Optical switches and triggers for the manipulation of ion channels and pores

被引:53
作者
Gorostiza, Pau
Isacoff, Ehud
机构
[1] Univ Calif Berkeley, Lawrence Berkeley Lab, Div Mat Sci, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Lawrence Berkeley Lab, Phys Biosci Div, Berkeley, CA 94720 USA
[3] Univ Calif Berkeley, Dept Mol & Cell Biol, Berkeley, CA 94720 USA
关键词
D O I
10.1039/b710287a
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Like fluorescence sensing techniques, methods to manipulate proteins with light have produced great advances in recent years. Ion channels have been one of the principal protein targets of photoswitched manipulation. In combination with fluorescence detection of cell signaling, this has enabled non-invasive, all-optical experiments on cell and tissue function, both in vitro and in vivo. Optical manipulation of channels has also provided insights into the mechanism of channel function. Optical control elements can be classified according to their molecular reversibility as non-reversible phototriggers where light breaks a chemical bond ( e. g. caged ligands) and as photoswitches that reversibly photoisomerize. Synthetic photoswitches constitute nanoscale actuators that can alter channel function using three different strategies. These include ( 1) nanotoggles, which are tethered photoswitchable ligands that either activate channels (agonists) or inhibit them (blockers or antagonists), ( 2) nanokeys, which are untethered ( freely diffusing) photoswitchable ligands, and ( 3) nanotweezers, which are photoswitchable crosslinkers. The properties of such photoswitches are discussed here, with a focus on tethered photoswitchable ligands. The recent literature on optical manipulation of ion channels is reviewed for the different channel families, with special emphasis on the understanding of ligand binding and gating processes, applications in nanobiotechnology, and with attention to future prospects in the field.
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页码:686 / 704
页数:19
相关论文
共 201 条
[71]   Functional characterization of P2X3 receptors fused with fluorescent proteins [J].
Grote, A ;
Boldogkoi, Z ;
Zimmer, A ;
Steinhäuser, C ;
Jabs, R .
MOLECULAR MEMBRANE BIOLOGY, 2005, 22 (06) :497-506
[72]   Stochastic sensing of organic analytes by a pore-forming protein containing a molecular adapter [J].
Gu, LQ ;
Braha, O ;
Conlan, S ;
Cheley, S ;
Bayley, H .
NATURE, 1999, 398 (6729) :686-690
[73]  
GUGLIELMETTI R, 1990, STUD ORG CHEM, V40, P314
[74]   LIGHT-FLASH PHYSIOLOGY WITH SYNTHETIC PHOTOSENSITIVE COMPOUNDS [J].
GURNEY, AM ;
LESTER, HA .
PHYSIOLOGICAL REVIEWS, 1987, 67 (02) :583-617
[75]   Coumarinylmethyl esters for ultrafast release of high concentrations of cyclic nucleotides upon one- and two-photon photolysis [J].
Hagen, V ;
Dekowski, B ;
Nache, V ;
Schmidt, R ;
Geissler, D ;
Lorenz, D ;
Eichhorst, J ;
Keller, S ;
Kaneko, H ;
Benndorf, K ;
Wiesner, B .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2005, 44 (48) :7887-7891
[76]   [7-(dialkylamino)coumarin-4-yl]methyl-caged compounds as ultrafast and effective long-wavelength phototriggers of 8-bromo-substituted cyclic nucleotides [J].
Hagen, V ;
Frings, S ;
Wiesner, B ;
Helm, S ;
Kaupp, UB ;
Bendig, J .
CHEMBIOCHEM, 2003, 4 (05) :434-442
[77]   Caged compounds of hydrolysis-resistant analogues of cAMP and cGMP: Synthesis and application to cyclic nucleotide-gated channels [J].
Hagen, V ;
Dzeja, C ;
Frings, S ;
Bendig, J ;
Krause, E ;
Kaupp, UB .
BIOCHEMISTRY, 1996, 35 (24) :7762-7771
[78]   Novel caged compounds of hydrolysis-resistant 8-Br-cAMP and 8-Br-cGMP: photolabile NPE esters [J].
Hagen, V ;
Dzeja, C ;
Bendig, J ;
Baeger, I ;
Kaupp, UB .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY B-BIOLOGY, 1998, 42 (01) :71-78
[79]  
Hagen V, 2002, ANGEW CHEM INT EDIT, V41, P3625, DOI 10.1002/1521-3773(20021004)41:19<3625::AID-ANIE3625>3.0.CO
[80]  
2-J