Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published October 23, 2013 | Supplemental Material + Accepted Version
Journal Article Open

DNA Protection by the Bacterial Ferritin Dps via DNA Charge Transport

Abstract

Dps proteins, bacterial mini-ferritins that protect DNA from oxidative stress, are implicated in the survival and virulence of pathogenic bacteria. Here we examine the mechanism of E. coli Dps protection of DNA, specifically whether this DNA-binding protein can utilize DNA charge transport through the base pair π-stack to protect the genome from a distance. An intercalating ruthenium photooxidant was employed to generate DNA damage localized to guanine repeats, the sites of lowest potential in DNA. We find that Dps loaded with ferrous iron, in contrast to Apo-Dps and ferric iron-loaded Dps, significantly attenuates the yield of oxidative DNA damage. These data demonstrate that ferrous iron-loaded Dps is selectively oxidized to fill guanine radical holes, thereby restoring the integrity of the DNA. Luminescence studies indicate no direct interaction between the ruthenium photooxidant and Dps, supporting the DNA-mediated oxidation of ferrous iron-loaded Dps. Thus DNA charge transport may be a mechanism by which Dps efficiently protects the genome of pathogenic bacteria from a distance.

Additional Information

© 2013 American Chemical Society. Received: August 23, 2013. Publication Date (Web): October 11, 2013. We thank Dr. Roberto Kolter at Harvard Medical School for his generous donation of the Dps plasmid and strain used for this study. We acknowledge the NIH for funding (GM49216). A.R.A. was supported by the National Institute on Aging of the NIH on a predoctoral NRSA (F31AG040954).

Attached Files

Accepted Version - nihms532326.pdf

Supplemental Material - ja408760w_si_001.pdf

Files

ja408760w_si_001.pdf
Files (2.5 MB)
Name Size Download all
md5:128d4d1790314744db94aabb44a01ee1
747.7 kB Preview Download
md5:6dd4ba584e19dd4e0956c0cbde3cd512
1.8 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 25, 2023