Visually guided gradation of prey capture movements in larval zebrafish.

PubWeight™: 0.85‹?›

🔗 View Article (PMC 4074221)

Published in J Exp Biol on April 25, 2013

Authors

Bradley W Patterson1, Aliza O Abraham, Malcolm A MacIver, David L McLean

Author Affiliations

1: Interdepartmental Neuroscience Program, Northwestern University, Evanston, IL, USA.

Articles cited by this

The motor infrastructure: from ion channels to neuronal networks. Nat Rev Neurosci (2003) 3.68

Circuits controlling vertebrate locomotion: moving in a new direction. Nat Rev Neurosci (2009) 3.58

Brain-wide neuronal dynamics during motor adaptation in zebrafish. Nature (2012) 3.17

The neuronal organization of the retina. Neuron (2012) 3.13

Design principles of insect and vertebrate visual systems. Neuron (2010) 2.94

Eye movements evoked by collicular stimulation in the alert monkey. Vision Res (1972) 2.89

Continuous shifts in the active set of spinal interneurons during changes in locomotor speed. Nat Neurosci (2008) 2.80

Control of visually guided behavior by distinct populations of spinal projection neurons. Nat Neurosci (2008) 2.72

Visual prey capture in larval zebrafish is controlled by identified reticulospinal neurons downstream of the tectum. J Neurosci (2005) 2.68

The Mauthner cell half a century later: a neurobiological model for decision-making? Neuron (2005) 2.61

Modulation of locomotor activity in larval zebrafish during light adaptation. J Exp Biol (2007) 2.59

A topographic map of recruitment in spinal cord. Nature (2007) 2.41

Functional imaging reveals rapid development of visual response properties in the zebrafish tectum. Neuron (2005) 2.40

Locomotor repertoire of the larval zebrafish: swimming, turning and prey capture. J Exp Biol (2000) 2.39

Laser ablations reveal functional relationships of segmental hindbrain neurons in zebrafish. Neuron (1999) 2.35

Parametric functional maps of visual inputs to the tectum. Neuron (2012) 2.22

Early retinal development in the zebrafish, Danio rerio: light and electron microscopic analyses. J Comp Neurol (1999) 2.19

alx, a zebrafish homolog of Chx10, marks ipsilateral descending excitatory interneurons that participate in the regulation of spinal locomotor circuits. J Neurosci (2006) 2.09

Omnidirectional sensory and motor volumes in electric fish. PLoS Biol (2007) 1.97

Vesicular glutamate transport at a central synapse limits the acuity of visual perception in zebrafish. Neuron (2007) 1.96

Auditory and visual maps of space in the optic tectum of the owl. J Neurosci (1982) 1.84

Genetic single-cell mosaic analysis implicates ephrinB2 reverse signaling in projections from the posterior tectum to the hindbrain in zebrafish. J Neurosci (2007) 1.80

Filtering of visual information in the tectum by an identified neural circuit. Science (2010) 1.73

A structural and functional ground plan for neurons in the hindbrain of zebrafish. Proc Natl Acad Sci U S A (2011) 1.72

Imaging the functional organization of zebrafish hindbrain segments during escape behaviors. Neuron (1996) 1.70

Swimming of larval zebrafish: ontogeny of body waves and implications for locomotory development. J Exp Biol (2004) 1.69

Fictive swimming motor patterns in wild type and mutant larval zebrafish. J Neurophysiol (2005) 1.69

A confocal study of spinal interneurons in living larval zebrafish. J Comp Neurol (2001) 1.56

Drosophila's view on insect vision. Curr Biol (2009) 1.51

Central circuits controlling locomotion in young frog tadpoles. Ann N Y Acad Sci (1998) 1.47

Mapping a sensory-motor network onto a structural and functional ground plan in the hindbrain. Proc Natl Acad Sci U S A (2011) 1.46

Prey capture by larval zebrafish: evidence for fine axial motor control. Brain Behav Evol (2002) 1.46

Grading movement strength by changes in firing intensity versus recruitment of spinal interneurons. Neuron (2007) 1.42

Initiation of Mauthner- or non-Mauthner-mediated fast escape evoked by different modes of sensory input. J Neurosci (2008) 1.40

Optogenetic Dissection of Neuronal Circuits in Zebrafish using Viral Gene Transfer and the Tet System. Front Neural Circuits (2009) 1.39

Automated visual tracking for studying the ontogeny of zebrafish swimming. J Exp Biol (2008) 1.36

Real-time visualization of neuronal activity during perception. Curr Biol (2013) 1.35

Retinotopic organization of the developing retinotectal projection in the zebrafish embryo. J Neurosci (1988) 1.33

Synaptic drive to motoneurons during fictive swimming in the developing zebrafish. J Neurophysiol (2001) 1.32

Cytogenesis in the monkey retina. J Comp Neurol (1991) 1.32

Prey capture behavior evoked by simple visual stimuli in larval zebrafish. Front Syst Neurosci (2011) 1.29

Prey tracking by larval zebrafish: axial kinematics and visual control. Brain Behav Evol (2005) 1.28

Segmental homologies among reticulospinal neurons in the hindbrain of the zebrafish larva. J Comp Neurol (1986) 1.28

Brain neurons which project to the spinal cord in young larvae of the zebrafish. J Comp Neurol (1982) 1.24

