Hole trapping, detrapping, and hopping in DNA

Citation
M. Bixon et J. Jortner, Hole trapping, detrapping, and hopping in DNA, J PHYS CH A, 105(45), 2001, pp. 10322-10328
Citations number
50
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF PHYSICAL CHEMISTRY A
ISSN journal
10895639 → ACNP
Volume
105
Issue
45
Year of publication
2001
Pages
10322 - 10328
Database
ISI
SICI code
1089-5639(20011115)105:45<10322:HTDAHI>2.0.ZU;2-V
Abstract
In this paper we present a self-consistent kinetic-quantum mechanical analy sis of chemical yield data for hole trapping/detrapping in G(+)(T-A)(m)GGG duplexes (with free energy gaps Delta (t)) and for hole hopping/trapping/de trapping, in G(+)[(T)(m)G](n)(T)(m)GGG duplexes of DNA. Bridge specificity of hole trapping/detrapping by GGG traps was specified by superexchange ele ctronic contributions, inferred from electronic coupling matrix elements be tween nearest-neighbor nucleobases and semiempirical energy gaps, and energ etic contributions, which determine the nuclear Franck-Condon factors. Unis tep hole-trapping yields are accounted for by a weak bridge length dependen ce for short (N = 1, 2) bridges, due to detrapping. Marked bridge specifici ty is manifested for short (N = 1, 2) bridges, being distinct for MN and fo r [(A).+1(T),J,, (m, m' i 0 and N n(m + m ' + 1)) bridges. For long (N > 2) bridges an exponential bridge size dependence of the trapping yields preva ils. Multistep hole transport results in different reaction rates of G+ (ra te kd) and of (GGG)+ (rate k(dt)) with water, i.e., k(d)/k(dt) = 1.6, which , in conjunction with the unistep trapping/detrapping data, results in the free energy gaps for hole trapping of Delta (t) 0.096 eV in the G(+)(T)(N)G GG duplexes and of Delta (t) = 0.062 eV in the G(+)[(A)(m+1)(T)(m ')](n)GGG duplexes.