| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| SACE_0892 | clpP | SACE_0892 | SACE_1360 | 60 kDa membrane insertion protein. | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 0.654 |
| SACE_0892 | clpP-2 | SACE_0892 | SACE_1361 | 60 kDa membrane insertion protein. | ATP-dependent Clp protease proteolytic subunit 2; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 0.657 |
| SACE_0892 | grpE | SACE_0892 | SACE_7209 | 60 kDa membrane insertion protein. | Heat shock protein (HSP-70 cofactor); Participates actively in the response to hyperosmotic and heat shock by preventing the aggregation of stress-denatured proteins, in association with DnaK and GrpE. It is the nucleotide exchange factor for DnaK and may function as a thermosensor. Unfolded proteins bind initially to DnaJ; upon interaction with the DnaJ-bound protein, DnaK hydrolyzes its bound ATP, resulting in the formation of a stable complex. GrpE releases ADP from DnaK; ATP binding to DnaK triggers the release of the substrate protein, thus completing the reaction cycle. Several r [...] | 0.461 |
| SACE_0892 | htrA | SACE_0892 | SACE_1034 | 60 kDa membrane insertion protein. | Possinble serine protease. | 0.632 |
| SACE_2630 | SACE_2875 | SACE_2630 | SACE_2875 | Modular polyketide synthase. | Modular polyketide synthase-; Modular PKS with 1 AHBA loading domain similar to GdmAI, and two extension modules, first module has complete set of the reductive domains, and the other one didn't have any reductive domains. Found by M.Oliynyk and sequenced by M.Samborskyy (M0ERY) in 2004/02. If it is active, than it can be responsible for the production of the aromatic poliketide antibiotic with low molecular weight. Thanks to the B. Ostash, A. Luzhetsky and Y. Rebets for help with annotation of this cluster in 2004. | 0.989 |
| SACE_2630 | htrA | SACE_2630 | SACE_1034 | Modular polyketide synthase. | Possinble serine protease. | 0.542 |
| SACE_2630 | pks1-3 | SACE_2630 | SACE_2342 | Modular polyketide synthase. | Modular polyketide synthase. | 0.986 |
| SACE_2875 | SACE_2630 | SACE_2875 | SACE_2630 | Modular polyketide synthase-; Modular PKS with 1 AHBA loading domain similar to GdmAI, and two extension modules, first module has complete set of the reductive domains, and the other one didn't have any reductive domains. Found by M.Oliynyk and sequenced by M.Samborskyy (M0ERY) in 2004/02. If it is active, than it can be responsible for the production of the aromatic poliketide antibiotic with low molecular weight. Thanks to the B. Ostash, A. Luzhetsky and Y. Rebets for help with annotation of this cluster in 2004. | Modular polyketide synthase. | 0.989 |
| SACE_2875 | glpK | SACE_2875 | SACE_6518 | Modular polyketide synthase-; Modular PKS with 1 AHBA loading domain similar to GdmAI, and two extension modules, first module has complete set of the reductive domains, and the other one didn't have any reductive domains. Found by M.Oliynyk and sequenced by M.Samborskyy (M0ERY) in 2004/02. If it is active, than it can be responsible for the production of the aromatic poliketide antibiotic with low molecular weight. Thanks to the B. Ostash, A. Luzhetsky and Y. Rebets for help with annotation of this cluster in 2004. | Glycerol kinase; Key enzyme in the regulation of glycerol uptake and metabolism. Catalyzes the phosphorylation of glycerol to yield sn- glycerol 3-phosphate; Belongs to the FGGY kinase family. | 0.408 |
| SACE_2875 | htrA | SACE_2875 | SACE_1034 | Modular polyketide synthase-; Modular PKS with 1 AHBA loading domain similar to GdmAI, and two extension modules, first module has complete set of the reductive domains, and the other one didn't have any reductive domains. Found by M.Oliynyk and sequenced by M.Samborskyy (M0ERY) in 2004/02. If it is active, than it can be responsible for the production of the aromatic poliketide antibiotic with low molecular weight. Thanks to the B. Ostash, A. Luzhetsky and Y. Rebets for help with annotation of this cluster in 2004. | Possinble serine protease. | 0.538 |
