Thermal activation and photoactivation of visual pigments

被引:69
作者
Ala-Laurila, P
Donner, K
Koskelainen, A
机构
[1] Aalto Univ, Biomed Engn Lab, Helsinki, Finland
[2] Univ Helsinki, Dept Biosci, FIN-00014 Helsinki, Finland
基金
芬兰科学院;
关键词
D O I
10.1529/biophysj.103.035626
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A visual pigment molecule in a retinal photoreceptor cell can be activated not only by absorption of a photon but also "spontaneously" by thermal energy. Current estimates of the activation energies for these two processes in vertebrate rod and cone pigments are on the order of 40-50 kcal/mol for activation by light and 20-25 kcal/mol for activation by heat, which has forced the conclusion that the two follow quite different molecular routes. It is shown here that the latter estimates, derived from the temperature dependence of the rate of pigment-initiated "dark events" in rods, depend on the unrealistic assumption that thermal activation of a complex molecule like rhodopsin (or even its 11-cis retinaldehyde chromophore) happens through a simple process, somewhat like the collision of gas molecules. When the internal energy present in the many vibrational modes of the molecule is taken into account, the thermal energy distribution of the molecules cannot be described by Boltzmann statistics, and conventional Arrhenius analysis gives incorrect estimates for the energy barrier. When the Boltzmann distribution is replaced by one derived by Hinshelwood for complex molecules with many vibrational modes, the same experimental data become consistent with thermal activation energies that are close to or even equal to the photoactivation energies. Thus activation by light and by heat may in fact follow the same molecular route, starting with 11-cis to all-trans isomerization of the chromophore in the native (resting) configuration of the opsin. Most importantly, the same model correctly predicts the empirical correlation between the wavelength of maximum absorbance and the rate of thermal activation in the whole set of visual pigments studied.
引用
收藏
页码:3653 / 3662
页数:10
相关论文
共 69 条
[31]  
GOVARDOVSKII V I, 1977, Zhurnal Evolyutsionnoi Biokhimii i Fiziologii, V13, P162
[32]   In search of the visual pigment template [J].
Govardovskii, VI ;
Fyhrquist, N ;
Reuter, T ;
Kuzmin, DG ;
Donner, K .
VISUAL NEUROSCIENCE, 2000, 17 (04) :509-528
[33]  
HAROSI FI, 1982, METHOD ENZYMOL, V81, P642
[34]   Energy, quanta, and vision [J].
Hecht, S ;
Shlaer, S ;
Pirenne, MH .
JOURNAL OF GENERAL PHYSIOLOGY, 1942, 25 (06) :819-840
[35]   Primary structure of a visual pigment in bullfrog green rods [J].
Hisatomi, O ;
Takahashi, Y ;
Taniguchi, Y ;
Tsukahara, Y ;
Tokunaga, F .
FEBS LETTERS, 1999, 447 (01) :44-48
[36]   NAMD2:: Greater scalability for parallel molecular dynamics [J].
Kalé, L ;
Skeel, R ;
Bhandarkar, M ;
Brunner, R ;
Gursoy, A ;
Krawetz, N ;
Phillips, J ;
Shinozaki, A ;
Varadarajan, K ;
Schulten, K .
JOURNAL OF COMPUTATIONAL PHYSICS, 1999, 151 (01) :283-312
[37]   Analysis of the mode-specific excited-state energy distribution and wavelength-dependent photoreaction quantum yield in rhodopsin [J].
Kim, JE ;
Tauber, MJ ;
Mathies, RA .
BIOPHYSICAL JOURNAL, 2003, 84 (04) :2492-2501
[38]   Measurement of thermal contribution to photoreceptor sensitivity [J].
Koskelainen, A ;
Ala-Laurila, P ;
Fyhrquist, N ;
Donner, K .
NATURE, 2000, 403 (6766) :220-223
[39]   The photobleaching sequence of a short-wavelength visual pigment [J].
Kusnetzow, A ;
Dukkipati, A ;
Babu, KR ;
Singh, D ;
Vought, BW ;
Knox, BW ;
Birge, RR .
BIOCHEMISTRY, 2001, 40 (26) :7832-7844
[40]   ANALYSIS OF ELECTRICAL NOISE IN TURTLE CONES [J].
LAMB, TD ;
SIMON, EJ .
JOURNAL OF PHYSIOLOGY-LONDON, 1977, 272 (02) :435-468