Spinal motoneurons of the larval zebrafish. J Comp Neurol (1985) 1.23

Layer-specific targeting of direction-selective neurons in the zebrafish optic tectum. Neuron (2012) 1.16

Genetic dissection of the retinotectal projection. Development (1996) 1.13

Neural maps of head movement vector and speed in the optic tectum of the barn owl. J Neurophysiol (1990) 1.10

Larval and adult visual pigments of the zebrafish, Brachydanio rerio. Vision Res (1985) 1.09

Relationship between visual and tactile representations in cat superior colliculus. J Neurophysiol (1976) 1.08

Encoding and decoding of reticulospinal commands. Brain Res Brain Res Rev (2002) 1.08

Using imaging and genetics in zebrafish to study developing spinal circuits in vivo. Dev Neurobiol (2008) 1.07

Neuronal circuitry controlling the near response. Curr Opin Neurobiol (1995) 1.06

Generation of multiple classes of V0 neurons in zebrafish spinal cord: progenitor heterogeneity and temporal control of neuronal diversity. J Neurosci (2012) 1.05

Spatially selective auditory responses in the superior colliculus of the echolocating bat. J Neurosci (1997) 1.05

The dorsal raphe modulates sensory responsiveness during arousal in zebrafish. J Neurosci (2012) 1.03

Tectal control of locomotion, steering, and eye movements in lamprey. J Neurophysiol (2007) 1.03

Direction selectivity in the larval zebrafish tectum is mediated by asymmetric inhibition. Front Neural Circuits (2012) 1.02

Motor neurons and the sense of place. Neuron (2011) 1.02

Merging of modalities in the optic tectum: infrared and visual integration in rattlesnakes. Science (1978) 1.02

Movement and function of the pectoral fins of the larval zebrafish (Danio rerio) during slow swimming. J Exp Biol (2011) 1.00

Visually guided injection of identified reticulospinal neurons in zebrafish: a survey of spinal arborization patterns. J Comp Neurol (2003) 0.98

Neuronal relays in double crossed pathways between feline motor cortex and ipsilateral hindlimb motoneurones. J Physiol (2006) 0.98

The role of a midbrain network in competitive stimulus selection. Curr Opin Neurobiol (2011) 0.98

Development and structure of motoneurons. Int Rev Neurobiol (2006) 0.93

Alternative startle motor patterns and behaviors in the larval zebrafish (Danio rerio). J Comp Physiol A Neuroethol Sens Neural Behav Physiol (2011) 0.93

Involvement of the optic tectum and mesencephalic reticular formation in the generation of saccadic eye movements in goldfish. Brain Res Brain Res Rev (2004) 0.88

Control of pinna movements and sensorimotor register in cat superior colliculus. Brain Behav Evol (1981) 0.87

Control of a specific motor program by a small brain area in zebrafish. Front Neural Circuits (2013) 0.86

Imaging circuit formation in zebrafish. Dev Neurobiol (2012) 0.86

Early exposure to odors changes later visual prey preferences in cuttlefish. Dev Psychobiol (2010) 0.84

Ontogeny of the area centralis in the cat. J Comp Neurol (1987) 0.81

Whither motoneurons? Brain Res (2011) 0.79

Visual orienting response in goldfish: a multidisciplinary study. Brain Res Bull (2005) 0.79

Articles by these authors

Grading movement strength by changes in firing intensity versus recruitment of spinal interneurons. Neuron (2007) 1.42

Zebrafish and motor control over the last decade. Brain Res Rev (2007) 1.27

Engineering challenges for instrumenting and controlling integrated organ-on-chip systems. IEEE Trans Biomed Eng (2013) 1.21

A gradient in endogenous rhythmicity and oscillatory drive matches recruitment order in an axial motor pool. J Neurosci (2012) 1.04

Some principles of organization of spinal neurons underlying locomotion in zebrafish and their implications. Ann N Y Acad Sci (2010) 1.02

Modeling electrosensory and mechanosensory images during the predatory behavior of weakly electric fish. Brain Behav Evol (2002) 0.98

Modular organization of axial microcircuits in zebrafish. Science (2014) 0.95

Mechanical properties of a bio-inspired robotic knifefish with an undulatory propulsor. Bioinspir Biomim (2011) 0.91

Optimal movement in the prey strikes of weakly electric fish: a case study of the interplay of body plan and movement capability. J R Soc Interface (2008) 0.83

Undulating fins produce off-axis thrust and flow structures. J Exp Biol (2013) 0.83

Enhanced detection performance in electrosense through capacitive sensing. Bioinspir Biomim (2016) 0.82

Biomimetic and bio-inspired robotics in electric fish research. J Exp Biol (2013) 0.82

Differences in the morphology of spinal V2a neurons reflect their recruitment order during swimming in larval zebrafish. J Comp Neurol (2014) 0.80

Fast inhibitory synapses: targets for neuromodulation and development of vertebrate motor behaviour. Brain Res Brain Res Rev (2002) 0.77

Speed control: spinal interneurons with crossed purposes. Curr Biol (2013) 0.76

Motor control: spinal circuits help tadpoles see clearly. Curr Biol (2012) 0.75

Evolutionary divergence in developmental strategies and neuromodulatory control systems of two amphibian locomotor networks. Integr Comp Biol (2004) 0.75