| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| APG09722.1 | APG09723.1 | BKD09_RS15390 | BKD09_RS15395 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.964 |
| APG09722.1 | dnaK | BKD09_RS15390 | BKD09_RS03295 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Molecular chaperone DnaK; Acts as a chaperone; Belongs to the heat shock protein 70 family. | 0.987 |
| APG09722.1 | ftsH_2 | BKD09_RS15390 | BKD09_RS10205 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Cell division protein FtsH; Acts as a processive, ATP-dependent zinc metallopeptidase for both cytoplasmic and membrane proteins. Plays a role in the quality control of integral membrane proteins; Belongs to the AAA ATPase family. In the central section; belongs to the AAA ATPase family. | 0.461 |
| APG09722.1 | grpE | BKD09_RS15390 | BKD09_RS03280 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Nucleotide exchange factor GrpE; 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 rounds [...] | 0.878 |
| APG09722.1 | hslU | BKD09_RS15390 | BKD09_RS03140 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | HslU--HslV peptidase ATPase subunit; ATPase subunit of a proteasome-like degradation complex; this subunit has chaperone activity. The binding of ATP and its subsequent hydrolysis by HslU are essential for unfolding of protein substrates subsequently hydrolyzed by HslV. HslU recognizes the N-terminal part of its protein substrates and unfolds these before they are guided to HslV for hydrolysis. | 0.840 |
| APG09722.1 | hslV | BKD09_RS15390 | BKD09_RS03155 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | HslU--HslV peptidase proteolytic subunit; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.817 |
| APG09722.1 | htpG | BKD09_RS15390 | BKD09_RS07470 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Molecular chaperone HtpG; Molecular chaperone. Has ATPase activity. | 0.955 |
| APG09722.1 | lon_2 | BKD09_RS15390 | BKD09_RS18445 | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | Endopeptidase La; ATP-dependent serine protease that mediates the selective degradation of mutant and abnormal proteins as well as certain short- lived regulatory proteins. Required for cellular homeostasis and for survival from DNA damage and developmental changes induced by stress. Degrades polypeptides processively to yield small peptide fragments that are 5 to 10 amino acids long. Binds to DNA in a double-stranded, site-specific manner. | 0.719 |
| APG09723.1 | APG09722.1 | BKD09_RS15395 | BKD09_RS15390 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Molecular chaperone DnaJ; Derived by automated computational analysis using gene prediction method: Protein Homology; Start codon location was manually corrected by using GenomeMatcher. | 0.964 |
| APG09723.1 | APG10313.1 | BKD09_RS15395 | BKD09_RS18450 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Heat-shock protein Hsp20; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the small heat shock protein (HSP20) family. | 0.424 |
| APG09723.1 | dnaJ | BKD09_RS15395 | BKD09_RS03300 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Molecular chaperone DnaJ; Participates actively in the response to hyperosmotic and heat shock by preventing the aggregation of stress-denatured proteins and by disaggregating proteins, also in an autonomous, DnaK-independent fashion. 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 rounds of ATP-dependent interactions between DnaJ, [...] | 0.957 |
| APG09723.1 | dnaK | BKD09_RS15395 | BKD09_RS03295 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Molecular chaperone DnaK; Acts as a chaperone; Belongs to the heat shock protein 70 family. | 0.984 |
| APG09723.1 | ftsH_2 | BKD09_RS15395 | BKD09_RS10205 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Cell division protein FtsH; Acts as a processive, ATP-dependent zinc metallopeptidase for both cytoplasmic and membrane proteins. Plays a role in the quality control of integral membrane proteins; Belongs to the AAA ATPase family. In the central section; belongs to the AAA ATPase family. | 0.605 |
| APG09723.1 | hslU | BKD09_RS15395 | BKD09_RS03140 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | HslU--HslV peptidase ATPase subunit; ATPase subunit of a proteasome-like degradation complex; this subunit has chaperone activity. The binding of ATP and its subsequent hydrolysis by HslU are essential for unfolding of protein substrates subsequently hydrolyzed by HslV. HslU recognizes the N-terminal part of its protein substrates and unfolds these before they are guided to HslV for hydrolysis. | 0.828 |
| APG09723.1 | hslV | BKD09_RS15395 | BKD09_RS03155 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | HslU--HslV peptidase proteolytic subunit; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.824 |
| APG09723.1 | htpG | BKD09_RS15395 | BKD09_RS07470 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Molecular chaperone HtpG; Molecular chaperone. Has ATPase activity. | 0.840 |
| APG09723.1 | lon_2 | BKD09_RS15395 | BKD09_RS18445 | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | Endopeptidase La; ATP-dependent serine protease that mediates the selective degradation of mutant and abnormal proteins as well as certain short- lived regulatory proteins. Required for cellular homeostasis and for survival from DNA damage and developmental changes induced by stress. Degrades polypeptides processively to yield small peptide fragments that are 5 to 10 amino acids long. Binds to DNA in a double-stranded, site-specific manner. | 0.732 |
| APG10313.1 | APG09723.1 | BKD09_RS18450 | BKD09_RS15395 | Heat-shock protein Hsp20; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the small heat shock protein (HSP20) family. | Nucleotide exchange factor GrpE; Derived by automated computational analysis using gene prediction method: GeneMarkS+. | 0.424 |
| APG10313.1 | dnaK | BKD09_RS18450 | BKD09_RS03295 | Heat-shock protein Hsp20; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the small heat shock protein (HSP20) family. | Molecular chaperone DnaK; Acts as a chaperone; Belongs to the heat shock protein 70 family. | 0.478 |
| APG10313.1 | grpE | BKD09_RS18450 | BKD09_RS03280 | Heat-shock protein Hsp20; Derived by automated computational analysis using gene prediction method: Protein Homology; Belongs to the small heat shock protein (HSP20) family. | Nucleotide exchange factor GrpE; 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 rounds [...] | 0.424 |