| SACE_2875 | pks1-3 | SACE_2875 | SACE_2342 | Modular polyketide synthase-; Modular PKS with 1 AHBA loading domain similar to GdmAI, and two extension modules, first module has complete set of the reductive domains, and the other one didn't have any reductive domains. Found by M.Oliynyk and sequenced by M.Samborskyy (M0ERY) in 2004/02. If it is active, than it can be responsible for the production of the aromatic poliketide antibiotic with low molecular weight. Thanks to the B. Ostash, A. Luzhetsky and Y. Rebets for help with annotation of this cluster in 2004. | Modular polyketide synthase. | 0.999 |
| arc | glpK | SACE_2246 | SACE_6518 | Vesicle-fusing ATPase; ATPase which is responsible for recognizing, binding, unfolding and translocation of pupylated proteins into the bacterial 20S proteasome core particle. May be essential for opening the gate of the 20S proteasome via an interaction with its C-terminus, thereby allowing substrate entry and access to the site of proteolysis. Thus, the C-termini of the proteasomal ATPase may function like a 'key in a lock' to induce gate opening and therefore regulate proteolysis. | Glycerol kinase; Key enzyme in the regulation of glycerol uptake and metabolism. Catalyzes the phosphorylation of glycerol to yield sn- glycerol 3-phosphate; Belongs to the FGGY kinase family. | 0.966 |
| arc | htrA | SACE_2246 | SACE_1034 | Vesicle-fusing ATPase; ATPase which is responsible for recognizing, binding, unfolding and translocation of pupylated proteins into the bacterial 20S proteasome core particle. May be essential for opening the gate of the 20S proteasome via an interaction with its C-terminus, thereby allowing substrate entry and access to the site of proteolysis. Thus, the C-termini of the proteasomal ATPase may function like a 'key in a lock' to induce gate opening and therefore regulate proteolysis. | Possinble serine protease. | 0.780 |
| clpP | SACE_0892 | SACE_1360 | SACE_0892 | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 60 kDa membrane insertion protein. | 0.654 |
| clpP | clpP-2 | SACE_1360 | SACE_1361 | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | ATP-dependent Clp protease proteolytic subunit 2; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 0.997 |
| clpP | grpE | SACE_1360 | SACE_7209 | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | Heat shock protein (HSP-70 cofactor); Participates actively in the response to hyperosmotic and heat shock by preventing the aggregation of stress-denatured proteins, in association with DnaK and GrpE. It is the nucleotide exchange factor for DnaK and may function as a thermosensor. Unfolded proteins bind initially to DnaJ; upon interaction with the DnaJ-bound protein, DnaK hydrolyzes its bound ATP, resulting in the formation of a stable complex. GrpE releases ADP from DnaK; ATP binding to DnaK triggers the release of the substrate protein, thus completing the reaction cycle. Several r [...] | 0.787 |
| clpP | htrA | SACE_1360 | SACE_1034 | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | Possinble serine protease. | 0.545 |
| clpP-2 | SACE_0892 | SACE_1361 | SACE_0892 | ATP-dependent Clp protease proteolytic subunit 2; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 60 kDa membrane insertion protein. | 0.657 |
| clpP-2 | clpP | SACE_1361 | SACE_1360 | ATP-dependent Clp protease proteolytic subunit 2; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | ATP-dependent Clp protease proteolytic subunit 1; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | 0.997 |
| clpP-2 | grpE | SACE_1361 | SACE_7209 | ATP-dependent Clp protease proteolytic subunit 2; Cleaves peptides in various proteins in a process that requires ATP hydrolysis. Has a chymotrypsin-like activity. Plays a major role in the degradation of misfolded proteins. Belongs to the peptidase S14 family. | Heat shock protein (HSP-70 cofactor); Participates actively in the response to hyperosmotic and heat shock by preventing the aggregation of stress-denatured proteins, in association with DnaK and GrpE. It is the nucleotide exchange factor for DnaK and may function as a thermosensor. Unfolded proteins bind initially to DnaJ; upon interaction with the DnaJ-bound protein, DnaK hydrolyzes its bound ATP, resulting in the formation of a stable complex. GrpE releases ADP from DnaK; ATP binding to DnaK triggers the release of the substrate protein, thus completing the reaction cycle. Several r [...] | 0.752 |