CALCULATION AND MEASUREMENT OF SEMICONDUCTION ACTIVATION ENERGY AND ELECTRON MOBILITY IN CYTOCHROME OXIDASE, WITH EVIDENCE THAT CHARGE CARRIERS ARE POLARONS, WHICH MAY COUPLE OXIDATION TO PHOSPHORYLATION

被引:23
作者
COPE, FW
STRAUB, KD
机构
[1] Biochemistry Division, Aerospace Medical Research Laboratory, U.S. Naval Air Development Center, Warminster, 18974, Pennsylvania
[2] Biochemistry Department, Duke University, Durham, North, Carolina
来源
BULLETIN OF MATHEMATICAL BIOPHYSICS | 1969年 / 31卷 / 04期
关键词
D O I
10.1007/BF02477785
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
It is shown that an electron transport reaction which is rate-limited by electron conduction 4 across a solid biological particle or membrane in accord with Ohm's law should have a first order rate constant approximately proportional to exp (Ea/KT), where T is absolute temperature, k is the Boltzmann constant and Ea is the activation energy for semiconduction in the solid particle, where resistance in the semiconductor is proportional to exp (Ea/KT). For two different preparations of cytochrome oxidase, this method yields an average value of Ea=0.27 ev, which agrees well with direct conductivity measurements on dry solid enzyme, which provide an average value of Ea=0.26 ev. Electron mobility in dry cytochrome oxidase is estimated to be approximately gm=10t-5 cm2 voltt-1 sect-1. Elovich decay of current in dry cytochrome oxidase was observed, which parallels the Elovich kinetics of cytochrome oxidase activity in yeast observed previously by M:uhlig (1966). Finally, the solid state kinetic theory is used to deduce that conduction of polarons may be involved in cytochrome oxidase activity (1 polaron=1 electron + 1 phonon), which provides a link with the solid state phonon phosphorylation theory of Straub. © 1968 N. Rashevsky.
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页码:761 / +
页数:1
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