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Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching.

Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Research Abstract Details 

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  • Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Abstract Text:

    ioana d vladescuIoana D Vladescu,micah j mccauleyMicah J McCauley,megan e Megan E ,ioulia rouzinaIoulia Rouzina,mark c williamsMark C Williams,

    We used single DNA molecule stretching to investigate DNA intercalation by ethidium and three ruthenium complexes. By measuring ligand-induced DNA elongation at different ligand concentrations, we determined the binding constant and site size as a function of force. Both quantities depend strongly on force and, in the limit of zero force, converge to the known bulk solution values, when available. This approach allowed us to distinguish the intercalative mode of ligand binding from other binding modes and allowed characterization of intercalation with binding constants ranging over almost six orders of magnitude, including ligands that do not intercalate under experimentally accessible solution conditions. As ligand concentration increased, the DNA stretching curves saturated at the maximum amount of ligand intercalation. The results showed that the applied force partially relieves normal intercalation constraints. We also characterized the flexibility of intercalator-saturated dsDNA for the first time.

    Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Publishing Authors By Initials

    id vladescuID Vladescu,mj mccauleyMJ McCauley,me ME ,i rouzinaI Rouzina,mc williamsMC Williams,

    For similar inorganic chemicals: ruthenium compounds research abstracts see: inorganic chemicals: ruthenium compounds research

    PUBMED ID PMID:

    MEDLINE DATE:

    Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Journal Published:

    PUBLICATION TYPE: Research Support, U.S. Gov't,

    Journal: Nature methods

    VOLUME: 4

    Page Numbers: 517-22

    Journal Abbreviation: Nat. Methods

    ISSN: 1548-7091

    DAY: 29

    MONTH: 04

    YEAR: 2007

    Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Information

    Number of References:

    LANGUAGE: eng

    NlmUniqueID: 101215604

    Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Keywords Mesh Terms:

    KEYWORDS: Ruthenium Compounds

    MESH TERMS: chemistry

    Chemical & Substance for Abstract: Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching. Information

    Substance Name: DNA

    Registry Number: 9007-49-2

    Grant and Affiliation Information for Quantifying force-dependent and zero-force DNA intercalation by single-molecule stretching.

    AFFILIATION: Department of Physics, Northeastern University, Boston, Massachusetts 02115, USA.

    Country: United States

    United States Research PublicationUnited States Research Publication

    AGENCY: United States NIGMS

    GRANT: GM072462

    ACRONYM: GM

    MEDLINETA: Nat Methods

    REFSOURCE:

    DATABASENAME:

    ACCESSION NUMBER:

    Number Hits: 0

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