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Abstract:

Latent inhibition (LI) is a decrement in learning performance that results from the nonreinforced pre-exposure of the to-be-conditioned stimulus, in both vertebrates and invertebrates. In vertebrates, LI development involves dopamine and serotonin; in invertebrates there is yet no information. We studied differential olfactory conditioning of the proboscis extension response in the honeybee Apis mellifera, and we compared LI in individuals treated with antagonists of biogenic amines (dopamine, octopamine, and serotonin). An antagonist of octopamine receptors and two antagonists of serotonin receptors showed LI disruption. We thus provide evidence that serotonin would participate in the regulation of LI in honeybees. © 2012 Cold Spring Harbor Laboratory Press.

Registro:

Documento: Artículo
Título:Latent inhibition in an insect: The role of aminergic signaling
Autor:Fernández, V.M.; Giurfa, M.; Devaud, J.-M.; Farina, W.M.
Filiación:Departamento de Biodiversidad Y Biología Experimental, Universidad de Buenos Aires, Ciudad Universitaria, 1428, Buenos Aires, Argentina
IFIBYNE, CONICET, Universidad de Buenos Aires, 1428, Buenos Aires, Argentina
Université de Toulouse, UPS, Centre de Recherches Sur la Cognition Animale, F-31062 Toulouse Cedex 9, France
CNRS, Centre de Recherches Sur la Cognition Animale, F-31062 Toulouse Cedex 9, France
Palabras clave:dopamine; octopamine; octopamine receptor; receptor; serotonin; serotonin receptor; unclassified drug; aminergic signaling; Apis mellifera; article; controlled study; latent inhibition; learning; nonhuman; olfactory discrimination; priority journal; signal transduction; Analysis of Variance; Animals; Bees; Conditioning, Classical; Dibenzazepines; Dopamine; Dopamine Antagonists; Ethylketocyclazocine; Extinction, Psychological; Fluphenazine; Habituation, Psychophysiologic; Histamine H1 Antagonists; Imidazoles; Inhibition (Psychology); Ketanserin; Methysergide; Odors; Serotonin; Serotonin Antagonists; Smell
Año:2012
Volumen:19
Número:12
Página de inicio:593
Página de fin:597
DOI: http://dx.doi.org/10.1101/lm.028167.112
Título revista:Learning and Memory
Título revista abreviado:Learn. Mem.
ISSN:10720502
CODEN:LEMEF
CAS:dopamine, 51-61-6, 62-31-7; octopamine, 104-14-3; serotonin, 50-67-9; Dibenzazepines; Dopamine, VTD58H1Z2X; Dopamine Antagonists; Ethylketocyclazocine, 58640-84-9; Fluphenazine, S79426A41Z; Histamine H1 Antagonists; Imidazoles; Ketanserin, 97F9DE4CT4; Methysergide, XZA9HY6Z98; Serotonin, 333DO1RDJY; Serotonin Antagonists; epinastine, Q13WX941EF; ketazocine, 6IO4IG518S
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_10720502_v19_n12_p593_Fernandez

Referencias:

