| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| AQQ66249.1 | AQQ67594.1 | Mag101_00225 | Mag101_08030 | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.553 |
| AQQ66249.1 | AQQ68358.1 | Mag101_00225 | Mag101_12465 | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.622 |
| AQQ66249.1 | AQQ68516.1 | Mag101_00225 | Mag101_13385 | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | Ubiquinol-cytochrome C reductase; Component of the ubiquinol-cytochrome c reductase complex (complex III or cytochrome b-c1 complex), which is a respiratory chain that generates an electrochemical potential coupled to ATP synthesis. | 0.999 |
| AQQ66249.1 | AQQ69545.1 | Mag101_00225 | Mag101_12055 | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | Cytochrome-c oxidase, cbb3-type subunit III; C-type cytochrome. Part of the cbb3-type cytochrome c oxidase complex. | 0.996 |
| AQQ66249.1 | msrP | Mag101_00225 | Mag101_15050 | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | Mononuclear molybdenum enzyme YedY; Part of the MsrPQ system that repairs oxidized periplasmic proteins containing methionine sulfoxide residues (Met-O), using respiratory chain electrons. Thus protects these proteins from oxidative-stress damage caused by reactive species of oxygen and chlorine generated by the host defense mechanisms. MsrPQ is essential for the maintenance of envelope integrity under bleach stress, rescuing a wide series of structurally unrelated periplasmic proteins from methionine oxidation. The catalytic subunit MsrP is non-stereospecific, being able to reduce bot [...] | 0.516 |
| AQQ67438.1 | AQQ67594.1 | Mag101_07150 | Mag101_08030 | DUF1289 domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.432 |
| AQQ67438.1 | AQQ68866.1 | Mag101_07150 | Mag101_15420 | DUF1289 domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Tat pathway signal protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.430 |
| AQQ67563.1 | AQQ67594.1 | Mag101_07840 | Mag101_08030 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.484 |
| AQQ67563.1 | AQQ68866.1 | Mag101_07840 | Mag101_15420 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Tat pathway signal protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.739 |
| AQQ67563.1 | AQQ68867.1 | Mag101_07840 | Mag101_15425 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Glucose dehydrogenase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.683 |
| AQQ67594.1 | AQQ66249.1 | Mag101_08030 | Mag101_00225 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Cytochrome c oxidase subunit II; Subunits I and II form the functional core of the enzyme complex. Electrons originating in cytochrome c are transferred via heme a and Cu(A) to the binuclear center formed by heme a3 and Cu(B). | 0.553 |
| AQQ67594.1 | AQQ67438.1 | Mag101_08030 | Mag101_07150 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | DUF1289 domain-containing protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.432 |
| AQQ67594.1 | AQQ67563.1 | Mag101_08030 | Mag101_07840 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.484 |
| AQQ67594.1 | AQQ67595.1 | Mag101_08030 | Mag101_08035 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.470 |
| AQQ67594.1 | AQQ68358.1 | Mag101_08030 | Mag101_12465 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.599 |
| AQQ67594.1 | AQQ68516.1 | Mag101_08030 | Mag101_13385 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Ubiquinol-cytochrome C reductase; Component of the ubiquinol-cytochrome c reductase complex (complex III or cytochrome b-c1 complex), which is a respiratory chain that generates an electrochemical potential coupled to ATP synthesis. | 0.414 |
| AQQ67594.1 | AQQ68866.1 | Mag101_08030 | Mag101_15420 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Tat pathway signal protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.599 |
| AQQ67594.1 | AQQ68867.1 | Mag101_08030 | Mag101_15425 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Glucose dehydrogenase; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.498 |
| AQQ67594.1 | AQQ69545.1 | Mag101_08030 | Mag101_12055 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Cytochrome-c oxidase, cbb3-type subunit III; C-type cytochrome. Part of the cbb3-type cytochrome c oxidase complex. | 0.577 |
| AQQ67594.1 | msrP | Mag101_08030 | Mag101_15050 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Mononuclear molybdenum enzyme YedY; Part of the MsrPQ system that repairs oxidized periplasmic proteins containing methionine sulfoxide residues (Met-O), using respiratory chain electrons. Thus protects these proteins from oxidative-stress damage caused by reactive species of oxygen and chlorine generated by the host defense mechanisms. MsrPQ is essential for the maintenance of envelope integrity under bleach stress, rescuing a wide series of structurally unrelated periplasmic proteins from methionine oxidation. The catalytic subunit MsrP is non-stereospecific, being able to reduce bot [...] | 0.495 |