone for damaged Fe/S proteins. | 0.828 |