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.

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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