  • Abramson, C.I., Bitterman, M.E., Latent inhibition in honeybees (1986) Animal Learning and Behavior, 14 (2), pp. 184-189
  • Ackil, J., Mellgren, R.L., Halgren, C., Frommer, S.P., Effects of CS pre-exposure on avoindance learning in rats with hippocampal lesions (1969) J Comp Physiol Psychol, 69, pp. 739-747
  • Bicker, G., Menzel, R., Chemical codes for the control of behaviour in arthropods (1989) Nature, 337 (6202), pp. 33-39. , DOI 10.1038/337033a0
  • Bills, C., Schachtman, T.R., Serfozo, P., Spooren, W.P.J.M., Gasparini, F., Simonyi, A., Effects of metabotropic glutamate receptor 5 on latent inhibition in conditioned taste aversion (2005) Behavioural Brain Research, 157 (1), pp. 71-78. , DOI 10.1016/j.bbr.2004.06.011, PII S0166432804002414
  • Bitterman, M.E., Menzel, R., Fietz, A., Schaefer, S., Classical conditioning of proboscis extension in honeybees (1983) J Comp Physiol A, 97, pp. 107-119
  • Blenau, W., Baumann, A., Molecular and pharmacological properties of insect biogenic amine receptors: Lessons from Drosophila melanogaster and Apis mellifera (2001) Archives of Insect Biochemistry and Physiology, 48 (1), pp. 13-38. , DOI 10.1002/arch.1055
  • Boughner, R.L., Papini, M.R., Appetitive latent inhibition in rats: Preexposure performance does not predict conditioned performance (2006) Behavioural Processes, 72 (1), pp. 42-51. , DOI 10.1016/j.beproc.2005.11.015, PII S037663570500238X
  • Chamizo, M., Características experimentales y neurobiología de la inhibición latente en el paradigma de aprendizaje aversivo gustativo (2006) Psicológica, 27, pp. 169-194
  • Chandra, S.B.C., Hosler, J.S., Smith, B.H., Heritable variation for latent inhibition and its correlation with reversal learning in honeybees (Apis mellifera) (2000) J Comp Psychol, 114, pp. 86-97
  • Chandra, S.B.C., Wright, G.A., Smith, B.H., Latent inhibition in the honey bee, Apis mellifera: Is it a unitary phenomenon? (2010) Anim Cogn, 10, pp. 805-815
  • Colas, J.F., Launay, J.M., Kelelermann, O., Rosay, P., Maroteaux, L., Drosophila 5-HT2 serotonin receptor: Coexporession with fushi-tarazu during segmentation (1995) Proc Natl Acad Sci, 92, pp. 5441-5445
  • Degen, J., Gewecke, M., Roeder, T., Octopamine receptors in the honey bee and locust nervous system: Pharmacological similarities between homologous receptors of distantly related species (2000) British Journal of Pharmacology, 130 (3), pp. 587-594
  • Devaud, J.-M., Blunk, A., Podufall, J., Giurfa, M., Grunewald, B., Using local anaesthetics to block neuronal activity and map specific learning tasks to the mushroom bodies of an insect brain (2007) European Journal of Neuroscience, 26 (11), pp. 3193-3206. , DOI 10.1111/j.1460-9568.2007.05904.x
  • Dibattista, D., Hollis-Walker, L., Hague, L., The CS-Preexposure Effect in Conditioned Taste-Aversion Learning in Golden Hamsters (2003) Journal of General Psychology, 130 (4), pp. 446-461
  • Erber, J., Kloppenburg, P., Scheidler, A., Neuromodulation by serotonin and octopamine in the honeybee: Behaviour, neuroanatomy and electrophysiology (1993) Experientia, 49 (12), pp. 1073-1083. , DOI 10.1007/BF01929916
  • Farooqui, T., Robinson, K., Vaessin, H., Smith, B.H., Modulation of early olfactory processing by an octopaminergic reinforcement pathway in the honeybee (2003) Journal of Neuroscience, 23 (12), pp. 5370-5380
  • Ferguson, H.J., Cobey, S., Smith, B.H., Sensitivity to a change in reward is heritable in the honeybee, Apis mellifera (2001) Animal Behaviour, 61 (3), pp. 527-534. , DOI 10.1006/anbe.2000.1635
  • Fernández, V.M., Arenas, A., Farina, W.M., Volatile exposure within the honeybee hive and its effect on olfactory discrimination (2009) J Comp Physiol A, 195, pp. 759-768
  • Ferrari, M.C.O., Chivers, D.P., Learning about non-predators and safe places: The forgotten elements of risk assessment (2011) Anim Cogn, 14, pp. 309-316
  • Gaddes, W.H., Edgell, D., (1994) Learning Disabilities and Brain Function: A Neuropsychological Approach, , Springer-Verlag, New York
  • Giurfa, M., Associative learning: The instructive function of biogenic amines (2006) Curr Biol, 16, pp. 892-895
  • Giurfa, M., Behavioral and neural analysis of associative learning in the honeybee: A taste from the magic well (2007) Journal of Comparative Physiology A: Neuroethology, Sensory, Neural, and Behavioral Physiology, 193 (8), pp. 801-824. , DOI 10.1007/s00359-007-0235-9
  • Giurfa, M., Sandoz, J.C., Invertebrate learning and memory: Fifty years of olfactory conditioning of the proboscis extension response in honeybees (2012) Learn Mem, 19, pp. 54-66
