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Frontiers of Physics

ISSN 2095-0462

ISSN 2095-0470(Online)

CN 11-5994/O4

邮发代号 80-965

2019 Impact Factor: 2.502

Frontiers of Physics in China  2008, Vol. 3 Issue (4): 457-488   https://doi.org/10.1007/s11467-008-0039-6
  本期目录
Influence of structure disorders and temperatures of systems on the bio-energy transport in protein molecules (II)
Influence of structure disorders and temperatures of systems on the bio-energy transport in protein molecules (II)
PANG Xiao-feng
Institute of Life Science and Technology, University of Electronic Science and Technology of Chengdu;International Center for Material Physics, Chinese Academy of Sciences;
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Abstract:The influence of molecular structure disorders and physiological temperature on the states and properties of solitons as transporters of bio-energy are numerically studied through the fourth-order Runge-Kutta method and a new theory based on my paper [Front. Phys. China, 2007, 2(4): 469]. The structure disorders include fluctuations in the characteristic parameters of the spring constant, dipole-dipole interaction constant and exciton-phonon coupling constant, as well as the chain-chain interaction coefficient among the three channels and ground state energy resulting from the disorder distributions of masses of amino acid residues and impurities. In this paper, we investigate the behaviors and states of solitons in a single protein molecular chain, and in ?-Helix protein molecules with three channels. In the former we prove first that the new solitons can move without dispersion, retaining its shape, velocity and energy in a uniform and periodic protein molecule. In this case of structure disorder, the fluctuations of the spring constant, dipole-dipole interaction constant and exciton-phonon coupling constant, as well as the ground state energy and the disorder distributions of masses of amino acid residues of the proteins influence the states and properties of motion of solitons. However, they are still quite stable and are very robust against these structure disorders, even in the presence of larger disorders in the sequence of masses, spring con-stants and coupling constants. Still, the solitons may disperse or be destroyed when the disorder distribution of the masses and fluctuations of structure parameters are quite great. If the effect of thermal perturbation of the environment on the soliton in nonuniform proteins is considered again, it is still thermally stable at the biological temperature of 300 K, and at the longer time period of 300 ps and larger spacing of 400 amino acids. The new soliton is also thermally stable in the case of motion over a long time period of 300 ps in the region of 300–320 K under the influence of the above structure disorders. However, the soliton disperses in the case of a higher temperature of 325 K and in larger structure disorders. Thus, we determine that the soliton’s lifetime and critical temperature are 300 ps and 300–320 K, respectively. These results are also consistent with analytical data obtained via quantum perturbed theory. In ?-helix protein molecules with three channels, results obtained show that these structure disorders and quantum fluctuations can change the states and features of solitons, decrease their amplitudes, energies and velocities, but they still cannot destroy the solitons, which can still transport steadily along the molecular chains while retaining energy and momentum when the quantum fluctuations are small, such as in structure disorders and quantum fluctuations of 0.67 < ?k < 2,
Graphic 出版日期: 2008-12-05
 引用本文:   
. Influence of structure disorders and temperatures of systems on the bio-energy transport in protein molecules (II)[J]. Frontiers of Physics in China, 2008, 3(4): 457-488.
PANG Xiao-feng. Influence of structure disorders and temperatures of systems on the bio-energy transport in protein molecules (II). Front. Phys. , 2008, 3(4): 457-488.
 链接本文:  
https://academic.hep.com.cn/fop/CN/10.1007/s11467-008-0039-6
https://academic.hep.com.cn/fop/CN/Y2008/V3/I4/457
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