Rachel Wilson

Rachel Wilson, PhD

Martin Family Professor of Basic Research in the Field of Neurobiology
Investigator, Howard Hughes Medical Institute

Circuit Basis of Sensory Processing

How are expectations and predictions wired into our brains? How are they integrated and updated as we experience new sensory stimuli? How are all these sources of information used to select and control specific behavioral actions?

The mission of the Wilson lab is to understand key computations that occur in sensory processing and sensorimotor integration, and to describe the biophysical mechanisms underlying these computations.

We use the brain of the fruit fly Drosophila to investigate these questions. The genetic toolbox of this organism allows us to rapidly generate new reagents to label or manipulate specific classes of neurons in the brain. Many individual neurons are uniquely identifiable across different brains, and they have fairly stereotyped synaptic inputs and outputs. This allows us to build up a cumulative picture of each neuron in a network. Crucially, it allows us to understand a neuron’s activity patterns in light of its synaptic connectivity patterns.

Because many neural systems in various species face the same constraints, we believe that some of the lessons we learn from this simple brain will provide clues to understanding similar problems in more complex brains.

In the area of sensory processing, we are currently focusing on the olfactory, auditory, and mechanosensory systems, as well as cross-modal sensory integration. In the area of sensorimotor integration, we are currently focusing on motor behaviors involving guided limb control.

Publications View
Convergence, Divergence, and Reconvergence in a Feedforward Network Improves Neural Speed and Accuracy.
Authors: Authors: Jeanne JM, Wilson RI.
Neuron
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Thermosensory processing in the Drosophila brain.
Authors: Authors: Liu WW, Mazor O, Wilson RI.
Nature
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Simultaneous encoding of odors by channels with diverse sensitivity to inhibition.
Authors: Authors: Hong EJ, Wilson RI.
Neuron
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Synaptic and circuit mechanisms promoting broadband transmission of olfactory stimulus dynamics.
Authors: Authors: Nagel KI, Hong EJ, Wilson RI.
Nat Neurosci
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Stereotyped connectivity and computations in higher-order olfactory neurons.
Authors: Authors: Fisek M, Wilson RI.
Nat Neurosci
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Olfactory neuroscience: normalization is the norm.
Authors: Authors: Hong EJ, Wilson RI.
Curr Biol
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Early olfactory processing in Drosophila: mechanisms and principles.
Authors: Authors: Wilson RI.
Annu Rev Neurosci
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Transient and specific inactivation of Drosophila neurons in vivo using a native ligand-gated ion channel.
Authors: Authors: Liu WW, Wilson RI.
Curr Biol
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Glutamate is an inhibitory neurotransmitter in the Drosophila olfactory system.
Authors: Authors: Liu WW, Wilson RI.
Proc Natl Acad Sci U S A
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Asymmetric neurotransmitter release enables rapid odour lateralization in Drosophila.
Authors: Authors: Gaudry Q, Hong EJ, Kain J, de Bivort BL, Wilson RI.
Nature
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