Melanopsin, the receptor molecule that underlies light sensitivity in mammalian ‘circadian’ receptors, is homologous to invertebrate rhodopsins and has been proposed to operate via a similar signaling pathway. Its downstream effectors, however, remain elusive. Melanopsin also expresses in two distinct light-sensitive cell types in the neural tube of amphioxus. This organism is the most basal extant chordate and can help outline the evolutionary history of different photoreceptor lineages and their transduction mechanisms; moreover, isolated amphioxus photoreceptors offer unique advantages, because they are unambiguously identifiable and amenable to single-cell physiological assays. In the present study whole-cell patch clamp recording, pharmacological manipulations, and immunodetection were utilized to investigate light transduction in amphioxus photoreceptors. A Gq was identified and selectively localized to the photosensitive microvillar membrane, while the pivotal role of phospholipase C was established pharmacologically. The photocurrent was profoundly depressed by IP3 receptor antagonists, highlighting the importance of IP3 receptors in light signaling. By contrast, surrogates of diacylglycerol (DAG), as well as poly-unsaturated fatty acids failed to activate a membrane conductance or to alter the light response. The results strengthen the notion that calcium released from the ER via IP3-sensitive channels may fulfill a key role in conveying - directly or indirectly - the melanopsin-initiated light signal to the photoconductance; moreover, they challenge the dogma that microvillar photoreceptors and phoshoinositide-based light transduction are a prerogative of invertebrate eyes.
References
[1]
Salvini-Plawen LV, Mayr E (1977) The evolution of photoreceptors and eyes. In: Hecht MK, Steere WC, Wallace B, editors. Evolut Biol. New York: Plenum Press. pp. 207–263. (Vol. 10).
[2]
Gehring WJ (2002) The genetic control of eye development and its implications for the evolution of the various eye-types. Int J Dev Biol 46: 65–73.
[3]
Gehring WJ, Ikeo K (1999) Pax 6: mastering eye morphogenesis and eye evolution. Trends Genet 15: 371–377.
[4]
Arendt D, Wittbrodt J (2001) Reconstructing the eyes of urbilateria. Phil Trans Roy Soc Lond B 356: 1545–1563.
[5]
Berson D, Dunn F, Takao M (2002) Phototransduction by retinal ganglion cells that set the circadian clock. Science 295: 1070–1073.
Provencio I, Jiang G, De Grip W, Hayes W, Rollag M (1998) Melanopsin: an opsin in melanophores, brain, and eye. Proc Natl Acad Sci USA 95: 340–345.
[8]
Sekaran S, Lall GS, Ralphs KL, Wolstenholme AJ, Lucas RJ, et al. (2007) 2-Aminoethoxydiphenylborane is an acute inhibitor of directly photosensitive retinal ganglion cell activity in vitro and in vivo. J Neurosci 27: 3981–3986.
[9]
Graham DM, Wong KY, Shapiro P, Frederick C, Pattabiraman K, et al. (2008) Melanopsin ganglion cells use a membrane associated rhabdomeric phototransduction cascade. J Neurophysiol 99: 2522–2532.
[10]
Putnam NH, Butts T, Ferrier DE, Furlong RF, Hellsten U, et al. (2008) The amphioxus genome and the evolution of chordate karyotype. Nature 453: 1064–1072.
[11]
Koyanagi M, Kubokawa K, Tsukamoto H, Shichida Y, Terakita A (2005) Cephalochordate Melanopsin: Evolutionary linkage between invertebrate visual cells and vertebrate photosensitive retinal ganglion cells. Curr Biol 15: 1065–1069.
[12]
Eakin RM, Westfall JA (1962) Fine structure of photoreceptors in Amphioxus. J Ultra Res 6: 531–539.
[13]
Watanabe T, Yoshida M (1986) Morphological and histochemical studies on Joseph cells of amphioxus, Branchiostoma belcheri Gray. Exp Biol 46: 67–73.
