Elongational flow studies of the conformation of DNA molecules in the globular state
โ Scribed by Kouki Wakabayashi; Naoki Sasaki; Kunio Hikichi
- Publisher
- John Wiley and Sons
- Year
- 2000
- Tongue
- English
- Weight
- 166 KB
- Volume
- 76
- Category
- Article
- ISSN
- 0021-8995
No coin nor oath required. For personal study only.
โฆ Synopsis
Elongational flow-induced birefringence of a T4-phage DNA aqueous solution was measured with changing NaCl and polyethylene glycol (PEG) concentrations. DNA molecules are known to manifest a coil-globule transition with increasing PEG concentration. At certain PEG concentrations near the critical concentration of the transition, the globular DNA solution, which was expected to be nonbirefringent, showed flow-induced birefringence. Strain-rate dependence of the birefringence intensity, having a critical strain rate, was similar to that of the flexible polymer chain that manifests the coil-stretch transition. The flow-induced birefringence pattern, however, suggested that the globular DNA molecules were rigid and optically anisotropic. At the critical strain rate, the globular DNA molecules in the solution of the particular PEG concentration were considered to collapse nonadiabatically to an optically anisotropic and mechanically rigid conformation. The overall shape of the collapsed conformation of the globular DNA was estimated to be an ellipsoid with an aspect ratio of about 0.7.
๐ SIMILAR VOLUMES
## Abstract Based on the assumption that the conformational energy surface of a protein molecule can be approximated near the global minimum point by a multidimensional parabola, conformational fluctuations in the native state are discussed. In this approximation the conformational fluctuations can
me use of electron microscopic images to extract information concerning the parameters that characterize the flexibility of linear polymers in solution has been described by several authors.'-4 These attempts clearly rely on the hypothesis that interaction with the supporting substrate does not alte