| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| FP66_01655 | FP66_13310 | FP66_01655 | FP66_13310 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.896 |
| FP66_01655 | FP66_14970 | FP66_01655 | FP66_14970 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Heat shock protein 90; Molecular chaperone; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.990 |
| FP66_01655 | dnaK | FP66_01655 | FP66_13315 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone DnaK; Heat shock protein 70; assists in folding of nascent polypeptide chains; refolding of misfolded proteins; utilizes ATPase activity to help fold; co-chaperones are DnaJ and GrpE; multiple copies in some bacteria; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.995 |
| FP66_01655 | fusA | FP66_01655 | FP66_06480 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Elongation factor G; EF-G; promotes GTP-dependent translocation of the ribosome during translation; many organisms have multiple copies of this gene; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.813 |
| FP66_01655 | groEL | FP66_01655 | FP66_04735 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GroEL; 60 kDa chaperone family; promotes refolding of misfolded polypeptides especially under stressful conditions; forms two stacked rings of heptamers to form a barrel-shaped 14mer; ends can be capped by GroES; misfolded proteins enter the barrel where they are refolded when GroES binds; many bacteria have multiple copies of the groEL gene which are active under different environmental conditions; the B.japonicum protein in this cluster is expressed constitutively; in Rhodobacter, Corynebacterium and Rhizobium this protein is essential for growth; Derived by autom [...] | 0.941 |
| FP66_01655 | groES | FP66_01655 | FP66_04730 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GroES; 10 kDa chaperonin; Cpn10; GroES; forms homoheptameric ring; binds to one or both ends of the GroEL double barrel in the presence of adenine nucleotides capping it; folding of unfolded substrates initiates in a GroEL-substrate bound and capped by GroES; release of the folded substrate is dependent on ATP binding and hydrolysis in the trans ring; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.715 |
| FP66_01655 | hflB | FP66_01655 | FP66_13385 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | Inner membrane metalloprotease; may be involved in degradation of aberrant cytoplasmic and membrane proteins; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.411 |
| FP66_01655 | hslU | FP66_01655 | FP66_07145 | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | ATP-dependent protease ATP-binding subunit HslU; Heat shock protein involved in degradation of misfolded proteins; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.720 |
| FP66_07465 | FP66_13310 | FP66_07465 | FP66_13310 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.566 |
| FP66_07465 | FP66_13320 | FP66_07465 | FP66_13320 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone DnaJ; Chaperone Hsp40; co-chaperone with DnaK; 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; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.889 |
| FP66_07465 | dnaK | FP66_07465 | FP66_13315 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone DnaK; Heat shock protein 70; assists in folding of nascent polypeptide chains; refolding of misfolded proteins; utilizes ATPase activity to help fold; co-chaperones are DnaJ and GrpE; multiple copies in some bacteria; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.890 |
| FP66_07465 | groEL | FP66_07465 | FP66_04735 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GroEL; 60 kDa chaperone family; promotes refolding of misfolded polypeptides especially under stressful conditions; forms two stacked rings of heptamers to form a barrel-shaped 14mer; ends can be capped by GroES; misfolded proteins enter the barrel where they are refolded when GroES binds; many bacteria have multiple copies of the groEL gene which are active under different environmental conditions; the B.japonicum protein in this cluster is expressed constitutively; in Rhodobacter, Corynebacterium and Rhizobium this protein is essential for growth; Derived by autom [...] | 0.894 |
| FP66_07465 | groES | FP66_07465 | FP66_04730 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone GroES; 10 kDa chaperonin; Cpn10; GroES; forms homoheptameric ring; binds to one or both ends of the GroEL double barrel in the presence of adenine nucleotides capping it; folding of unfolded substrates initiates in a GroEL-substrate bound and capped by GroES; release of the folded substrate is dependent on ATP binding and hydrolysis in the trans ring; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.501 |
| FP66_07465 | hflB | FP66_07465 | FP66_13385 | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | Inner membrane metalloprotease; may be involved in degradation of aberrant cytoplasmic and membrane proteins; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.604 |
| FP66_13310 | FP66_01655 | FP66_13310 | FP66_01655 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | Hypothetical protein; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.896 |
| FP66_13310 | FP66_07465 | FP66_13310 | FP66_07465 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | RNA polymerase factor sigma-32; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.566 |
| FP66_13310 | FP66_13320 | FP66_13310 | FP66_13320 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone DnaJ; Chaperone Hsp40; co-chaperone with DnaK; 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; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.988 |
| FP66_13310 | FP66_14970 | FP66_13310 | FP66_14970 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | Heat shock protein 90; Molecular chaperone; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.876 |
| FP66_13310 | dnaK | FP66_13310 | FP66_13315 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | Molecular chaperone DnaK; Heat shock protein 70; assists in folding of nascent polypeptide chains; refolding of misfolded proteins; utilizes ATPase activity to help fold; co-chaperones are DnaJ and GrpE; multiple copies in some bacteria; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.999 |
| FP66_13310 | fusA | FP66_13310 | FP66_06480 | Molecular chaperone GrpE; Derived by automated computational analysis using gene prediction method: Protein Homology. | Elongation factor G; EF-G; promotes GTP-dependent translocation of the ribosome during translation; many organisms have multiple copies of this gene; Derived by automated computational analysis using gene prediction method: Protein Homology. | 0.449 |