Tunneling energy effects on GC oxidation in DNA

被引:118
作者
Tong, GSM
Kurnikov, IV
Beratan, DN
机构
[1] Duke Univ, Dept Chem, Durham, NC 27708 USA
[2] Duke Univ, Dept Biochem, Durham, NC 27708 USA
关键词
D O I
10.1021/jp013387g
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hole-mediated electronic couplings, reorganization energies, and electron transfer (ET) rates are examined theoretically for hole-transfer reactions in DNA. Electron transfer rates are found to depend critically on the energy gap between the donor/acceptor states and the intervening bases-the tunneling energy gap. The calculated distance decay exponent for the square of the electronic coupling, beta, for hole transfer between GC base pairs (and pi-electron D/A pairs) ranges from 0.95 to 1.5 Angstrom(-1) in the model structures as the tunneling energy gap varies from 0.3 to 0.8 eV (which we argue is the range of energy gaps for GC oxidation probed in recent experiments). We show that the tunneling energy gap depends on the ET reorganization energy, which itself grows rapidly with distance for ET over 1-5 base pairs. Inclusion of the distance dependence of reorganization energies for these hole transfer reactions gives the tunneling rates an apparent decay exponent of similar to1.5-2.5 Angstrom(-1). We show that ET rates observed in DNA across one and two base pairs are reasonably well described with single-step ET theories, using our calculated couplings and reorganization energies. However, the computed single-step tunneling (superexchange) ET rates for donor and acceptor species separated by three or more base pairs are much smaller than observed. We conclude that longer-distance ET probably proceeds through thermal population of intermediate hole states of the bridging bases. Switching between mechanisms as distance grows beyond a few base pairs is likely to be a general characteristic of ET in small tunneling energy gap systems.
引用
收藏
页码:2381 / 2392
页数:12
相关论文
共 138 条
[61]  
Jortner J, 1999, BIOPHYS J, V76, pA263
[62]   New expression for the effective transfer matrix element in long-range electron transfer reactions [J].
Katz, DJ ;
Stuchebrukhov, AA .
JOURNAL OF CHEMICAL PHYSICS, 1998, 109 (12) :4960-4970
[63]   Electron transfer between bases in double helical DNA [J].
Kelley, SO ;
Barton, JK .
SCIENCE, 1999, 283 (5400) :375-381
[64]   Orienting DNA helices on gold using applied electric fields [J].
Kelley, SO ;
Barton, JK ;
Jackson, NM ;
McPherson, LD ;
Potter, AB ;
Spain, EM ;
Allen, MJ ;
Hill, MG .
LANGMUIR, 1998, 14 (24) :6781-6784
[65]   DNA-mediated electron transfer from a modified base to ethidium:: π-stacking as a modulator of reactivity [J].
Kelley, SO ;
Barton, JK .
CHEMISTRY & BIOLOGY, 1998, 5 (08) :413-425
[66]   Photoinduced electron transfer in ethidium-modified DNA duplexes: Dependence on distance and base stacking [J].
Kelley, SO ;
Holmlin, RE ;
Stemp, EDA ;
Barton, JK .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1997, 119 (41) :9861-9870
[67]  
Kelley SO, 1999, ANGEW CHEM INT EDIT, V38, P941, DOI 10.1002/(SICI)1521-3773(19990401)38:7<941::AID-ANIE941>3.0.CO
[68]  
2-7
[69]   Use of modern electron transfer theories to determine electronic coupling matrix elements in intramolecular systems [J].
Kumar, K ;
Kurnikov, IV ;
Beratan, DN ;
Waldeck, DH ;
Zimmt, MB .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (28) :5529-5541
[70]   Structural fluctuations, spin, reorganization energy, and tunneling energy control of intramolecular electron transfer: The surprising case of electron transfer in a d(8)-d(8) bimetallic system [J].
Kurnikov, IV ;
Zusman, LD ;
Kurnikova, MG ;
Farid, RS ;
Beratan, DN .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1997, 119 (24) :5690-5700