| node1 | node2 | node1 accession | node2 accession | node1 annotation | node2 annotation | score |
| LSL_0207 | hslU | LSL_0207 | LSL_0946 | COG2017 [G] Galactose mutarotase and related enzymes. | ATP-dependent hsl protease ATP-binding 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. | 0.493 |
| LSL_0207 | hslV | LSL_0207 | LSL_0947 | COG2017 [G] Galactose mutarotase and related enzymes. | ATP-dependent protease hslV; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.493 |
| LSL_0207 | topA | LSL_0207 | LSL_0720 | COG2017 [G] Galactose mutarotase and related enzymes. | DNA topoisomerase I; Releases the supercoiling and torsional tension of DNA, which is introduced during the DNA replication and transcription, by transiently cleaving and rejoining one strand of the DNA duplex. Introduces a single-strand break via transesterification at a target site in duplex DNA. The scissile phosphodiester is attacked by the catalytic tyrosine of the enzyme, resulting in the formation of a DNA- (5'-phosphotyrosyl)-enzyme intermediate and the expulsion of a 3'-OH DNA strand. The free DNA strand then undergoes passage around the unbroken strand, thus removing DNA supe [...] | 0.489 |
| LSL_0207 | xerC-7 | LSL_0207 | LSL_0948 | COG2017 [G] Galactose mutarotase and related enzymes. | Integrase/recombinase, XerC/CodV family; Site-specific tyrosine recombinase, which acts by catalyzing the cutting and rejoining of the recombining DNA molecules. The XerC- XerD complex is essential to convert dimers of the bacterial chromosome into monomers to permit their segregation at cell division. It also contributes to the segregational stability of plasmids. | 0.507 |
| LSL_0719 | hslV | LSL_0719 | LSL_0947 | DNA processing protein; COG0758 [LU] Predicted Rossmann fold nucleotide-binding protein involved in DNA uptake. | ATP-dependent protease hslV; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.442 |
| LSL_0719 | pyrB | LSL_0719 | LSL_0190 | DNA processing protein; COG0758 [LU] Predicted Rossmann fold nucleotide-binding protein involved in DNA uptake. | COG0540 [F] Aspartate carbamoyltransferase, catalytic chain; Belongs to the aspartate/ornithine carbamoyltransferase superfamily. ATCase family. | 0.656 |
| LSL_0719 | topA | LSL_0719 | LSL_0720 | DNA processing protein; COG0758 [LU] Predicted Rossmann fold nucleotide-binding protein involved in DNA uptake. | DNA topoisomerase I; Releases the supercoiling and torsional tension of DNA, which is introduced during the DNA replication and transcription, by transiently cleaving and rejoining one strand of the DNA duplex. Introduces a single-strand break via transesterification at a target site in duplex DNA. The scissile phosphodiester is attacked by the catalytic tyrosine of the enzyme, resulting in the formation of a DNA- (5'-phosphotyrosyl)-enzyme intermediate and the expulsion of a 3'-OH DNA strand. The free DNA strand then undergoes passage around the unbroken strand, thus removing DNA supe [...] | 0.945 |
| LSL_0719 | trmFO | LSL_0719 | LSL_0721 | DNA processing protein; COG0758 [LU] Predicted Rossmann fold nucleotide-binding protein involved in DNA uptake. | Glucose inhibited division protein A; Catalyzes the folate-dependent formation of 5-methyl-uridine at position 54 (M-5-U54) in all tRNAs; Belongs to the MnmG family. TrmFO subfamily. | 0.595 |
| LSL_0719 | xerC-7 | LSL_0719 | LSL_0948 | DNA processing protein; COG0758 [LU] Predicted Rossmann fold nucleotide-binding protein involved in DNA uptake. | Integrase/recombinase, XerC/CodV family; Site-specific tyrosine recombinase, which acts by catalyzing the cutting and rejoining of the recombining DNA molecules. The XerC- XerD complex is essential to convert dimers of the bacterial chromosome into monomers to permit their segregation at cell division. It also contributes to the segregational stability of plasmids. | 0.512 |
| LSL_0945 | hslU | LSL_0945 | LSL_0946 | Hypothetical protein. | ATP-dependent hsl protease ATP-binding 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. | 0.519 |
| LSL_0945 | hslV | LSL_0945 | LSL_0947 | Hypothetical protein. | ATP-dependent protease hslV; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.491 |
| LSL_0945 | xerC-7 | LSL_0945 | LSL_0948 | Hypothetical protein. | Integrase/recombinase, XerC/CodV family; Site-specific tyrosine recombinase, which acts by catalyzing the cutting and rejoining of the recombining DNA molecules. The XerC- XerD complex is essential to convert dimers of the bacterial chromosome into monomers to permit their segregation at cell division. It also contributes to the segregational stability of plasmids. | 0.447 |
| cfa | hslV | LSL_0949 | LSL_0947 | COG2230 [M] Cyclopropane fatty acid synthase and related methyltransferases. | ATP-dependent protease hslV; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.410 |
| cfa | xerC-7 | LSL_0949 | LSL_0948 | COG2230 [M] Cyclopropane fatty acid synthase and related methyltransferases. | Integrase/recombinase, XerC/CodV family; Site-specific tyrosine recombinase, which acts by catalyzing the cutting and rejoining of the recombining DNA molecules. The XerC- XerD complex is essential to convert dimers of the bacterial chromosome into monomers to permit their segregation at cell division. It also contributes to the segregational stability of plasmids. | 0.449 |
| hslU | LSL_0207 | LSL_0946 | LSL_0207 | ATP-dependent hsl protease ATP-binding 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. | COG2017 [G] Galactose mutarotase and related enzymes. | 0.493 |
| hslU | LSL_0945 | LSL_0946 | LSL_0945 | ATP-dependent hsl protease ATP-binding 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. | Hypothetical protein. | 0.519 |
| hslU | hslV | LSL_0946 | LSL_0947 | ATP-dependent hsl protease ATP-binding 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. | ATP-dependent protease hslV; Protease subunit of a proteasome-like degradation complex believed to be a general protein degrading machinery. | 0.999 |
| hslU | topA | LSL_0946 | LSL_0720 | ATP-dependent hsl protease ATP-binding 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. | DNA topoisomerase I; Releases the supercoiling and torsional tension of DNA, which is introduced during the DNA replication and transcription, by transiently cleaving and rejoining one strand of the DNA duplex. Introduces a single-strand break via transesterification at a target site in duplex DNA. The scissile phosphodiester is attacked by the catalytic tyrosine of the enzyme, resulting in the formation of a DNA- (5'-phosphotyrosyl)-enzyme intermediate and the expulsion of a 3'-OH DNA strand. The free DNA strand then undergoes passage around the unbroken strand, thus removing DNA supe [...] | 0.572 |
| hslU | trmFO | LSL_0946 | LSL_0721 | ATP-dependent hsl protease ATP-binding 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. | Glucose inhibited division protein A; Catalyzes the folate-dependent formation of 5-methyl-uridine at position 54 (M-5-U54) in all tRNAs; Belongs to the MnmG family. TrmFO subfamily. | 0.558 |
| hslU | xerC-7 | LSL_0946 | LSL_0948 | ATP-dependent hsl protease ATP-binding 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. | Integrase/recombinase, XerC/CodV family; Site-specific tyrosine recombinase, which acts by catalyzing the cutting and rejoining of the recombining DNA molecules. The XerC- XerD complex is essential to convert dimers of the bacterial chromosome into monomers to permit their segregation at cell division. It also contributes to the segregational stability of plasmids. | 0.882 |