Single stranded binding protein

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SSB can form complexes with many other proteins. This trait can keep enzymes needed for damage repair, transcription, etc. near the ssDNA and it is thought that SSB can even help to stimulate these enzymes to carry out their jobs. When DNA binds SSB, most of the molecule loses flexibility. But the COOH terminal domain remain flexible, even after DNA binding. It is believed that the COOH terminus has something to do with protein binding <ref>PMID: 2087220</ref>.
SSB can form complexes with many other proteins. This trait can keep enzymes needed for damage repair, transcription, etc. near the ssDNA and it is thought that SSB can even help to stimulate these enzymes to carry out their jobs. When DNA binds SSB, most of the molecule loses flexibility. But the COOH terminal domain remain flexible, even after DNA binding. It is believed that the COOH terminus has something to do with protein binding <ref>PMID: 2087220</ref>.
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SSB will interact with the protein RecA to enable recombination, because RecA will recognize SSB and replace it on the strand.
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In DNA repair, SSB will bind to the damaged strand to protect it. And eventually it will attract repair enzymes which will replace SSB and begin repair mechanisms.
SSB has also been thought to bind with exonuclease I, DNA polymerase II,
SSB has also been thought to bind with exonuclease I, DNA polymerase II,

Revision as of 19:52, 2 November 2013

Contents

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 of Single Stranded DNA-Binding Protein bound to ssDNA (PDB entry 1eyg)

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Structure

Structure of Single Stranded DNA-Binding Protein from Helicobacter Pylori bound to ssDNA (PDB entry 2vw9)

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Binding Interactions between DNA and SSB of E. coli

Structure of Single Stranded DNA-Binding Protein from E. coli (PDB entry 1qvc)

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See Also

References

  1. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  2. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  3. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  4. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  5. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  6. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  7. Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
  8. Agamova KA, Gladunova ZD, Savinkin IuN. [Cytologic method in the diagnosis of precancerous conditions and early cancer of the stomach]. Lab Delo. 1988;(3):43-5. PMID:2453719

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