CYTOSOLIC CALCIUM TRANSIENTS - SPATIAL LOCALIZATION AND ROLE IN DROSOPHILA PHOTORECEPTOR CELL-FUNCTION

Citation
R. Ranganathan et al., CYTOSOLIC CALCIUM TRANSIENTS - SPATIAL LOCALIZATION AND ROLE IN DROSOPHILA PHOTORECEPTOR CELL-FUNCTION, Neuron, 13(4), 1994, pp. 837-848
Citations number
63
Categorie Soggetti
Neurosciences
Journal title
NeuronACNP
ISSN journal
08966273
Volume
13
Issue
4
Year of publication
1994
Pages
837 - 848
Database
ISI
SICI code
0896-6273(1994)13:4<837:CCT-SL>2.0.ZU;2-I
Abstract
Drosophila phototransduction is a phosphoinositide-mediated and Ca2+-r egulated signaling cascade ideal for the dissection of feedback regula tory mechanisms. To study the roles of intracellular Ca2+ ([Ca2+](i)) in this process, we developed novel techniques for the measurement of [Ca2+](i) in intact photoreceptors. We genetically engineered flies th at express a UV-specific rhodopsin in place of the normal rhodopsin, s o that long wavelength light can be used to image [Ca2+](i) changes wh ile minimally exciting the photoreceptor cells. We show that activatio n with UV generates [Ca2+](i) increases that are spatially localized t o the rhabdomeres and that are entirely dependent on the influx of ext racellular Ca2+. Application of intracellular Ca2+ chelators of varyin g affinities demonstrates that the Ca2+ influx initially generates a l arge-amplitude transient that is crucial for negative regulation. Inte rnal Ca2+ stores were revealed by discharging them with thapsigargin. But, in contrast to proposals that IP3-sensitive stores mediate photot ransduction, thapsigargin does not mimic or acutely interfere with pho toexcitation. Finally, we identify a photoreceptor-specific PKC as ess ential for normal kinetics of [Ca2+](i) recovery.