[14]
Ruiz S, Anandon R (1991) Some considerations on the fine structure of rhabdomeric photoreceptors in the amphioxus, Branchiostoma lanceolatum (Cephalochordata). J Hirnforsch 32: 159–164.
[15]
Gomez MP, Angueyra JM, Nasi E (2009) Light-transduction in melanopsin-expressing photoreceptors of Amphioxus. Proc Natl Acad Sci 106: 9081–9086.
[16]
Fahrenkrug J, Falktoft B, Georg B, Rask L (2009) N-Linked deglycosylated melanopsin retains its responsiveness to light. Biochemistry 48: 5142–5148.
[17]
Smith RJ, Sam LM, Justen JM, Bundy GL, Bala GA, et al. (1990) Receptor-coupled signal transduction in human polymorphonuclear neutrophils: effects of a novel inhibitor of phospholipase C-dependent processes on cell responsiveness. J Pharmacol Exp Ther 253: 688–97.
[18]
Thompson AK, Mostafapur SP, Delinger LC, Bleasdale JE, Fisher SK (1991) The aminosteroid U-73122 inhibits muscarinic receptor sequestration and phosphoinositide hydrolysis in Sk-N-SH neuroblastoma cells. J Biol Chem 266: 23856–23862.
[19]
Nagy K, Contzen K (1997) Inhibition of phospholipase C by U73122 blocks one component of the receptor current in Limulus photoreceptor. Vis Neurosci 14: 995–998.
[20]
Maruyama T, Kanaji T, Nakade S, Kanno T, Mikoshiba K (1997) 2APB, 2-aminoethoxydiphenyl borate, a membrane-penetrable modulator of Ins(l,4,5)P3-induced Ca2+ release. J Biochem 122: 498–505.
[21]
Gregory RB, Rychkov? G, Barritt GJ (2001) Evidence that 2-aminoethyl diphenylborate is a novel inhibitor of store operated Ca2+ channels in liver cells, and acts through a mechanism which does not involve inositol trisphosphate receptors. Biochem J 354: 285–290.
[22]
Bilmen JG, Wootton LL, Godfrey RE, Smart OS, Michelangeli F (2002) Inhibition of SERCA Ca2+ pumps by 2-aminoethoxydiphenyl borate (2-APB): 2-APB reduces both Ca2+ binding and phosphoryl transfer from ATP, by interfering with the pathway leading to the Ca2+-binding sites. Eur J Biochem 269: 3678–3687.
[23]
Hill TD, Berggren P-O, Boynton AL (1987) Heparin inhibits inositol trisphosphate-induced calcium release from permeabilized rat liver cells. Biochem Biophys Res Commun 149: 897–901.
[24]
Newton AC (1997) Regulation of protein kinase C. Curr Opin Cell Biol 9: 161–167.
[25]
Gomez MP, Nasi E (1998) Membrane current induced by protein kinase C activators in rhabdomeric photoreceptors: implications for visual excitation. J Neurosci 18: 5253–5263.
Johnson EC, Robinson PR, Lisman JE (1986) Cyclic GMP is involved in the excitation of invertebrate photoreceptors. Nature 324: 468–70.
[30]
Robinson PR, Cote RH (1989) Characterization of guanylate cyclase in squid photoreceptors. Vis Neurosci 3: 1–7.
[31]
Brown JE, Kelman ES (1996) Ca2+ induces an increase in cGMP-phosphodiesterase activity in squid retinal photoreceptors. Biochem Biophys Res Commun 224: 684–689.
[32]
Fesenko EE, Kolesnikov SS, Lyubarsky AL (1985) Induction by cyclic GMP of cationic conductance in plasma membrane of retinal rod outer segment. Nature 313: 310–313.
[33]
Nakamura T, Gold GH (1987) A cyclic nucleotide-gated conductance in olfactory receptor cilia. Nature 325: 442–444.
