Femtosecond dynamics of DNA-mediated electron transfer

被引:353
作者
Wan, CZ [1 ]
Fiebig, T [1 ]
Kelley, SO [1 ]
Treadway, CR [1 ]
Barton, JK [1 ]
Zewail, AH [1 ]
机构
[1] CALTECH, Arthur Amos Noyes Lab Chem Phys, Lab Mol Sci, Pasadena, CA 91125 USA
关键词
D O I
10.1073/pnas.96.11.6014
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Diverse biophysical and biochemical studies have sought to understand electron transfer (ET) in DNA in part because of its importance to DNA damage and its repair. However, the dynamics and mechanisms of the elementary processes of ET in this medium are not fully understood and have been heavily debated. Two fundamental issues are the distance over which charge is transported and the time-scale on which the transport through the pi-stack of the DNA base pairs may occur. With femtosecond resolution, we report direct observation in DNA of ultrafast ET, initiated by excitation of tethered ethidium (E), the intercalated electron acceptor (A); the electron donor (D) is 7-deazaguanine (Z), a modified base, placed at different, fixed distances from A. The ultrafast ET between these reactants in DNA has been observed with time constants of 5 ps and 75 ps and was found to be essentially independent of the D-A separation (10-17 Angstrom). However, the ET efficiency does depend on the D-A distance. The 5-ps decay corresponds to direct ET observed from 7-deazaguanine but not guanine to E. From measurements of orientation anisotropies, we conclude that the slower 75-ps process requires the reorientation of E before ET, similar to E/nucleotide complexes in water. These results reveal the nature of ultrafast ET and its mechanism: in DNA, ET cannot be described as in proteins simply by a phenomenological parameter, beta. Instead, the involvement of the base pairs controls the time scale and the degree of coherent transport.
引用
收藏
页码:6014 / 6019
页数:6
相关论文
共 58 条
[1]   Rates of DNA-mediated electron transfer between metallointercalators [J].
Arkin, MR ;
Stemp, EDA ;
Holmlin, RE ;
Barton, JK ;
Hormann, A ;
Olson, EJC ;
Barbara, PF .
SCIENCE, 1996, 273 (5274) :475-480
[2]  
Aviram A., 1998, Molecular Electronics - Science and Technology
[3]   QUENCHING OF DNA-ETHIDIUM FLUORESCENCE BY AMSACRINE AND OTHER ANTITUMOR AGENTS - A POSSIBLE ELECTRON-TRANSFER EFFECT [J].
BAGULEY, BC ;
LEBRET, M .
BIOCHEMISTRY, 1984, 23 (05) :937-943
[4]   DNA-MEDIATED PHOTOELECTRON TRANSFER-REACTIONS [J].
BARTON, JK ;
KUMAR, CV ;
TURRO, NJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1986, 108 (20) :6391-6393
[5]  
*BATT PAC NW LAB, 1992, ARGUS
[6]   A KINETIC-ANALYSIS OF THE PRIMARY CHARGE SEPARATION IN BACTERIAL PHOTOSYNTHESIS - ENERGY GAPS AND STATIC HETEROGENEITY [J].
BIXON, M ;
JORTNER, J ;
MICHELBEYERLE, ME .
CHEMICAL PHYSICS, 1995, 197 (03) :389-404
[7]  
BIXON M, 1998, ADV CHEM PHYS, V106, P1
[8]   DYNAMICS OF ELECTRON-TRANSFER BETWEEN INTERCALATED POLYCYCLIC MOLECULES - EFFECT OF INTERSPERSED BASES [J].
BRUN, AM ;
HARRIMAN, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1992, 114 (10) :3656-3660
[9]   Oxidative nucleobase modifications leading to strand scission [J].
Burrows, CJ ;
Muller, JG .
CHEMICAL REVIEWS, 1998, 98 (03) :1109-1151
[10]  
CADET J, 1994, DNA ADDUCTS IDENTIFI