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A magnetic viscometer for shear-sensitive macromolecules
Journal of Biochemical and Biophysical Methods
|July 1, 1984
Summary
A novel rotation-viscometer measures biological macromolecule viscosity, accurately determining DNA intrinsic viscosity and revealing chromatin
Area of Science:
- Biophysics
- Rheology
- Macromolecular Science
Background:
- Accurate viscosity measurements are crucial for understanding biological macromolecules.
- Traditional viscometers face challenges with surface disturbances and sample handling.
- Characterizing DNA and chromatin viscosity requires specialized techniques.
Purpose of the Study:
- To develop and report on a novel rotation-viscometer for biological macromolecules.
- To overcome limitations of existing viscometry methods, such as surface disturbance.
- To accurately measure the intrinsic viscosity of DNA and the rheological properties of chromatin.
Main Methods:
- A rotation-viscometer with a submerged rotor was designed and implemented.
- Electromagnetic suspension and light barriers were used for rotor control and centering.
- A rotating electromagnetic field drove the rotor, with revolution periods measured electronically.
- Low rotor speeds minimized shearing effects for intrinsic viscosity determination.
Main Results:
- The viscometer effectively measures viscosity of biological macromolecules, avoiding surface disturbance.
- Intrinsic viscosity values for DNA were obtained by extrapolating concentration dependence at low shear rates.
- Chromatin exhibited very low viscosity with minimal concentration dependence.
- Decreasing ionic strength of chromatin solutions led to increased viscosity, indicating structural unfolding.
Conclusions:
- The developed rotation-viscometer is suitable for precise viscosity measurements of biological macromolecules like DNA and chromatin.
- The device allows for accurate determination of DNA intrinsic viscosity.
- Chromatin's rheological behavior is sensitive to ionic strength, reflecting structural changes.