How photons start vision

被引:257
作者
Baylor, D
机构
[1] Department of Neurobiology, Sherman Fairchild Science Building, Stanford Univ. School of Medicine, Stanford
关键词
D O I
10.1073/pnas.93.2.560
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
Recent studies have elucidated how the absorption of a photon in a rod or cone cell leads to the generation of the amplified neural signal that is transmitted to higher-order visual neurons, Photoexcited visual pigment activates the GTP-binding protein transducin, which in turn stimulates cGMP phosphodiesterase. This enzyme hydrolyzes cGMP, allowing cGMP-gated cationic channels in the surface membrane to close, hyperpolarize the cell, and modulate transmitter release at the synaptic terminal, The kinetics of reactions in the cGMP cascade limit the temporal resolution of the visual system as a whole, while statistical fluctuations in the reactions limit the reliability of detection of dim light, Much interest now focuses on the processes that terminate the light response and dynamically regulate amplification in the cascade, causing the single photon response to be reproducible and allowing the cell to adapt in background light. A light-induced fall in the internal free Ca2+ concentration coordinates negative feedback control of amplification, The fall in Ca2+ stimulates resynthesis of cGMP, antagonizes rhodopsin's catalytic activity, and increases the affinity of the light-regulated cationic channel for cGMP, We are using physiological methods to study the molecular mechanisms that terminate the flash response and mediate adaptation. One approach is to observe transduction in truncated, dialyzed photoreceptor cells whose internal Ca2+ and nucleotide concentrations are under experimental control and to which exogenous proteins can be added. Another approach is to observe transduction in transgenic mouse rods in which specific proteins within the cascade are altered or deleted.
引用
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页码:560 / 565
页数:6
相关论文
共 44 条
[11]   2 COMPONENTS OF ELECTRICAL DARK NOISE IN TOAD RETINAL ROD OUTER SEGMENTS [J].
BAYLOR, DA ;
MATTHEWS, G ;
YAU, KW .
JOURNAL OF PHYSIOLOGY-LONDON, 1980, 309 (DEC) :591-621
[12]   EXTRUSION OF CALCIUM FROM ROD OUTER SEGMENTS IS DRIVEN BY BOTH SODIUM AND POTASSIUM GRADIENTS [J].
CERVETTO, L ;
LAGNADO, L ;
PERRY, RJ ;
ROBINSON, DW ;
MCNAUGHTON, PA .
NATURE, 1989, 337 (6209) :740-743
[13]   MECHANISMS OF RHODOPSIN INACTIVATION IN-VIVO AS REVEALED BY A COOH-TERMINAL TRUNCATION MUTANT [J].
CHEN, J ;
MAKINO, CL ;
PEACHEY, NS ;
BAYLOR, DA ;
SIMON, MI .
SCIENCE, 1995, 267 (5196) :374-377
[14]   EVIDENCE FOR THE PROLONGED PHOTOACTIVATED LIFETIME OF AN ANALOG VISUAL PIGMENT CONTAINING 11-CIS 9-DESMETHYLRETINAL [J].
CORSON, DW ;
CORNWALL, MC ;
PEPPERBERG, DR .
VISUAL NEUROSCIENCE, 1994, 11 (01) :91-98
[15]   THE HUMAN PHOTORECEPTOR MEMBRANE GUANYLYL CYCLASE, RETGC, IS PRESENT IN OUTER SEGMENTS AND IS REGULATED BY CALCIUM AND A SOLUBLE ACTIVATOR [J].
DIZHOOR, AM ;
LOWE, DG ;
OLSHEVSKAYA, EV ;
LAURA, RP ;
HURLEY, JB .
NEURON, 1994, 12 (06) :1345-1352
[16]   PURIFICATION AND PHYSIOLOGICAL EVALUATION OF A GUANYLATE-CYCLASE ACTIVATING PROTEIN FROM RETINAL RODS [J].
GORCZYCA, WA ;
GRAYKELLER, MP ;
DETWILER, PB ;
PALCZEWSKI, K .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (09) :4014-4018
[17]   UNDERSTANDING ORGANISATION OF RETINAL RECEPTOR SYNAPSES [J].
GRAY, EG ;
PEASE, HL .
BRAIN RESEARCH, 1971, 35 (01) :1-&
[18]   THE CALCIUM FEEDBACK SIGNAL IN THE PHOTOTRANSDUCTION CASCADE OF VERTEBRATE RODS [J].
GRAYKELLER, MP ;
DETWILER, PB .
NEURON, 1994, 13 (04) :849-861
[19]   THE EFFECT OF RECOVERIN-LIKE CALCIUM-BINDING PROTEINS ON THE PHOTORESPONSE OF RETINAL RODS [J].
GRAYKELLER, MP ;
POLANS, AS ;
PALCZEWSKI, K ;
DETWILER, PB .
NEURON, 1993, 10 (03) :523-531
[20]   Energy, quanta, and vision [J].
Hecht, S ;
Shlaer, S ;
Pirenne, MH .
JOURNAL OF GENERAL PHYSIOLOGY, 1942, 25 (06) :819-840