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PMID: 9138579 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Stretching DNA with optical tweezers.

Biophysical journal ·Vol. 72 ·No. 3 ·1997-03-00 ·Pages 1335-46

Wang MD, Yin H, Landick R, Gelles J, Block SM

Abstract

Force-extension (F-x) relationships were measured for single molecules of DNA under a variety of buffer conditions, using an optical trapping interferometer modified to incorporate feedback control. One end of a single DNA molecule was fixed to a coverglass surface by means of a stalled RNA polymerase complex. The other end was linked to a microscopic bead, which was captured and held in an optical trap. The DNA was subsequently stretched by moving the coverglass with respect to the trap using a piezo-driven stage, while the position of the bead was recorded at nanometer-scale resolution. An electronic feedback circuit was activated to prevent bead movement beyond a preset clamping point by modulating the light intensity, altering the trap stiffness dynamically. This arrangement permits rapid determination of the F-x relationship for individual DNA molecules as short as -1 micron with unprecedented accuracy, subjected to both low (approximately 0.1 pN) and high (approximately 50 pN) loads: complete data sets are acquired in under a minute. Experimental F-x relationships were fit over much of their range by entropic elasticity theories based on worm-like chain models. Fits yielded a persistence length, Lp, of approximately 47 nm in a buffer containing 10 mM Na1. Multivalent cations, such as Mg2+ or spermidine 3+, reduced Lp to approximately 40 nm. Although multivalent ions shield most of the negative charges on the DNA backbone, they did not further reduce Lp significantly, suggesting that the intrinsic persistence length remains close to 40 nm. An elasticity theory incorporating both enthalpic and entropic contributions to stiffness fit the experimental results extremely well throughout the full range of extensions and returned an elastic modulus of approximately 1100 pN.

MeSH Terms
DNA/chemistry DNA-Directed RNA Polymerases/chemistry Electronics Equipment Design Interferometry/instrumentation,methods Lasers Light Models, Theoretical Protein Binding Tensile Strength
Chemicals
DNA DNA-Directed RNA Polymerases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Wang M D
Department of Molecular Biology, Princeton University, New Jersey 08544, USA.
Yin H
Landick R
Gelles J
Block S M
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36 references, click to expand
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Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1997-03-00
Pages
1335-46
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1184516
Subset
IM
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