paper

Effects of long-range dispersion in nonlinear dynamics of DNA molecules

arXiv:physics/9906006

Abstract

A discrete nonlinear Schrodinger (NLS) model with long-range dispersive interactions describing the dynamical structure of DNA is proposed. Dispersive interactions of two types: the power dependence and the exponential dependence on the distance, , are studied. For less than some critical value, , and similarly for there is an interval of bistability where two stable stationary states: narrow, pinned states and broad, mobile states exist at each value of the total energy. For cubic nonlinearity the bistability of the solitons occurs for dipole-dipole dispersive interaction , and for the inverse radius of the dispersive interaction . For increasing degree of nonlinearity, , the critical values and increase. The long-distance behavior of the intrinsically localized states depends on . For their tails are exponential while for they are algebraic. A controlled switching between pinned and mobile states is demonstrated applying a spatially symmetric perturbation in the form of a parametric kick. The mechanism could be important for controlling energy storage and transport in DNA molecules.

19 pages, 6 figures, in Proc. "Nonlinear Cooperative Phenomena in Biological Systems", Ed.: L. Matsson (World Scientific, Singapore, 1998) pp. 176-194