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Using Insect Electroantennogram Sensors on Autonomous Robots for Olfactory Searches

Identifieur interne : 000D85 ( Main/Merge ); précédent : 000D84; suivant : 000D86

Using Insect Electroantennogram Sensors on Autonomous Robots for Olfactory Searches

Auteurs : Dominique Martinez ; Lotfi Arhidi ; Elodie Demondion ; Jean-Baptiste Masson ; Philippe Lucas

Source :

RBID : PMC:4692349

Descripteurs français

English descriptors

Abstract

Robots designed to track chemical leaks in hazardous industrial facilities1 or explosive traces in landmine fields2 face the same problem as insects foraging for food or searching for mates3: the olfactory search is constrained by the physics of turbulent transport4. The concentration landscape of wind borne odors is discontinuous and consists of sporadically located patches. A pre-requisite to olfactory search is that intermittent odor patches are detected. Because of its high speed and sensitivity5-6, the olfactory organ of insects provides a unique opportunity for detection. Insect antennae have been used in the past to detect not only sex pheromones7 but also chemicals that are relevant to humans, e.g., volatile compounds emanating from cancer cells8 or toxic and illicit substances9-11. We describe here a protocol for using insect antennae on autonomous robots and present a proof of concept for tracking odor plumes to their source. The global response of olfactory neurons is recorded in situ in the form of electroantennograms (EAGs). Our experimental design, based on a whole insect preparation, allows stable recordings within a working day. In comparison, EAGs on excised antennae have a lifetime of 2 hr. A custom hardware/software interface was developed between the EAG electrodes and a robot. The measurement system resolves individual odor patches up to 10 Hz, which exceeds the time scale of artificial chemical sensors12. The efficiency of EAG sensors for olfactory searches is further demonstrated in driving the robot toward a source of pheromone. By using identical olfactory stimuli and sensors as in real animals, our robotic platform provides a direct means for testing biological hypotheses about olfactory coding and search strategies13. It may also prove beneficial for detecting other odorants of interests by combining EAGs from different insect species in a bioelectronic nose configuration14 or using nanostructured gas sensors that mimic insect antennae15.


Url:
DOI: 10.3791/51704
PubMed: 25145980
PubMed Central: 4692349

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PMC:4692349

Le document en format XML

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<p>Robots designed to track chemical leaks in hazardous industrial facilities
<sup>1</sup>
or explosive traces in landmine fields
<sup>2</sup>
face the same problem as insects foraging for food or searching for mates
<sup>3</sup>
: the olfactory search is constrained by the physics of turbulent transport
<sup>4</sup>
. The concentration landscape of wind borne odors is discontinuous and consists of sporadically located patches. A pre-requisite to olfactory search is that intermittent odor patches are detected. Because of its high speed and sensitivity
<sup>5-6</sup>
, the olfactory organ of insects provides a unique opportunity for detection. Insect antennae have been used in the past to detect not only sex pheromones
<sup>7</sup>
but also chemicals that are relevant to humans,
<italic>e.g.</italic>
, volatile compounds emanating from cancer cells
<sup>8</sup>
or toxic and illicit substances
<sup>9-11</sup>
. We describe here a protocol for using insect antennae on autonomous robots and present a proof of concept for tracking odor plumes to their source. The global response of olfactory neurons is recorded
<italic>in situ </italic>
in the form of electroantennograms (EAGs). Our experimental design, based on a whole insect preparation, allows stable recordings within a working day. In comparison, EAGs on excised antennae have a lifetime of 2 hr. A custom hardware/software interface was developed between the EAG electrodes and a robot. The measurement system resolves individual odor patches up to 10 Hz, which exceeds the time scale of artificial chemical sensors
<sup>12</sup>
. The efficiency of EAG sensors for olfactory searches is further demonstrated in driving the robot toward a source of pheromone. By using identical olfactory stimuli and sensors as in real animals, our robotic platform provides a direct means for testing biological hypotheses about olfactory coding and search strategies
<sup>13</sup>
. It may also prove beneficial for detecting other odorants of interests by combining EAGs from different insect species in a bioelectronic nose configuration
<sup>14</sup>
or using nanostructured gas sensors that mimic insect antennae
<sup>15</sup>
.</p>
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<name sortKey="Baker, Tc" uniqKey="Baker T">TC Baker</name>
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<author>
<name sortKey="Hildebrand, Jg" uniqKey="Hildebrand J">JG Hildebrand</name>
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<name sortKey="Vergassola, M" uniqKey="Vergassola M">M Vergassola</name>
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<name sortKey="Villermaux, E" uniqKey="Villermaux E">E Villermaux</name>
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<author>
<name sortKey="Shraiman, Bi" uniqKey="Shraiman B">BI Shraiman</name>
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<author>
<name sortKey="Martin Moraud, E" uniqKey="Martin Moraud E">E Martin-Moraud</name>
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<author>
<name sortKey="Martinez, D" uniqKey="Martinez D">D Martinez</name>
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<name sortKey="Masson, J B" uniqKey="Masson J">J-B Masson</name>
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<analytic>
<author>
<name sortKey="Masson, J B" uniqKey="Masson J">J-B Masson</name>
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<author>
<name sortKey="Bailly Bechet, M" uniqKey="Bailly Bechet M">M Bailly Bechet</name>
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<author>
<name sortKey="Vergassola, M" uniqKey="Vergassola M">M Vergassola</name>
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