Citation Relationships



Peron S, Gabbiani F (2009) Spike frequency adaptation mediates looming stimulus selectivity in a collision-detecting neuron. Nat Neurosci 12:318-26 [PubMed]

   Spike frequency adaptation in the LGMD (Peron and Gabbiani 2009)

References and models cited by this paper

References and models that cite this paper

Bhattacharjee A, Kaczmarek LK (2005) For K+ channels, Na+ is the new Ca2+. Trends Neurosci 28:422-8 [Journal] [PubMed]

Bond CT, Maylie J, Adelman JP (2005) SK channels in excitability, pacemaking and synaptic integration. Curr Opin Neurobiol 15:305-11 [Journal] [PubMed]

Burrows M (1996) The neurobiology of an insect brain

Ellis LD, Mehaffey WH, Harvey-Girard E, Turner RW, Maler L, Dunn RJ (2007) SK channels provide a novel mechanism for the control of frequency tuning in electrosensory neurons. J Neurosci 27:9491-502 [Journal] [PubMed]

Faber ES, Sah P (2003) Calcium-activated potassium channels: multiple contributions to neuronal function. Neuroscientist 9:181-94 [Journal] [PubMed]

Fotowat H, Gabbiani F (2007) Relationship between the phases of sensory and motor activity during a looming-evoked multistage escape behavior. J Neurosci 27:10047-59 [Journal] [PubMed]

Fraser Rowell CH, O'Shea M, Williams JL (1977) The neuronal basis of a sensory analyser, the acridid movement detector system. IV. The preference for small field stimuli. J Exp Biol 68:157-85 [PubMed]

Gabbiani F, Cohen I, Laurent G (2005) Time-dependent activation of feed-forward inhibition in a looming-sensitive neuron. J Neurophysiol 94:2150-61 [Journal] [PubMed]

Gabbiani F, Krapp HG (2006) Spike-frequency adaptation and intrinsic properties of an identified, looming-sensitive neuron. J Neurophysiol 96:2951-62 [Journal] [PubMed]

   Leaky integrate-and-fire model of spike frequency adaptation in the LGMD (Gabbiani and Krapp 2006) [Model]

Gabbiani F, Krapp HG, Koch C, Laurent G (2002) Multiplicative computation in a visual neuron sensitive to looming. Nature 420:320-4 [Journal] [PubMed]

Gabbiani F, Krapp HG, Laurent G (1999) Computation of object approach by a wide-field, motion-sensitive neuron. J Neurosci 19:1122-41 [PubMed]

Gu N, Vervaeke K, Storm JF (2007) BK potassium channels facilitate high-frequency firing and cause early spike frequency adaptation in rat CA1 hippocampal pyramidal cells. J Physiol 580:859-82 [Journal] [PubMed]

Haag J, Borst A (2000) Spatial distribution and characteristics of voltage-gated calcium signals within visual interneurons. J Neurophysiol 83:1039-51 [Journal] [PubMed]

Harris RA, O'Carroll DC, Laughlin SB (2000) Contrast gain reduction in fly motion adaptation. Neuron 28:595-606 [PubMed]

Heidel E, Pflüger HJ (2006) Ion currents and spiking properties of identified subtypes of locust octopaminergic dorsal unpaired median neurons. Eur J Neurosci 23:1189-206 [Journal] [PubMed]

Hirschberg B, Maylie J, Adelman JP, Marrion NV (1998) Gating of recombinant small-conductance Ca-activated K+ channels by calcium. J Gen Physiol 111:565-81 [PubMed]

Judge S, Rind F (1997) The locust DCMD, a movement-detecting neurone tightly tuned to collision trajectories J Exp Biol 200:2209-16 [PubMed]

Killmann F, Schürmann FW (1985) Both electrical and chemical transmission between the 'lobula giant movement detector' and the 'descending contralateral movement detector' neurons of locusts are supported by electron microscopy. J Neurocytol 14:637-52 [PubMed]

Koch C, Poggio T, Torre V (1982) Retinal ganglion cells: a functional interpretation of dendritic morphology. Philos Trans R Soc Lond B Biol Sci 298:227-63 [Journal] [PubMed]

Krapp HG, Gabbiani F (2005) Spatial distribution of inputs and local receptive field properties of a wide-field, looming sensitive neuron. J Neurophysiol 93:2240-53 [Journal] [PubMed]

Kurtz R, Dürr V, Egelhaaf M (2000) Dendritic calcium accumulation associated with direction-selective adaptation in visual motion-sensitive neurons in vivo. J Neurophysiol 84:1914-23 [Journal] [PubMed]

Matheson T, Rogers SM, Krapp HG (2004) Plasticity in the visual system is correlated with a change in lifestyle of solitarious and gregarious locusts. J Neurophysiol 91:1-12 [Journal] [PubMed]

Migliore M, Shepherd GM (2002) Emerging rules for the distributions of active dendritic conductances. Nat Rev Neurosci 3:362-70 [Journal] [PubMed]

   Modulation of temporal integration window (Migliore, Shepherd 2002) [Model]

Neher E, Sakaba T (2008) Multiple roles of calcium ions in the regulation of neurotransmitter release. Neuron 59:861-72 [Journal] [PubMed]

O'Shea M, Williams JL (1974) The anatomy and output connection of a locust visual interneurone: the lobular giant movement detector (LGMD) neurone J Comp Physiol 91:257-266

Peracchia C (2004) Chemical gating of gap junction channels; roles of calcium, pH and calmodulin. Biochim Biophys Acta 1662:61-80 [Journal] [PubMed]

Peron SP, Krapp HG, Gabbiani F (2007) Influence of electrotonic structure and synaptic mapping on the receptive field properties of a collision-detecting neuron. J Neurophysiol 97:159-77 [Journal] [PubMed]

