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Published on: August 21, 2016
Structure of a mutant form of proliferating cell nuclear antigen that blocks translesion DNA synthesis
Bret D Freudenthal1, S Ramaswamy, Manju M Hingorani
1Department of Biochemistry, University of Iowa College of Medicine, Iowa City, Iowa 52242-1109, USA.
Abstract:
Proliferating cell nuclear antigen (PCNA) is a homotrimeric protein that functions as a sliding clamp during DNA replication. Several mutant forms of PCNA that block translesion DNA synthesis have been identified in genetic studies in yeast. One such mutant protein (encoded by the rev6-1 allele) is a glycine to serine substitution at residue 178, located at the subunit interface of PCNA. To improve our understanding of how this substitution interferes with translesion synthesis, we have determined the X-ray crystal structure of the PCNA G178S mutant protein. This substitution has little effect on the structure of the domain in which the substitution occurs. Instead, significant, local structural changes are observed in the adjacent subunit. The most notable difference between mutant and wild-type structures is in a single, extended loop (comprising amino acid residues 105-110), which we call loop J. In the mutant protein structure, loop J adopts a very different conformation in which the atoms of the protein backbone have moved by as much as 6.5 A from their positions in the wild-type structure. To improve our understanding of the functional consequences of this structural change, we have examined the ability of this mutant protein to stimulate nucleotide incorporation by DNA polymerase eta (pol eta). Steady state kinetic studies show that while wild-type PCNA stimulates incorporation by pol eta opposite an abasic site, the mutant PCNA protein actually inhibits incorporation opposite this DNA lesion. These results show that the position of loop J in PCNA plays an essential role in facilitating translesion synthesis.
Insights
The Proliferating Cell Nuclear Antigen (PCNA) G178S mutant protein alters DNA replication by changing loop J conformation. This structural shift inhibits translesion DNA synthesis, impacting DNA repair mechanisms.
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- Proliferating cell nuclear antigen (PCNA) is crucial for DNA replication, acting as a sliding clamp.
- Mutant PCNA forms can impede translesion DNA synthesis, a key DNA repair pathway.
- The rev6-1 allele results in a glycine to serine substitution at residue 178 in PCNA.
Purpose of the Study:
- To elucidate the structural basis of how the PCNA G178S mutation affects translesion DNA synthesis.
- To understand the functional consequences of observed structural changes in the mutant PCNA.
Main Methods:
- X-ray crystallography was used to determine the structure of the PCNA G178S mutant protein.
- Structural comparison between wild-type and mutant PCNA was performed.
- Steady-state kinetic studies assessed the ability of mutant PCNA to stimulate DNA polymerase eta (pol eta) activity.
Main Results:
- The G178S substitution caused local structural changes in an adjacent subunit, notably altering the conformation of loop J (residues 105-110).
- Mutant PCNA exhibited significantly different loop J positioning compared to wild-type PCNA.
- While wild-type PCNA stimulated pol eta activity opposite an abasic site, the G178S mutant inhibited it.
Conclusions:
- The conformation of loop J in PCNA is essential for facilitating translesion DNA synthesis.
- The G178S mutation disrupts PCNA's function in DNA repair by altering critical structural elements.
- Structural insights into PCNA mutants can reveal mechanisms of DNA replication and repair.
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