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Biophys. J. BioFAST: First Published February 9, 2007. doi:10.1529/biophysj.106.094052
© 2007 by the Biophysical Society.


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NUCLEIC ACIDS

Force unfolding kinetics of RNA using optical tweezers. I. Effects of experimental variables on measured results

Jin-Der Wen 1, Maria Manosas 2, Pan Li 1, Steve Smith 1, Carlos Bustamante 1, Felix Ritort 2 and Ignacio Tinoco, Jr. 3*

1 U. of California, Berkeley
2 U. of Barcelona
3 Univ. of California - Berkeley

* To whom correspondence should be addressed. E-mail: intinoco{at}lbl.gov.

Submitted on July 27, 2006
Revised on September 5, 2006
Accepted on 28 December 2006


   Abstract
Experimental variables of optical tweezers instrumentation that affect RNA folding/unfolding kinetics were investigated. A model RNA hairpin, P5ab, was attached to two micron-sized beads through hybrid RNA/DNA handles; one bead was trapped by dual-beam lasers and the other was held by a micropipette. Several experimental variables were changed while measuring the unfolding/refolding kinetics, including handle lengths, trap stiffness, and modes of force applied to the molecule. In constant-force mode where the tension applied to the RNA was maintained through feedback control, the measured rate coefficients varied within 40% when the handle lengths were changed by 10 fold (1.1 to 10.2 Kbp); they increased by two- to three-fold when the trap stiffness was lowered to one third (from 0.1 to 0.035 pN/nm). In the passive mode, without feedback control and where the force applied to the RNA varied in response to the end-to-end distance change of the tether, the RNA hopped between a high-force folded-state and a low-force unfolded-state. In this mode, the rates increased up to two-fold with longer handles or softer traps. Overall, the measured rates remained with the same order-of-magnitude over the wide range of conditions studied. In the companion paper (1), we analyze how the measured kinetics parameters differ from the intrinsic molecular rates of the RNA, and thus how to obtain the moleular rates.

Key Words: P5ab, RNA folding, Single molecule, force unfolding, optical tweezers




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E. B. Walton, S. Lee, and K. J. Van Vliet
Extending Bell's Model: How Force Transducer Stiffness Alters Measured Unbinding Forces and Kinetics of Molecular Complexes
Biophys. J., April 1, 2008; 94(7): 2621 - 2630.
[Abstract] [Full Text] [PDF]




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Copyright © 2007 by the Biophysical Society.