Preuss T, Osei-Bonsu PE, Weiss SA, Wang C, Faber DS (2006) Neural representation of object approach in a decision-making motor circuit. J Neurosci 26:3454-64 [Journal] [PubMed]

Rall W (1964) Theoretical significance of dendritic trees for neuronal input output relations Neural Theory and Modeling, Reiss RF, ed. pp.73 [Journal]

   Effects of synaptic location and timing on synaptic integration (Rall 1964) [Model]

Rind FC, Simmons PJ (1992) Orthopteran DCMD neuron: a reevaluation of responses to moving objects. I. Selective responses to approaching objects. J Neurophysiol 68:1654-66 [Journal] [PubMed]

Rowell CHF (1971) The orthopteran descending movement detector (DMD) neurons:a characterization and review. Z Vergl Physiol 73:167-194

Sah P (1996) Ca(2+)-activated K+ currents in neurones: types, physiological roles and modulation. Trends Neurosci 19:150-4 [PubMed]

Sanchez-Vives MV, Nowak LG, McCormick DA (2000) Cellular mechanisms of long-lasting adaptation in visual cortical neurons in vitro. J Neurosci 20:4286-99 [PubMed]

Santer RD, Yamawaki Y, Rind FC, Simmons PJ (2008) Preparing for escape: an examination of the role of the DCMD neuron in locust escape jumps. J Comp Physiol A Neuroethol Sens Neural Behav Physiol 194:69-77 [Journal] [PubMed]

Schlotterer GR (1977) Response of the locust descending movement detector neuronto rapidly approaching and withdrawing visual stimuli Can J Zool 55:1372-1376

Scott RH, Sutton KG, Griffin A, Stapleton SR, Currie KP (1995) Aspects of calcium-activated chloride currents: a neuronal perspective. Pharmacol Ther 66:535-65 [PubMed]

Simmons PJ, Rind FC (1992) Orthopteran DCMD neuron: a reevaluation of responses to moving objects. II. Critical cues for detecting approaching objects. J Neurophysiol 68:1667-82 [Journal] [PubMed]

Single S, Borst A (2002) Different mechanisms of calcium entry within different dendritic compartments. J Neurophysiol 87:1616-24 [Journal] [PubMed]

Sobel EC, Tank DW (1994) In vivo Ca2+ dynamics in a cricket auditory neuron: an example of chemical computation. Science 263:823-6 [Journal] [PubMed]

Stocker M (2004) Ca(2+)-activated K+ channels: molecular determinants and function of the SK family. Nat Rev Neurosci 5:758-70 [Journal] [PubMed]

Sun H, Frost BJ (1998) Computation of different optical variables of looming objects in pigeon nucleus rotundus neurons. Nat Neurosci 1:296-303 [Journal] [PubMed]

Teagarden M, Atherton JF, Bevan MD, Wilson CJ (2008) Accumulation of cytoplasmic calcium, but not apamin-sensitive afterhyperpolarization current, during high frequency firing in rat subthalamic nucleus cells. J Physiol 586:817-33 [Journal] [PubMed]

Tsien RY (1980) New calcium indicators and buffers with high selectivity against magnesium and protons: design, synthesis, and properties of prototype structures. Biochemistry 19:2396-404 [PubMed]

Wang XJ (1998) Calcium coding and adaptive temporal computation in cortical pyramidal neurons. J Neurophysiol 79:1549-66 [Journal] [PubMed]

Wang XJ, Liu Y, Sanchez-Vives MV, McCormick DA (2003) Adaptation and temporal decorrelation by single neurons in the primary visual cortex. J Neurophysiol 89:3279-93 [Journal] [PubMed]

   Temporal decorrelation by intrinsic cellular dynamics (Wang et al 2003) [Model]

Wicher D, Walther C, Wicher C (2001) Non-synaptic ion channels in insects--basic properties of currents and their modulation in neurons and skeletal muscles. Prog Neurobiol 64:431-525 [PubMed]

Wittekindt OH, Visan V, Tomita H, Imtiaz F, Gargus JJ, Lehmann-Horn F, Grissmer S, Morris-Rosendahl DJ (2004) An apamin- and scyllatoxin-insensitive isoform of the human SK3 channel. Mol Pharmacol 65:788-801 [Journal] [PubMed]

Yamamoto K, Nakata M, Nakagawa H (2003) Input and output characteristics of collision avoidance behavior in the frog Rana catesbeiana. Brain Behav Evol 62:201-11 [Journal] [PubMed]

Dewell RB, Gabbiani F (2018) Biophysics of object segmentation in a collision-detecting neuron. Elife [Journal] [PubMed]

   LGMD with 3D morphology and active dendrites (Dewell & Gabbiani 2018) [Model]

Dewell RB, Gabbiani F (2018) M current regulates firing mode and spike reliability in a collision-detecting neuron. J Neurophysiol 120:1753-1764 [Journal] [PubMed]

   M-current in a collision detection neuron (LGMD model) (Dewell & Gabbiani 2018) [Model]

Dewell RB, Gabbiani F (2019) Active membrane conductances and morphology of a collision detection neuron broaden its impedance profile and improve discrimination of input synchrony. J Neurophysiol [Journal] [PubMed]

   LGMD impedance (Dewell & Gabbiani 2019) [Model]

Jones PW, Gabbiani F (2012) Impact of neural noise on a sensory-motor pathway signaling impending collision. J Neurophysiol 107:1067-79 [Journal] [PubMed]

   LGMD Variability and logarithmic compression in dendrites (Jones and Gabbiani, 2012, 2012B) [Model]

(52 refs)