Insect Antenna Tracking

Insect antenna tracking is a behavioral and neurophysiological method for measuring how insects position and move their antennae, providing a window into sensory processing and active perception. Researchers use video recording, image analysis, or motion-tracking markers to quantify antennal angle, movement, and responses while insects encounter odors, touch, airflow, or other stimuli. These measurements help connect antennal behavior with olfactory and mechanosensory pathways, revealing how insects sample their surroundings, orient during navigation, and integrate sensory information. In neuroscience, the approach supports studies of sensorimotor control, neural coding, and behavior, while also informing biologically inspired sensing and robotic systems.

Insect Antenna Tracking - Related Videos

Research

JoVE Journal - Neuroscience

Insect-controlled Robot: A Mobile Robot Platform to Evaluate the Odor-tracking Capability of an Insect

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Cited by 18 •

2016

The capability to localize an odor source is necessary for insect survival and is expected to be applicable to artificial odor-tracking. The insect-controlled robot is driven by an actual silkmoth and enables us to evaluate the odor-tracking capability of insects through a robotic platform.

Research

JoVE Journal - Neuroscience
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SwarmSight: Real-time Tracking of Insect Antenna Movements and Proboscis Extension Reflex Using a Common Preparation and Conventional Hardware

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Cited by 6 •

2017

This protocol describes steps for using the novel software, SwarmSight, for frame-by-frame tracking of insect antenna and proboscis positions from conventional web camera videos using conventional computers. The free, open-source software processes frames about 120 times faster than humans and performs at better than human accuracy.

Research

JoVE Journal - Neuroscience
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Using Insect Electroantennogram Sensors on Autonomous Robots for Olfactory Searches

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Cited by 49 •

2014

We describe a protocol for using insect antennae in the form of electroantennograms (EAGs) on autonomous robots. Our experimental design allows stable recordings within a day and resolves individual odor patches up to 10 Hz. The efficiency of EAG sensors for olfactory searches is demonstrated in driving a robot toward an odor source.

Whole Mount Immunolabeling of Olfactory Receptor Neurons in the Drosophila Antenna

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Cited by 7 •

2014

Herein we describe the process of whole mount immunostaining of Drosophila antennae, which enables us to better understand the molecular mechanisms involved in the diversification of olfactory receptor neurons (ORN)s.

Localization of Odorant Receptor Genes in Locust Antennae by RNA In Situ Hybridization

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Cited by 5 •

2017

This paper describes a detailed and highly effective RNA in situ hybridization protocol particularly for low-level expressed Odorant Receptor (OR) genes, as well as other genes, in insect antennae using digoxigenin (DIG)-labeled or biotin-labeled probes.

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