  • Hammer, M., An identified neuron mediates the unconditioned stimulus in associative olfactory learning in honeybees (1993) Nature, 366 (6450), pp. 59-63. , DOI 10.1038/366059a0
  • Hammer, M., Menzel, R., Learning and memory in the honeybee (1995) J Neurosci, 15, pp. 1617-1630
  • Hammer, M., Menzel, R., Multiple sites of associative odor learning as revealed by local brain microinjections of octopamine in honeybees (1998) Learning and Memory, 5 (1-2), pp. 146-156
  • Heisenberg, M., Mushroom body memoir: From maps to models (2003) Nature Reviews Neuroscience, 4 (4), pp. 266-275. , DOI 10.1038/nrn1074
  • Il-han, J., Janes, T., Lukowiak, K., The role of serotonin in the enhancement of long-term memory resulting from predator detection in Lymnaea (2010) J Exp Biol, 213, pp. 3603-3614
  • James, W., (1890) Principles of Psychology, , Henry Holt, New York
  • Kravitz, E., Hormonal control of behavior: Amines and the biasing of behavioral output in lobsters (1988) Science, 241, pp. 1775-1781
  • Kravitz, E.A., Huber, R., Aggression in invertebrates (2003) Current Opinion in Neurobiology, 13 (6), pp. 736-743. , DOI 10.1016/j.conb.2003.10.003
  • Kreissl, S., Eichmuller, S., Bicker, G., Rapus, J., Eckert, M., Octopamine-like immunoreactivity in the brain and subesophageal ganglion of the honeybee (1994) Journal of Comparative Neurology, 348 (4), pp. 583-595
  • Loy, I., Fernandez, V., Acebes, F., Conditioning of tentacle lowering in the snail (Helix aspersa): Acquisition, latent inhibition, overshadowing, second-order conditioning, and sensory preconditioning (2006) Learning and Behavior, 34 (3), pp. 305-314
  • Lubow, R.E., Latent inhibition (1973) Psychol Bull, 79, pp. 398-408
  • Lubow, R.E., Moore, A.U., Latent inhibition: The effect of non-reinforced preexposure to the conditioned stimulus (1959) J Comp Physiol Psychol, 52, pp. 415-419
  • Lubow, R., Weiner, I., (2010) Latent Inhibition: Cognition, Neuroscience and Application to Schizophrenia, , Cambridge University Press, Cambridge, UK
  • Lubow, R.E., Weiner, I., Schnur, P., Conditioned attention theory (1981) The Psychology of Learning and Motivation, 15, pp. 1-49. , (ed. GH Bower), Academic Press, New York
  • Mackintosh, N.J., A theory of attention: Variations in the associability of stimuli with reinforcement (1975) Psychol Rev, 82, pp. 276-298
  • Menzel, R., Memory dynamics in the honeybee (1999) Journal of Comparative Physiology - A Sensory, Neural, and Behavioral Physiology, 185 (4), pp. 323-340. , DOI 10.1007/s003590050392
  • Menzel, R., Erber, J., Learning and memory in the honeybee (1978) Scient Amer, 239, pp. 80-87
  • Menzel, R., Heyne, A., Kinzel, C., Gerber, B., Fiala, A., Pharmacological dissociation between the reinforcing, sensitizing, and response-releasing functions of reward in honeybee classical conditioning (1999) Behavioral Neuroscience, 113 (4), pp. 744-754. , DOI 10.1037/0735-7044.113.4.744
  • Mercer, A.E., Menzel, R., The effect of biogenic amines on conditioned and unconditioned responses to olfactory stimuli in the honeybee Apis mellifera (1982) J Comp Physiol A, 145, pp. 363-368
  • Mizunami, M., Matsumoto, Y., Roles of aminergic neurons in formation and recall of associative memory in crickets (2010) Front Behav Neurosci, 4, pp. 1-11
  • Moore, J.W., Stickney, K.J., Formation of attentional-associative networks in real time: Role of the hippocampus and implications for conditioning (1980) Physiological Psychology, 8 (2), pp. 207-217
  • Pankiw, T., Page Jr., R.E., Effect of pheromones, hormones, and handling on sucrose response thresholds of honey bees (Apis mellifera L.) (2003) Journal of Comparative Physiology A: Neuroethology, Sensory, Neural, and Behavioral Physiology, 189 (9), pp. 675-684. , DOI 10.1007/s00359-003-0442-y
  • Pavlov, I.P., (1927) Lectures on Conditioned Reflexes, , International Publishers, New York
  • Reiss, S., Wagner, A.R., CS habituation produces a "latent inhibition effect" but no active "conditioned inhibition" (1972) Learn Motiv, 3, pp. 237-245
  • Rescorla, R.A., Pavlovian conditioned inhibition (1969) Psychol Bull, 72, pp. 77-94
  • Rescorla, R.A., Summation and retardation tests of latent inhibition (1971) J Comp Physiol Psychol, 75, pp. 77-81
  • Roeder, T., Octopamine in invertebrates (1999) Progress in Neurobiology, 59 (5), pp. 533-561. , DOI 10.1016/S0301-0082(99)00016-7, PII S0301008299000167
