cris.boxmetadata.label.title
Structural transitions and elasticity from torque measurements on DNA
cris.boxmetadata.label.dateissued
17 browse.startsWith.months.july 2003
cris.boxmetadata.label.accesslevel
metadata only access
cris.boxmetadata.label.resourcetype
journal article
cris.boxmetadata.label.authors
University of California
cris.boxmetadata.label.abstract
Knowledge of the elastic properties of DNA is required to understand the structural dynamics of cellular processes such as replication and transcription. Measurements of force and extension on single molecules of DNA have allowed direct determination of the molecule's mechanical properties, provided rigorous tests of theories of polymer elasticity, revealed unforeseen structural transitions induced by mechanical stresses, and established an experimental and conceptual framework for mechanical assays of enzymes that act on DNA. However, a complete description of DNA mechanics must also consider the effects of torque, a quantity that has hitherto not been directly measured in micromanipulation experiments. We have measured torque as a function of twist for stretched DNA-torsional strain in over- or underwound molecules was used to power the rotation of submicrometre beads serving as calibrated loads. Here we report tests of the linearity of DNA's twist elasticity, direct measurements of the torsional modulus (finding a value ∼40% higher than generally accepted), characterization of torque-induced structural transitions, and the establishment of a framework for future assays of torque and twist generation by DNA-dependent enzymes. We also show that cooperative structural transitions in DNA can be exploited to construct constant-torque wind-up motors and force-torque converters.
cris.boxmetadata.label.citationstartpage
338
cris.boxmetadata.label.citationendpage
341
cris.boxmetadata.label.volume
424
cris.boxmetadata.label.issue
6946
cris.boxmetadata.label.language
English
cris.boxmetadata.label.ocdeknowledgeArea
Biofísica
Bioquímica, Biología molecular
cris.boxmetadata.label.doi
cris.boxmetadata.label.scopusidentifier
2-s2.0-0041305824
cris.boxmetadata.label.pubmedidentifier
cris.boxmetadata.label.source
Nature
cris.boxmetadata.label.containerissn
00280836
cris.boxmetadata.label.sponsor
Acknowledgements We thank E. Watson and Y. Inclán for technical assistance, E. Nogales for microscope time, and A. Vologodskii, V. Croquette, D. Bensimon, D. Collin, N. Pokala and Y. Chemla for critical readings of the manuscript and/or discussions. Z.B. is an HHMI predoctoral fellow, M.D.S. is supported by a PMMB training grant, and J.G. holds a fellowship from the Hertz Foundation. This work was supported by the NIH and DOE.
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