Single stranded binding protein: Difference between revisions
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<scene name='56/566528/Gly_15/2'>Gly15</scene> is believed to play an important role in binding the RecA protein. SSB will interact with the protein RecA to enable recombination, because RecA will recognize SSB and replace it on the strand. 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. Mutations in <scene name='56/566528/Gly_15/2'>Gly15</scene> have been shown to have extreme effects on recombinational repair. SSB is also thought to bind with exonuclease I, DNA polymerase II, and a protein n, which is a part of the primosome complex and used to help synthesize RNA primers for the lagging strand <ref>PMID: 2087220</ref>. | <scene name='56/566528/Gly_15/2'>Gly15</scene> is believed to play an important role in binding the RecA protein. SSB will interact with the protein RecA to enable recombination, because RecA will recognize SSB and replace it on the strand. 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. Mutations in <scene name='56/566528/Gly_15/2'>Gly15</scene> have been shown to have extreme effects on recombinational repair. SSB is also thought to bind with exonuclease I, DNA polymerase II, and a protein n, which is a part of the primosome complex and used to help synthesize RNA primers for the lagging strand <ref>PMID: 2087220</ref>. | ||
</StructureSection> | |||
==Other SSB Structures== | ==Other SSB Structures== | ||
Revision as of 13:10, 20 November 2013
Sandbox Single Stranded DNA-Binding Protein (SSB)
Overview
Single-stranded DNA-binding protein (SSB) binds to single-stranded regions of DNA. This binding serves a variety of functions - it prevents the strands from hardening too early during replication, it protects the single-stranded DNA from being broken down by nucleases during repair, and it removes the secondary structure of the strands so that other enzymes are able to access them and act effectively upon the strands[1].
Single-stranded DNA (ssDNA) is utilized primarily during the course of major aspects of DNA metabolism such as replication, recombination and repair [2]. In addition to stabilizing ssDNA, SSB proteins also bind to and control the function of many other proteins that are involved in all three of these major DNA metabolic processes. During DNA replication, SSB molecules bind to the newly separated individual DNA strands, keeping the strands separated by holding them in place so that each strand can serve as a template for new DNA synthesis[3].
Structure of E. coli SSB
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Other SSB Structures
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See Also
References
- ↑ Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
- ↑ Meyer RR, Laine PS. The single-stranded DNA-binding protein of Escherichia coli. Microbiol Rev. 1990 Dec;54(4):342-80. PMID:2087220
- ↑ Berg JM, Tymoczko JL, Stryer L. Biochemistry. 6th edition. New York: W H Freeman; 2006.
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