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Diffusion of ring-shaped proteins along DNA: case study of sliding clamps
- Source :
- Nucleic Acids Research
- Publication Year :
- 2018
- Publisher :
- Oxford University Press (OUP), 2018.
-
Abstract
- Several DNA-binding proteins, such as topoisomerases, helicases and sliding clamps, have a toroidal (i.e. ring) shape that topologically traps DNA, with this quality being essential to their function. Many DNA-binding proteins that function, for example, as transcription factors or enzymes were shown to be able to diffuse linearly (i.e. slide) along DNA during the search for their target binding sites. The protein's sliding properties and ability to search DNA, which often also involves hopping and dissociation, are expected to be different when it encircles the DNA. In this study, we explored the linear diffusion of four ring-shaped proteins of very similar structure: three sliding clamps (PCNA, β-clamp, and the gp45) and the 9-1-1 protein, with a particular focus on PCNA. Coarse-grained molecular dynamics simulations were performed to decipher the sliding mechanism adopted by these ring-shaped proteins and to determine how the molecular properties of the inner and outer ring govern its search speed. We designed in silico variants to dissect the contributions of ring geometry and electrostatics to the sliding speed of ring-shaped proteins along DNA. We found that the toroidal proteins diffuse when they are tilted relative to the DNA axis and able to rotate during translocation, but that coupling between rotation and translocation is quite weak. Their diffusion speed is affected by the shape of the inner ring and, to a lesser extent, by its electrostatic properties. However, breaking the symmetry of the electrostatic potential can result in deviation of the DNA from the center of the ring and cause slower linear diffusion. The findings are discussed in light of earlier computational and experimental studies on the sliding of clamps.
- Subjects :
- 0301 basic medicine
Rotation
Static Electricity
Molecular Dynamics Simulation
Diffusion
Quantitative Biology::Subcellular Processes
03 medical and health sciences
chemistry.chemical_compound
Molecular dynamics
Proliferating Cell Nuclear Antigen
Genetics
Quantitative Biology::Biomolecules
Toroid
030102 biochemistry & molecular biology
biology
Topoisomerase
Computational Biology
Helicase
DNA
Electrostatics
Proliferating cell nuclear antigen
030104 developmental biology
chemistry
Trans-Activators
biology.protein
Biophysics
Subjects
Details
- ISSN :
- 13624962 and 03051048
- Volume :
- 46
- Database :
- OpenAIRE
- Journal :
- Nucleic Acids Research
- Accession number :
- edsair.doi.dedup.....e601fbac12a02882a2b987f153d39c6f
- Full Text :
- https://doi.org/10.1093/nar/gky436