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1.
Phys Rev E ; 100(2-1): 022402, 2019 Aug.
Article in English | MEDLINE | ID: mdl-31574750

ABSTRACT

By combining analytical and numerical calculations, we investigate the minimal-energy shape of short DNA loops of approximately 100 base pairs (bp). We show that in these loops the excess twist density oscillates as a response to an imposed bending stress, as recently found in DNA minicircles and observed in nucleosomal DNA. These twist oscillations, here referred to as twist waves, are due to the coupling between twist and bending deformations, which in turn originates from the asymmetry between DNA major and minor grooves. We introduce a simple analytical variational shape that reproduces the exact loop energy up to the fourth significant digit and is in very good agreement with shapes obtained from coarse-grained simulations. We, finally, analyze the loop dynamics at room temperature, and show that the twist waves are robust against thermal fluctuations. They perform a normal diffusive motion, whose origin is briefly discussed.


Subject(s)
DNA/chemistry , Mechanical Phenomena , Base Pairing , Biomechanical Phenomena , Models, Molecular
2.
J Chem Phys ; 147(21): 214103, 2017 Dec 07.
Article in English | MEDLINE | ID: mdl-29221402

ABSTRACT

Biomolecular folding, at least in simple systems, can be described as a two state transition in a free energy landscape with two deep wells separated by a high barrier. Transition paths are the short part of the trajectories that cross the barrier. Average transition path times and, recently, their full probability distribution have been measured for several biomolecular systems, e.g., in the folding of nucleic acids or proteins. Motivated by these experiments, we have calculated the full transition path time distribution for a single stochastic particle crossing a parabolic barrier, including inertial terms which were neglected in previous studies. These terms influence the short time scale dynamics of a stochastic system and can be of experimental relevance in view of the short duration of transition paths. We derive the full transition path time distribution as well as the average transition path times and discuss the similarities and differences with the high friction limit.


Subject(s)
Nucleic Acids/chemistry , Proteins/chemistry , Algorithms , Kinetics , Nucleic Acid Conformation , Probability , Protein Conformation , Protein Folding , Stochastic Processes , Thermodynamics
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