We study the kinetics of the overstretching transition in l-phage double-stranded (ds) DNA from the basic conformation (B state) to the 1.7-times longer and partially unwound conformation (S state), using the dual-laser optical tweezers under force-clamp conditions at 25C. The unprecedented resolution of our piezo servo-system, which can impose millisecond force steps of 0.5–2 pN, reveals the exponential character of the elongation kinetics and allows us to test the two-state nature of the B-S transition mechanism. By analyzing the load-dependence of the rate constant of the elongation, we find that the elementary elongation step is 5.85 nm, indicating a cooperativity of ~25 basepairs. This mechanism increases the free energy for the elementary reaction to ~94 kBT, accounting for the stability of the basic conformation of DNA, and explains why ds-DNA can remain in equilibrium as it overstretches.

Piconewton-millisencond force steps reveal the transition kinetics and mechanism of the double stranded DNA elongation / P. Bianco; L. Bongini; L. Melli; M. Dolfi; V. Lombardi. - In: BIOPHYSICAL JOURNAL. - ISSN 0006-3495. - STAMPA. - 101:(2011), pp. 866-874. [10.1016/j.bpj.2011.06.039]

Piconewton-millisencond force steps reveal the transition kinetics and mechanism of the double stranded DNA elongation

BIANCO, PASQUALE;BONGINI, LORENZO;MELLI, LUCA;DOLFI, MARIO;LOMBARDI, VINCENZO
2011

Abstract

We study the kinetics of the overstretching transition in l-phage double-stranded (ds) DNA from the basic conformation (B state) to the 1.7-times longer and partially unwound conformation (S state), using the dual-laser optical tweezers under force-clamp conditions at 25C. The unprecedented resolution of our piezo servo-system, which can impose millisecond force steps of 0.5–2 pN, reveals the exponential character of the elongation kinetics and allows us to test the two-state nature of the B-S transition mechanism. By analyzing the load-dependence of the rate constant of the elongation, we find that the elementary elongation step is 5.85 nm, indicating a cooperativity of ~25 basepairs. This mechanism increases the free energy for the elementary reaction to ~94 kBT, accounting for the stability of the basic conformation of DNA, and explains why ds-DNA can remain in equilibrium as it overstretches.
2011
101
866
874
P. Bianco; L. Bongini; L. Melli; M. Dolfi; V. Lombardi
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/564901
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