[34]
Qiu X, Kumbalasiri T, Carlson SM, Wong KY, Krishna V, et al. (2005) Induction of photosensitivity by heterologous expression of melanopsin. Nature 433: 745–749.
[35]
Panda SK, Nayak B, Campo JR, Walker JB, Hogenesch JB, et al. (2005) Illumination of the melanopsin signaling pathway. Science 307: 600–604.
[36]
Melyan Z, Tarttelin EE, Bellingham J, Lucas RJ, Hankins MW (2005) Addition of human melanopsin renders mammalian cells photoresponsive. Nature 433: 741–745.
[37]
Newman LA, Walker MT, Brown RL, Cronin TW, Robinson PR (2003) Melanopsin forms a functional short-wavelength photopigment. Biochemistry 42: 12734–12738.
[38]
Khorana HG, Knox BE, Nasi E, Swanson R (1988) Expression of a bovine rhodopsin gene in Xenopus oocytes: demonstration of light-dependent ionic currents. Proc Natl Acad Sci USA 85: 7917–7921.
[39]
Do MTH, Kang SH, Xue T, Zhong H, Liao HW, et al. (2009) Photon capture and signalling by melanopsin retinal ganglion cells. Nature 457: 281–287.
[40]
Sekaran S, Russell GF, Lucas RJ, Hankins MW (2003) Calcium imaging reveals a network of intrinsically light-sensitive inner-retinal neurons. Curr Biol 13: 1290–1298.
[41]
Hartwick A, Bramley JR, Yu J, Stevens KT, Allen CN, et al. (2007) Light-Evoked Calcium Responses of Isolated Melanopsin-Expressing Retinal Ganglion Cells. J Neurosci 27: 13468–13480.
[42]
Peirson SN, Oster H, Jones SL, Leitges M, Hankins MW, et al. (2007) Microarray analysis and functional genomics identify novel components of melanopsin signaling. Curr Biol 17: 1363–1372.
[43]
Warren EJ, Allen CN, Brown RL, Robinson DW (2006) The light-activated signaling pathway in SCN-projecting rat retinal ganglion cells. Eu J Neurosci 23: 2477–2487.
[44]
Nakao T (1964) On the fine structure of the amphioxus photoreceptor. Tohoku J Exp Med 82: 349–63.
[45]
Xue T, Do MTH, Riccio A, Jiang Z, Hsieh J, et al. (2011) Melanopsin signalling in mammalian iris and retina. Nature 479: 67–73.
[46]
Fein A (2003) Inositol 1,4,5-trisphosphate-induced calcium release is necessary for generating the entire light response of limulus ventral photoreceptors. J Gen Physiol 121: 441–9.
[47]
Acharya JK, Jalink K, Hardy RW, Hartenstein V, Zuker CS (1997) InsP3 receptor is essential for growth and differentiation but not for vision in Drosophila. Neuron 18: 881–887.
[48]
Raghu P, Colley NJ, Webel R, James T, Hasan G, et al. (2000) Normal Phototransduction in Drosophila Photoreceptors Lacking an InsP3 Receptor Gene. Mol Cell Neurosci 15: 429–445.
[49]
Koyanagi M, Terakita A (2008) Gq-coupled Rhodopsin Subfamily Composed of Invertebrate Visual Pigment and Melanopsin. Photochem Photobiol 84: 1024–1030.
[50]
Terakita A, Tsukamoto H, Koyanagi M, Sugahara M, Yamashita T, et al. (2008) Expression and comparative characterization of Gq-coupled invertebrate visual pigments and melanopsin. J Neurochem 105: 883–890.
[51]
Plachetzki DC, Serb JM, Oakley TH (2005) New insights into the evolutionary history of photoreceptor cells. Trends Ecol Evolut 20: 465–467.
[52]
Nasi E, Gomez MP (2009) Melanopsin-mediated light-sensing in amphioxus: a glimpse of the microvillar photoreceptor lineage within the deuterostomia. Communicative Integrative Biol 2: 441–443.