node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
KPQ35136.1 | atpC | HLUCCA11_12005 | HLUCCA11_18540 | Protein of unknown function (DUF4332). | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | 0.716 |
KPQ35136.1 | atpD | HLUCCA11_12005 | HLUCCA11_18535 | Protein of unknown function (DUF4332). | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | 0.716 |
KPQ35136.1 | ndhA | HLUCCA11_12005 | HLUCCA11_11555 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit NdhA; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. | 0.746 |
KPQ35136.1 | ndhB | HLUCCA11_12005 | HLUCCA11_02240 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit 2; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.764 |
KPQ35136.1 | ndhC | HLUCCA11_12005 | HLUCCA11_16150 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit 3; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.731 |
KPQ35136.1 | ndhE | HLUCCA11_12005 | HLUCCA11_11570 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit NdhE; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.724 |
KPQ35136.1 | ndhG | HLUCCA11_12005 | HLUCCA11_11565 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit NdhG; NDH-1 shuttles electrons from NADH, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory chain. Couples the redox reaction to proton translocation (for every two electrons transferred, four hydrogen ions are translocated across the cytoplasmic membrane), and thus conserves the redox energy in a proton gradient. Belongs to the complex I subunit 6 family. | 0.725 |
KPQ35136.1 | ndhH | HLUCCA11_12005 | HLUCCA11_18710 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit H; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.761 |
KPQ35136.1 | ndhJ | HLUCCA11_12005 | HLUCCA11_16140 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit J; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.753 |
KPQ35136.1 | ndhK | HLUCCA11_12005 | HLUCCA11_16145 | Protein of unknown function (DUF4332). | NAD(P)H-quinone oxidoreductase subunit K; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration; Belongs to the complex I 20 kDa subunit family. | 0.750 |
atpC | KPQ35136.1 | HLUCCA11_18540 | HLUCCA11_12005 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | Protein of unknown function (DUF4332). | 0.716 |
atpC | atpD | HLUCCA11_18540 | HLUCCA11_18535 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | 0.999 |
atpC | ndhA | HLUCCA11_18540 | HLUCCA11_11555 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | NAD(P)H-quinone oxidoreductase subunit NdhA; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. | 0.542 |
atpC | ndhH | HLUCCA11_18540 | HLUCCA11_18710 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | NAD(P)H-quinone oxidoreductase subunit H; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.869 |
atpC | ndhJ | HLUCCA11_18540 | HLUCCA11_16140 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | NAD(P)H-quinone oxidoreductase subunit J; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.895 |
atpC | ndhK | HLUCCA11_18540 | HLUCCA11_16145 | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | NAD(P)H-quinone oxidoreductase subunit K; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration; Belongs to the complex I 20 kDa subunit family. | 0.885 |
atpD | KPQ35136.1 | HLUCCA11_18535 | HLUCCA11_12005 | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | Protein of unknown function (DUF4332). | 0.716 |
atpD | atpC | HLUCCA11_18535 | HLUCCA11_18540 | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | F-type H+-transporting ATPase epsilon subunit AtpC; Produces ATP from ADP in the presence of a proton gradient across the membrane. | 0.999 |
atpD | ndhA | HLUCCA11_18535 | HLUCCA11_11555 | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | NAD(P)H-quinone oxidoreductase subunit NdhA; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. | 0.541 |
atpD | ndhC | HLUCCA11_18535 | HLUCCA11_16150 | F-type H+-transporting ATPase beta subunit AtpD; Produces ATP from ADP in the presence of a proton gradient across the membrane. The catalytic sites are hosted primarily by the beta subunits. | NAD(P)H-quinone oxidoreductase subunit 3; NDH-1 shuttles electrons from an unknown electron donor, via FMN and iron-sulfur (Fe-S) centers, to quinones in the respiratory and/or the photosynthetic chain. The immediate electron acceptor for the enzyme in this species is believed to be plastoquinone. Couples the redox reaction to proton translocation, and thus conserves the redox energy in a proton gradient. Cyanobacterial NDH-1 also plays a role in inorganic carbon-concentration. | 0.428 |