DNA Repair: Difference between revisions

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The discussion on this page is targeted at genetics students, so familiarity with [[DNA]] structure, [[DNA Replication]] and [[Basics of Protein Structure]] is assumed.
The discussion on this page is targeted at genetics students, so familiarity with [[DNA]] structure, [[DNA Replication]] and [[Basics of Protein Structure]] is assumed.


'''DNA Repair''' is necessary to maintain genome fidelity. Errors in DNA can arise from many different sources.  Errors introduced in the replication process are the simplest source.  This leads to non-Watson-Crick base pairs and local distortions in the helix.  Bases can also be damaged by oxidizing agents, alkylating agents or UV light.  This page will discuss different strategies for repairing these types of DNA damage. Click the green links to see depictions that match the words.
'''DNA repair''' is necessary to maintain genome fidelity. Errors in DNA can arise from many different sources.  Errors introduced in the replication process are the simplest source.  This leads to non-Watson-Crick base pairs and local distortions in the helix.  Bases can also be damaged by oxidizing agents, alkylating agents or UV light.  This page will discuss different strategies for repairing these types of DNA damage. Click the green links to see depictions that match the words.


<StructureSection load='2aor' size='350' side='right' scene='' caption='MutH complex with DNA, AMP derivative and Ca+2 ion (PDB id [[2aor]])'>
<StructureSection load='2aor' size='350' side='right' scene='' caption='MutH complex with DNA, AMP derivative and Ca+2 ion (PDB id [[2aor]])'>
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== UvrD ==
== UvrD ==
<scene name='92/925553/Uvrd/2'>UvrD</scene>, also known as Helicase II, is one of many components responsible in repairing DNA damage. Helicases use energy from ATP to unwind double helices in metabolic pathways using nucleic acids. ATP molecules are typically used to store energy shared between phosphate groups that gets released when breaking bonds to drive catabolic reactions.  
<scene name='92/925553/Uvrd/2'>UvrD</scene>, also known as [[Helicase]] II, is one of many components responsible in repairing DNA damage. Helicases use energy from ATP to unwind double helices in metabolic pathways using nucleic acids. ATP molecules are typically used to store energy shared between phosphate groups that gets released when breaking bonds to drive catabolic reactions.  
   
   
Helicases were found in the 1970’s to be DNA-dependent ATPases, meaning that they use ATP hydrolysis to complete its interactions with the different types of nucleic acids it comes into contact with.  [[Helicase]] II, also called '''UvrD''' is the founding member of SF1, one group of six superfamiliies used to identify helicases. SF1 and SF2 members share seven conserved sequence motifs that are involved in ATP Binding <ref name="ATP Binding">PMID:17190599</ref>. UvrD is important in replication, recombination, and repair from ultraviolet damage and mismatched base pairs. Nucleotide excision repair in a normal cell  is supposed to correct pyrimidine dimers and other DNA lesions when bases are displaced from their normal positions. UvrD pairs up with the UvrABC endonuclease system, which works to displace the DNA. This is then repaired by PolI and DNA ligase <ref>Voet, D., Voet, J., &amp; Pratt, C. (2015). Fundamentals of Biochemistry: Life at the Molecular Level (4th ed.). Wiley</ref>.   
Helicases were found in the 1970’s to be DNA-dependent ATPases, meaning that they use ATP hydrolysis to complete its interactions with the different types of nucleic acids it comes into contact with.  [[Helicase]] II, also called '''UvrD''' is the founding member of SF1, one group of six superfamiliies used to identify helicases. SF1 and SF2 members share seven conserved sequence motifs that are involved in ATP Binding <ref name="ATP Binding">PMID:17190599</ref>. UvrD is important in replication, recombination, and repair from ultraviolet damage and mismatched base pairs. Nucleotide excision repair in a normal cell  is supposed to correct pyrimidine dimers and other DNA lesions when bases are displaced from their normal positions. UvrD pairs up with the UvrABC endonuclease system, which works to displace the DNA. This is then repaired by PolI and DNA ligase <ref>Voet, D., Voet, J., &amp; Pratt, C. (2015). Fundamentals of Biochemistry: Life at the Molecular Level (4th ed.). Wiley</ref>.   
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=== Monomer Structure ===
=== Monomer Structure ===


<scene name='92/925552/5_monomers/4'>RecA</scene> is one of the many proteins that is involved in recombination cross-over events and during recombination repair in response to single strand DNA breaks. RecA is a rather small monomer protein that can multiplex with itself up to thousands of RecA proteins to associate with ssDNA. The structure of RecA was determined through x-ray crystallography and each monomer contains very distinct structural components. These <scene name='92/925552/Reca_domains/4'>components</scene> are a largely helical 30-residue N-terminal region, a 240-residue α/ß ATPase core, and a 64-residue C-terminal  
<scene name='92/925552/5_monomers/4'>RecA</scene> is one of the many proteins that is involved in recombination cross-over events and during recombination repair in response to single strand DNA breaks. RecA ([[Recombinase A]]) is a rather small monomer protein that can multiplex with itself up to thousands of RecA proteins to associate with ssDNA. The structure of RecA was determined through x-ray crystallography and each monomer contains very distinct structural components. These <scene name='92/925552/Reca_domains/4'>components</scene> are a largely helical 30-residue N-terminal region, a 240-residue α/ß ATPase core, and a 64-residue C-terminal  
globular domain.
globular domain.


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Glycosylase is an enzyme. Its main function is in Base Excision Repair(BER). Base Excision Repair is a DNA repair mechanism that fixes the most common type of DNA damage. BER corrects DNA damage that occurs from oxidation and methylation. BER removes and repairs damaged bases usually these are single-stranded DNA breaks. It also corrects DNA damage that results from small leisures that do not disrupt the double helix<ref>PMID:25252105</ref>.  
Glycosylase is an enzyme. Its main function is in Base Excision Repair(BER). Base Excision Repair is a DNA repair mechanism that fixes the most common type of DNA damage. BER corrects DNA damage that occurs from oxidation and methylation. BER removes and repairs damaged bases usually these are single-stranded DNA breaks. It also corrects DNA damage that results from small leisures that do not disrupt the double helix<ref>PMID:25252105</ref>. See also [[DNA glycosylase]].


=== Function ===
=== Function ===

Latest revision as of 12:22, 5 September 2023

The discussion on this page is targeted at genetics students, so familiarity with Helicase structure, Helicase and Recombinase A is assumed.

DNA repair is necessary to maintain genome fidelity. Errors in DNA can arise from many different sources. Errors introduced in the replication process are the simplest source. This leads to non-Watson-Crick base pairs and local distortions in the helix. Bases can also be damaged by oxidizing agents, alkylating agents or UV light. This page will discuss different strategies for repairing these types of DNA damage. Click the green links to see depictions that match the words.

MutH complex with DNA, AMP derivative and Ca+2 ion (PDB id 2aor)

Drag the structure with the mouse to rotate


For more structures, please see DNA glycosylase

References