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Visualization of Surface-tethered Large DNA Molecules with a Fluorescent Protein DNA Binding Peptide
Published on: June 23, 2016
MutS homolog sliding clamps shield the DNA from binding proteins
Jeungphill Hanne1, Brooke M Britton1, Jonghyun Park2
1From the Department of Cancer Biology and Genetics, The Ohio State University Wexner Medical Center, Columbus, Ohio 43210.
Abstract:
Sliding clamps on DNA consist of evolutionarily conserved enzymes that coordinate DNA replication, repair, and the cellular DNA damage response. MutS homolog (MSH) proteins initiate mismatch repair (MMR) by recognizing mispaired nucleotides and in the presence of ATP form stable sliding clamps that randomly diffuse along the DNA. The MSH sliding clamps subsequently load MutL homolog (MLH/PMS) proteins that form a second extremely stable sliding clamp, which together coordinate downstream MMR components with the excision-initiation site that may be hundreds to thousands of nucleotides distant from the mismatch. Specific or nonspecific binding of other proteins to the DNA between the mismatch and the distant excision-initiation site could conceivably obstruct the free diffusion of these MMR sliding clamps, inhibiting their ability to initiate repair. Here, we employed bulk biochemical analysis, single-molecule fluorescence imaging, and mathematical modeling to determine how sliding clamps might overcome such hindrances along the DNA. Using both bacterial and human MSH proteins, we found that increasing the number of MSH sliding clamps on a DNA decreased the association of the Escherichia coli transcriptional repressor LacI to its cognate promoter LacO. Our results suggest a simple mechanism whereby thermal diffusion of MSH sliding clamps along the DNA alters the association kinetics of other DNA-binding proteins over extended distances. These observations appear generally applicable to any stable sliding clamp that forms on DNA.
Insights
Sliding clamps, like MutS homolog (MSH) proteins, can overcome DNA-binding obstacles. Increasing MSH clamp numbers on DNA reduces other protein associations, suggesting a diffusion-based mechanism for DNA repair.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- DNA sliding clamps are conserved enzymes crucial for DNA replication, repair, and damage response.
- MutS homolog (MSH) proteins form stable sliding clamps on DNA to initiate mismatch repair (MMR).
- These MSH clamps recruit MutL homolog (MLH/PMS) proteins, forming a second clamp to coordinate distant repair processes.
Purpose of the Study:
- To investigate how DNA sliding clamps overcome physical hindrances during DNA repair.
- To determine the mechanism by which sliding clamps navigate or resolve obstructions on DNA.
Main Methods:
- Bulk biochemical analysis
- Single-molecule fluorescence imaging
- Mathematical modeling
Main Results:
- Increasing the number of MSH sliding clamps on DNA decreased the association of the transcriptional repressor LacI to its promoter.
- This suggests that MSH clamps can alter the binding of other DNA-associated proteins.
Conclusions:
- Thermal diffusion of MSH sliding clamps can modify the association kinetics of other DNA-binding proteins over long distances.
- This mechanism is likely applicable to various stable DNA sliding clamps involved in cellular processes.
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