Molecular crowding enhances facilitated diffusion of two human DNA glycosylases
- ,
- Joseph D. Schonhoft,
- Meng M. Rowland,
- Alyssa A. Rodriguez,
- Breeana G. Anderson,
- James T. Stivers
- Johns Hopkins University School of Medicine,
- Department of Pharmacology and Molecular Sciences,
- Department of Chemistry and Biochemistry, University of San Diego
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Abstract
Intracellular space is at a premium due to the high concentrations of biomolecules and is expected to have a fundamental effect on how large macromolecules move in the cell. Here, we report that crowded solutions promote intramolecular DNA translocation by two human DNA repair glycosylases. The crowding effect increases both the efficiency and average distance of DNA chain translocation by hindering escape of the enzymes to bulk solution. The increased contact time with the DNA chain provides for redundant damage patrolling within individual DNA chains at the expense of slowing the overall rate of damaged base removal from a population of molecules. The significant biological implication is that a crowded cellular environment could influence the mechanism of damage recognition as much as any property of the enzyme or DNA.
Bibliographic Information
Output type
Original language
EnglishPages from-to (Number of pages)
Pages 4087-4097 (11 pages)Journal (Volume, Issue Number)
Nucleic Acids Research (Volume 43, Issue 8)Publication milestones
- Published - 27/03/2015
Publication status
ISSN
0305-1048Publication IDs
- Scopus: 84930216294
- PubMed: 25845592
