Optic flow based spatial vision in insects

Ache JM, Namiki S, Lee A, Branson K, Card GM (2019a) State-dependent decoupling of sensory and motor circuits underlies behavioral flexibility in Drosophila. Nat Neurosci 22:1132–1139

Article  CAS  Google Scholar 

Ache JM, Polsky J, Alghailani S, Parekh R, Breads P, Peek MY, Bock DD, von Reyn CR, Card GM (2019b) Neural basis for looming size and velocity encoding in the Drosophila giant fiber escape pathway. Curr Biol 28:1073–1081

Article  Google Scholar 

Baird E (2020) Obstacle avoidance in bumblebees is robust to changes in light intensity. Anim Cogn 23:1081–1086

Article  Google Scholar 

Baird E, Dacke M (2012) Visual flight control in naturalistic and artificial environments. J Comput Physiol A 198:869–876

Article  Google Scholar 

Baird E, Dacke M (2016) Finding the gap: a brightness-based strategy for guidance in cluttered environments. Proc R Soc B Biol Sci 283:20152988

Article  Google Scholar 

Baird E, Srinivasan MV, Zhang S, Cowling A (2005) Visual control of flight speed in honeybees. J Exp Biol 208:3895–3905

Article  Google Scholar 

Baird E, Srinivasan MV, Zhang S, Lamont R, Cowling A (2006) Visual control of flight speed and height in the honeybee. In: Nolfi S, Baldassare G, Calabretta R et al (eds) From Animals to Animats 9. Lecture notes in computer science. Springer, Berlin, pp 40–51

Google Scholar 

Baird E, Kornfeldt T, Dacke M (2010) Minimum viewing angle for visually guided ground speed control in bumblebees. J Exp Biol 213:1625–1632

Article  Google Scholar 

Baird E, Boeddeker N, Ibbotson MR, Srinivasan MV (2013) A universal strategy for visually guided landing. Proc Natl Acad Sci 110:18686–18691

Article  CAS  Google Scholar 

Baird E, Boeddeker N, Srinivasan MV (2021) The effect of optic flow cues on honeybee flight control in wind. Proc R Soc B 288:20203051

Article  Google Scholar 

Bausenwein B, Müller NR, Heisenberg M (1994) Behavior-dependent activity labeling in the central complex of Drosophilia during controlled visual stimulation. J Comput Neurol 340:255–268

Article  CAS  Google Scholar 

Bender JA, Dickinson MH (2006) Visual stimulation of saccades in magnetically tethered Drosophila. J Exp Biol 209:3170–3182

Article  Google Scholar 

Bertrand OJ, Lindemann JP, Egelhaaf M (2015) A bio-inspired collision avoidance model based on spatial information derived from motion detectors leads to common routes. PLoS Comput Biol 11:e1004339

Article  Google Scholar 

Boeddeker N, Hemmi JM (2010) Visual gaze control during peering flight manoeuvres in honeybees. Proc R Soc B 277:1209–1217

Article  Google Scholar 

Boeddeker N, Mertes M, Dittmar L, Egelhaaf M (2015) Bumblebee homing: the fine structure of head turning movements. PLoS ONE 10:e0135020

Article  Google Scholar 

Borst A (1990) How do flies land? From behavior to neuronal circuits. Biosci 40:292–299

Article  Google Scholar 

Borst A (2014) Neural circuits for motion vision in the fly. Cold Spring Harb Symp Quant Biol 79:131–139

Article  Google Scholar 

Borst A (2018) A biophysical mechanism for preferred direction enhancement in fly motion vision. PLoS Comput Biol 14:e1006240

Article  Google Scholar 

Borst A, Egelhaaf M (1989) Principles of visual motion detection. Trends Neurosci 12:297–306

Article  CAS  Google Scholar 

Borst A, Egelhaaf M (1993) Detecting visual motion: theory and models. In: Miles FA, Wallman J (eds) Visual motion and its role in the stabilization of gaze. Elsevier, Amsterdam, pp 3–27

Google Scholar 

Borst A, Haag J, Reiff DF (2010) Fly motion vision. Ann Rev Neurosci 33:49–70

Article  CAS  Google Scholar 

Borst A, Haag J, Mauss AS (2020) How fly neurons compute the direction of visual motion. J Comput Physiol A 206:109–124

Article  Google Scholar 

Braun E, Dittmar L, Boeddeker N, Egelhaaf M (2012) Prototypical components of honeybee homing flight behaviour depend on the visual appearance of objects surrounding the goal. Front Behav Neurosci 6:1

Article  Google Scholar 

Chakravarthi A, Kelber A, Baird E, Dacke M (2017) High contrast sensitivity for visually guided flight control in bumblebees. J Comput Physiol A 203:999–1006

Article  Google Scholar 

Chen J, Mandel HB, Fitzgerald JE, Clark DA (2019) Asymmetric ON-OFF processing of visual motion cancels variability induced by the structure of natural scenes. Elife 8:e47579

Article  CAS  Google Scholar 

Chittka L, Geiger K, Kunze J (1995) The influences of landmarks on distance estimation of honey bees. Animal Behav 50:23–31

Article  Google Scholar 

Collett T (1977) Stereopsis in toads. Nature 267:349–351

Article  CAS  Google Scholar 

Collett TS (1978) Peering—a locust behavior pattern for obtaining motion parallax information. J Exp Biol 76:237–241

