TY - JOUR
T1 - Radioprotective effects produced by the condensation of plasmid DNA with avidin and biotinylated gold nanoparticles
AU - Perry, Christopher C.
AU - Urata, Sarah M.
AU - Lee, Melissa
AU - Aguilera, Joe A.
AU - Milligan, Jamie R.
N1 - Funding Information:
Acknowledgments Supported by PHS grant CA46295. The authors thank Dr. Jonathan Neidigh for assistance with circular dichroic spectroscopy.
PY - 2012/11
Y1 - 2012/11
N2 - The treatment of aqueous solutions of plasmid DNA with the protein avidin results in significant changes in physical, chemical, and biochemical properties. These effects include increased light scattering, formation of micron-sized particles containing both DNA and protein, and plasmid protection against thermal denaturation, radical attack, and nuclease digestion. All of these changes are consistent with condensation of the plasmid by avidin. Avidin can be displaced from the plasmid at higher ionic strengths. Avidin is not displaced from the plasmid by an excess of a tetra-arginine ligand, nor by the presence of biotin. Therefore, this system offers the opportunity to reversibly bind biotin-labeled species to a condensed DNA-protein complex. An example application is the use of biotinylated gold nanoparticles. This system offers the ability to examine in better detail the chemical mechanisms involved in important radiobiological effects. Examples include protein modulation of radiation damage to DNA, and radiosensitization by gold nanoparticles © 2012 Springer-Verlag.
AB - The treatment of aqueous solutions of plasmid DNA with the protein avidin results in significant changes in physical, chemical, and biochemical properties. These effects include increased light scattering, formation of micron-sized particles containing both DNA and protein, and plasmid protection against thermal denaturation, radical attack, and nuclease digestion. All of these changes are consistent with condensation of the plasmid by avidin. Avidin can be displaced from the plasmid at higher ionic strengths. Avidin is not displaced from the plasmid by an excess of a tetra-arginine ligand, nor by the presence of biotin. Therefore, this system offers the opportunity to reversibly bind biotin-labeled species to a condensed DNA-protein complex. An example application is the use of biotinylated gold nanoparticles. This system offers the ability to examine in better detail the chemical mechanisms involved in important radiobiological effects. Examples include protein modulation of radiation damage to DNA, and radiosensitization by gold nanoparticles © 2012 Springer-Verlag.
KW - Avidin
KW - Biotin
KW - DNA condensation
KW - Gamma radiation
KW - Plasmid
KW - Cesium Radioisotopes
KW - Biotin/chemistry
KW - Metal Nanoparticles/chemistry
KW - Gold/chemistry
KW - DNA/chemistry
KW - Plasmids
KW - Radiation-Protective Agents/chemistry
KW - DNA Damage
KW - Avidin/chemistry
UR - https://www.scopus.com/pages/publications/84867893200
UR - https://www.scopus.com/pages/publications/84867893200#tab=citedBy
UR - https://www.mendeley.com/catalogue/74655cf3-9c87-3b19-8d62-d0320a635f09/
U2 - 10.1007/s00411-012-0429-6
DO - 10.1007/s00411-012-0429-6
M3 - Article
C2 - 22825766
SN - 0301-634X
VL - 51
SP - 457
EP - 468
JO - Radiation and Environmental Biophysics
JF - Radiation and Environmental Biophysics
IS - 4
ER -