Controlling the size of nanoscale toroidal DNA condensates with static curvature and ionic strength
- 18 July 2003
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 100 (16) , 9296-9301
- https://doi.org/10.1073/pnas.1533135100
Abstract
The process of DNA condensation into nanometer-scale particles has direct relevance to several fields, including cell biology, virology, and gene delivery for therapeutic purposes. DNA condensation has also attracted the attention of polymer physicists, as the collapse of DNA molecules from solution into well defined particles represents an exquisite example of a polymer phase transition. Here we present a quantitative study of DNA toroids formed by condensation of 3 kb DNA with hexammine cobalt (III). The presence or absence of static loops within this DNA molecule demonstrates the effect of nucleation loop size on toroid dimensions and that nucleation is principally decoupled from toroid growth. A comparison of DNA condensates formed at low ionic strength with those formed in the presence of additional salts (NaCl or MgCl2) shows that toroid thickness is a salt-dependant phenomenon. Together, these results have allowed the development of models for DNA toroid formation in which the size of the nucleation loop directly influences the diameter of the fully formed toroid, whereas solution conditions govern toroid thickness. The data presented illustrate the potential that exists for controlling DNA toroid dimensions. Furthermore, this study provides a set of data that should prove useful as a test for theoretical models of DNA condensation.Keywords
This publication has 36 references indexed in Scilit:
- DNA persistence length revisitedBiopolymers, 2002
- Formation of a Giant Toroid from Long Duplex DNALangmuir, 1999
- Polymer chain statistics and conformational analysis of DNA molecules with bends or sections of different flexibilityJournal of Molecular Biology, 1998
- Identification of the Elemental Packing Unit of DNA in Mammalian Sperm Cells by Atomic Force MicroscopyBiochemical and Biophysical Research Communications, 1993
- Dynamic Light Scattering Studies of Biopolymers: Effects of Charge, Shape, and FlexibilityAnnual Review of Physical Chemistry, 1986
- Structure of viral φ29 DNA condensed by simple triamines: A light‐scattering and electron‐microscopy studyBiopolymers, 1981
- Cation-induced toroidal condensation of DNAJournal of Molecular Biology, 1980
- Compact form of DNA induced by spermidineNature, 1976
- Mode of DNA packing within bacteriophage headsJournal of Molecular Biology, 1973
- Packing of DNA in the head of bacteriophage T2Journal of Molecular Biology, 1967