  • Roeder, T., Tyramine and octopamine: Ruling behavior and metabolism (2005) Annu Rev Entomol, 50, pp. 447-477
  • Roeder, T., Degen, J., Gewecke, M., Epinastine, a highly specific antagonist of insect neuronal octopamine receptors (1998) European Journal of Pharmacology, 349 (2-3), pp. 171-177. , DOI 10.1016/S0014-2999(98)00192-7, PII S0014299998001927
  • Sandoz, J.C., Laloi, D., Odoux, J.F., Pham-Delegue, M.H., Olfactory information transfer in the honeybee: Compared efficiency of classical conditioning and early exposure (2000) Animal Behaviour, 59 (5), pp. 1025-1034. , DOI 10.1006/anbe.2000.1395
  • Scheiner, R., Baumann, A., Blenau, W., Aminergic control and modulation of honeybee behaviour (2006) Current Neuropharmacology, 4 (4), pp. 259-276. , http://www.ingentaconnect.com/content/ben/cn/2006/00000004/00000004/ art00001, DOI 10.2174/157015906778520791
  • Schmajuk, N.A., Moore, J.W., Effects of hippocampal manipulations on the classically conditioned nictitating membrane response: Simulations by an attentional-associative model (1989) Behavioural Brain Research, 32 (2), pp. 173-189. , DOI 10.1016/S0166-4328(89)80083-X
  • Schroll, C., Riemensperger, T., Bucher, D., Ehmer, J., Voller, T., Erbguth, K., Gerber, B., Fiala, A., Light-Induced Activation of Distinct Modulatory Neurons Triggers Appetitive or Aversive Learning in Drosophila Larvae (2006) Current Biology, 16 (17), pp. 1741-1747. , DOI 10.1016/j.cub.2006.07.023, PII S0960982206018549
  • Schroter, U., Malun, D., Menzel, R., Innervation pattern of suboesophageal ventral unpaired median neurones in the honeybee brain (2007) Cell and Tissue Research, 327 (3), pp. 647-667. , DOI 10.1007/s00441-006-0197-1
  • Schurmann, F.W., Klemm, N., Serotonin-immunoreactive neurons in the brain of the honeybee (1984) Journal of Comparative Neurology, 225 (4), pp. 570-580
  • Sinakevitch, I., Mustard, J.A., Smith, B.H., Distribution of the octopamine receptor AmOA1 in the honey bee brain (2011) PLoS One, 6, pp. e14536. , doi: 10.1371/journal.pone.0014536
  • Smith, B.H., Analysis of interaction in binary odorant mixtures (1998) Physiology and Behavior, 65 (3), pp. 397-407. , DOI 10.1016/S0031-9384(98)00142-5, PII S0031938498001425
  • Swerdlow, N.R., Stephany, N., Wasserman, L.C., Talledo, J., Sharp, R., Auerbach, P.P., Dopamine agonists disrupt visual latent inhibition in normal males using a within-subject paradigm (2003) Psychopharmacology, 169 (3-4), pp. 314-320. , DOI 10.1007/s00213-002-1325-6
  • Takeda, K., Classical conditioned response in the honeybee (1961) J Insect Physiol, 6, pp. 168-179
  • Tierney, A.J., Structure and function of invertebrate 5-HT receptors: A review (2001) Comparative Biochemistry and Physiology - A Molecular and Integrative Physiology, 128 (4), pp. 791-804. , DOI 10.1016/S1095-6433(00)00320-2, PII S1095643300003202
  • Vergoz, V., Roussel, E., Sandoz, J.C., Giurfa, M., Aversive learning in honeybees revealed by the olfactory conditioning of the sting extension reflex (2007) PLoS One, 2, pp. e288. , doi: 10.1371/journal.pone.0000288
  • Wagner, A.R., Rescorla, R.A., Inhibition in pavlovian conditioning: Application of a theory (1972) Inhibition and Learning, pp. 301-336. , (ed. RA Boakes, MS Halliday) Academic Press, New York
  • Weiner, I., The "two-headed" latent inhibition model of schizophrenia: Modeling positive and negative symptoms and their treatment (2003) Psychopharmacology, 169 (3-4), pp. 257-297. , DOI 10.1007/s00213-002-1313-x
  • Zufall, F., Leinders-Zufall, T., The cellular and molecular basis of odor adaptation (2000) Chemical Senses, 25 (4), pp. 473-481

Citas:

---------- APA ----------
Fernández, V.M., Giurfa, M., Devaud, J.-M. & Farina, W.M. (2012) . Latent inhibition in an insect: The role of aminergic signaling. Learning and Memory, 19(12), 593-597.
http://dx.doi.org/10.1101/lm.028167.112
---------- CHICAGO ----------
Fernández, V.M., Giurfa, M., Devaud, J.-M., Farina, W.M. "Latent inhibition in an insect: The role of aminergic signaling" . Learning and Memory 19, no. 12 (2012) : 593-597.
http://dx.doi.org/10.1101/lm.028167.112
---------- MLA ----------
Fernández, V.M., Giurfa, M., Devaud, J.-M., Farina, W.M. "Latent inhibition in an insect: The role of aminergic signaling" . Learning and Memory, vol. 19, no. 12, 2012, pp. 593-597.
http://dx.doi.org/10.1101/lm.028167.112
---------- VANCOUVER ----------
Fernández, V.M., Giurfa, M., Devaud, J.-M., Farina, W.M. Latent inhibition in an insect: The role of aminergic signaling. Learn. Mem. 2012;19(12):593-597.
http://dx.doi.org/10.1101/lm.028167.112