» Articles » PMID: 33140723

Walking Navigate Complex Plumes Using Stochastic Decisions Biased by the Timing of Odor Encounters

Overview
Journal Elife
Specialty Biology
Date 2020 Nov 3
PMID 33140723
Citations 46
Authors
Affiliations
Soon will be listed here.
Abstract

How insects navigate complex odor plumes, where the location and timing of odor packets are uncertain, remains unclear. Here we imaged complex odor plumes simultaneously with freely-walking flies, quantifying how behavior is shaped by encounters with individual odor packets. We found that navigation was stochastic and did not rely on the continuous modulation of speed or orientation. Instead, flies turned stochastically with stereotyped saccades, whose direction was biased upwind by the timing of prior odor encounters, while the magnitude and rate of saccades remained constant. Further, flies used the timing of odor encounters to modulate the transition rates between walks and stops. In more regular environments, flies continuously modulate speed and orientation, even though encounters can still occur randomly due to animal motion. We find that in less predictable environments, where encounters are random in both space and time, walking flies navigate with random walks biased by encounter timing.

Citing Articles

A vector-based strategy for olfactory navigation in .

Siliciano A, Minni S, Morton C, Dowell C, Eghbali N, Rhee J bioRxiv. 2025; .

PMID: 39990408 PMC: 11844514. DOI: 10.1101/2025.02.15.638426.


How do mammals convert dynamic odor information into neural maps for landscape navigation?.

Sunil A, Pedroncini O, Schaefer A, Ackels T PLoS Biol. 2024; 22(11):e3002908.

PMID: 39571004 PMC: 11581409. DOI: 10.1371/journal.pbio.3002908.


NeuroMechFly v2: simulating embodied sensorimotor control in adult Drosophila.

Wang-Chen S, Stimpfling V, Lam T, Ozdil P, Genoud L, Hurtak F Nat Methods. 2024; 21(12):2353-2362.

PMID: 39533006 DOI: 10.1038/s41592-024-02497-y.


High-speed odor sensing using miniaturized electronic nose.

Dennler N, Drix D, Warner T, Rastogi S, Casa C, Ackels T Sci Adv. 2024; 10(45):eadp1764.

PMID: 39504378 PMC: 11540037. DOI: 10.1126/sciadv.adp1764.


Dynamics of odor-source localization: Insights from real-time odor plume recordings and head-motion tracking in freely moving mice.

Tariq M, Sterrett S, Moore S, Lane , Perkel D, Gire D PLoS One. 2024; 19(9):e0310254.

PMID: 39325742 PMC: 11426488. DOI: 10.1371/journal.pone.0310254.


References
1.
Riffell J, Abrell L, Hildebrand J . Physical processes and real-time chemical measurement of the insect olfactory environment. J Chem Ecol. 2008; 34(7):837-53. PMC: 2778261. DOI: 10.1007/s10886-008-9490-7. View

2.
Balkovsky E, Shraiman B . Olfactory search at high Reynolds number. Proc Natl Acad Sci U S A. 2002; 99(20):12589-93. PMC: 130504. DOI: 10.1073/pnas.192393499. View

3.
Moore P, Weissburg M, Parrish J, Zimmer-Faust R, Gerhardt G . Spatial distribution of odors in simulated benthic boundary layer flows. J Chem Ecol. 2013; 20(2):255-79. DOI: 10.1007/BF02064435. View

4.
Gepner R, Skanata M, Bernat N, Kaplow M, Gershow M . Computations underlying Drosophila photo-taxis, odor-taxis, and multi-sensory integration. Elife. 2015; 4. PMC: 4466338. DOI: 10.7554/eLife.06229. View

5.
Gire D, Kapoor V, Arrighi-Allisan A, Seminara A, Murthy V . Mice Develop Efficient Strategies for Foraging and Navigation Using Complex Natural Stimuli. Curr Biol. 2016; 26(10):1261-73. PMC: 4951102. DOI: 10.1016/j.cub.2016.03.040. View