Related Experiment Videos
DNA bending induced by the archaebacterial histone-like protein MC1
1Laboratoire de Microscopie Moléculaire et Cellulaire, LM2C, UMR 1772 CNRS, Institut Gustave-Roussy, 39 rue Camille Desmoulins, Villejuif Cedex, 94805, France. elecam@igr.fr
Abstract:
The conformational changes induced by the binding of the histone-like protein MC1 to DNA duplexes have been analyzed by dark-field electron microscopy and polyacrylamide gel electrophoresis. Visualisation of the DNA molecules by electron microscopy reveals that the binding of MC1 induces sharp kinks. Linear DNA duplexes (176 bp) which contained a preferential site located at the center were used for quantitative analysis. Measurements of the angle at the center of all duplexes, at a fixed DNA concentration, as a function of the MC1 concentration, were very well fitted by a simple model of an isotropic flexible junction and an equilibrium between the two conformations of DNA with bound or unbound MC1. This model amounts to double-folded Gaussian distributions and yields an equilibrium deflection angle of theta0=116 degrees for the DNA with bound MC1. It allowed measurements of the fraction of DNA with bound MC1 to be taken as a function of MC1 concentrations and yields an equilibrium dissociation constant of Kd=100 nM. It shows that the flexibility of DNA is reduced by the binding of MC1 and the formation of a kink. The equilibrium dissociation constant value was corroborated by gel electrophoresis. Control of the model by the computation of the reduced chi2 shows that the measurements are consistent and that electron microscopy can be used to quantify precisely the DNA deformations induced by the binding of a protein to a preferential site.
Insights
Histone-like protein MC1 binding induces DNA kinks, altering DNA conformation. This study quantifies DNA deformation and protein binding using electron microscopy and gel electrophoresis.
Area of Science:
- Molecular Biology
- Biophysics
- Structural Biology
Background:
- Histone-like proteins play crucial roles in DNA packaging and regulation.
- Understanding protein-DNA interactions is fundamental to molecular biology.
- The histone-like protein MC1's effect on DNA structure was previously unquantified.
Purpose of the Study:
- To analyze conformational changes in DNA duplexes upon binding of the histone-like protein MC1.
- To quantify the DNA deformations induced by MC1 binding.
- To determine the equilibrium dissociation constant (Kd) for MC1-DNA interaction.
Main Methods:
- Dark-field electron microscopy for visualizing DNA-protein complexes.
- Polyacrylamide gel electrophoresis to corroborate binding affinities.
- Quantitative analysis of DNA duplex angles and fitting to a biophysical model.
Main Results:
- MC1 binding induces sharp kinks in DNA duplexes.
- A model fitting DNA conformations yielded an equilibrium deflection angle of 116 degrees.
- The equilibrium dissociation constant (Kd) was determined to be 100 nM, indicating tight binding.
- DNA flexibility is reduced upon MC1 binding.
Conclusions:
- Electron microscopy can precisely quantify protein-induced DNA deformations.
- MC1 binding significantly alters DNA structure, forming kinks and reducing flexibility.
- The study provides quantitative insights into MC1-DNA interactions and their structural consequences.