Single stranded binding protein: Difference between revisions
No edit summary |
No edit summary |
||
| Line 44: | Line 44: | ||
DNA, whereas modification of either lysine residues (with acetic anhydride) or tryptophan | DNA, whereas modification of either lysine residues (with acetic anhydride) or tryptophan | ||
residues (with N-bromosuccinimide) led to complete loss of binding activity <ref>PMID: 2087220</ref>. | residues (with N-bromosuccinimide) led to complete loss of binding activity <ref>PMID: 2087220</ref>. | ||
The two tryptophan residues involved in DNA binding are Trp40 and Trp54, which was | The two tryptophan residues involved in DNA binding are <scene name='56/566528/Trp_40/1'>Trp40</scene> and Trp54, which was | ||
determined by mutagenesis. One more binding site was determined by site-specific mutagenesis. | determined by mutagenesis. One more binding site was determined by site-specific mutagenesis. | ||
When His55 is substituted with Leu it decreases binding affinity. All of these residues | When His55 is substituted with Leu it decreases binding affinity. All of these residues | ||
Revision as of 02:56, 2 November 2013
Sandbox Single Stranded DNA-Binding Protein (SSB)
Single-stranded DNA-binding protein, or SSB, binds to single-stranded regions of DNA in order to prevent premature annealing, to protect the single-stranded DNA from being digested by nucleases, and to remove secondary structure from the DNA to allow other enzymes to function effectively upon it. Single-stranded DNA is produced during all aspects of DNA metabolism: replication, recombination and repair. As well as stabilizing this single-stranded DNA, SSB proteins bind to and modulate the function of numerous proteins involved in all of these processes.
Overview
| ||||||||||||
Structure
| ||||||||||||
Binding Interactions between DNA and SSB of E. coli
| ||||||||||||
See Also
References
Proteopedia Page Contributors and Editors (what is this?)
Rachel Craig, Refayat Ahsen, Michal Harel, Alexander Berchansky