Article  Google Scholar 

Collett TS, Collett M (2002) Memory use in insect visual navigation. Nat Rev Neurosci 3:542–552

Article  CAS  Google Scholar 

Collett M, Collett TS (2017) Path integration: combining optic flow with compass orientation. Curr Biology 27:R1113–R1116

Article  CAS  Google Scholar 

Collett TS, Harkness LIK (1982) Depth vision in animals. In: Ingle DJ, Goodale MA, Mansfield RJW (eds) Analysis of visual behavior. The MIT Press, Cambridge, pp 111–176

Google Scholar 

Collett M, Chittka L, Collett TS (2013) Spatial memory in insect navigation. Curr Biol 23:R789-800

Article  CAS  Google Scholar 

Dickinson MH (2005) The initiation and control of rapid flight maneuvers in fruit flies. Integr Comput Biol 45:274–281

Article  Google Scholar 

Dittmar L, Stürzl W, Baird E, Boeddeker N, Egelhaaf M (2010) Goal seeking in honeybees: matching of optic flow snapshots. J Exp Biol 213:2913–2923

Article  Google Scholar 

Dittmar L, Egelhaaf M, Sturzl W, Boeddeker N (2011) The behavioral relevance of landmark texture for honeybee homing. Front Behav Neurosci 5:20

Article  Google Scholar 

Doussot C, Bertrand OJN, Egelhaaf M (2020) The critical role of head movements for spatial representation during bumblebees learning Flight. Front Behav Neurosci 14:606590

Article  Google Scholar 

Dror RO, O’Carroll DC, Laughlin SB (2001) Accuracy of velocity estimation by Reichardt correlators. J Opt Soc Am A 18:241–252

Article  CAS  Google Scholar 

Dyhr JP, Higgins CM (2010) The spatial frequency tuning of optic-flow-dependent behaviors in the bumblebee Bombus impatiens. J Exp Biol 213:1643–1650

Article  Google Scholar 

Egelhaaf M (2006) The neural computation of visual motion. In: Warrant E, Nilsson DE (eds) Invertebrate vision. Cambridge University Press, Cambridge, pp 399–461

Google Scholar 

Egelhaaf M, Borst A (1993) Movement detection in arthropods. In: Miles FA, Wallman J (eds) Visual motion and its role in the stabilization of gaze. Elsevier, Amsterdam, pp 53–77

Google Scholar 

Egelhaaf M, Kern R (2002) Vision in flying insects. Curr Opin Neurobiol 12:699–706

Article  CAS  Google Scholar 

Egelhaaf M, Borst A, Reichardt W (1989) The nonlinear mechanism of direction selectivity in the fly motion detection system. Naturwisse 76:32–35

Article  Google Scholar 

Egelhaaf M, Boeddeker N, Kern R, Lindemann JP (2012) Spatial vision in insects is facilitated by shaping the dynamics of visual input through behavioral action. Front Neur Circ 6:108

Google Scholar 

Egelhaaf M, Kern R, Lindemann JP (2014) Motion as a source of environmental information: a fresh view on biological motion computation by insect brains. Front Neur Circ 8:127

Google Scholar 

Esch HE, Burns JM (1996) Distance estimation by foraging honeybees. J Exp Biol 199:155–162

Article  CAS  Google Scholar 

Esch HE, Zhang S, Srinivasan MV, Tautz J (2001) Honeybee dances communicate distances measured by optic flow. Nature 411:581–583

Article  CAS  Google Scholar 

Franceschini N, Riehle A, Le Nestour A (1989) Directionally selective motion detection by insect neurons. In: Stavenga D, Hardie R (eds) Facets of vision. Springer, Berlin, pp 360–390

Chapter  Google Scholar 

Geurten BRH, Kern R, Egelhaaf M (2012) Species-specific flight styles of flies are reflected in the response dynamics of a homolog motion-sensitive neuron. Front Integr Neurosci 6:11

Article  Google Scholar 

Goyal P, Cribellier A, de Croon GCHE, Lankheet MJ, van Leeuwen JL, Pieters RPM, Muijres FT (2021) Bumblebees land rapidly and robustly using a sophisticated modular flight control strategy. iScience 24:102407

Article  Google Scholar 

Green J, Maimon G (2018) Building a heading signal from anatomically defined neuron types in the Drosophila central complex. Curr Opin Neurobiol 52:156–164

Article  CAS  Google Scholar 

Grewe J, Kretzberg J, Warzecha A-K, Egelhaaf M (2003) Impact of photon-noise on the reliability of a motion-sensitive neuron in the fly’s visual system. J Neurosci 23:10776–10783

Article  CAS  Google Scholar 

Grewe J, Weckström M, Egelhaaf M, Warzecha A-K (2007) Information and discriminability as measures of reliability of sensory coding. PLoS ONE 2:e1328

Article  Google Scholar 

Grittner R, Baird E, Stockl A (2021) Spatial tuning of translational optic flow responses in hawkmoths of varying body size. J Comput Physiol A 208:279–296

Article  Google Scholar 

Haag J, Wertz A, Borst A (2007) Integration of lobula plate output signals by DNOVS1, an identified premotor descending neuron. J Neurosci 27:1992–2000

Article  CAS  Google Scholar 

留言 (0)

沒有登入
gif