Literature DB >> 21849538

Cellular-resolution population imaging reveals robust sparse coding in the Drosophila mushroom body.

Kyle S Honegger1, Robert A A Campbell, Glenn C Turner.   

Abstract

Sensory stimuli are represented in the brain by the activity of populations of neurons. In most biological systems, studying population coding is challenging since only a tiny proportion of cells can be recorded simultaneously. Here we used two-photon imaging to record neural activity in the relatively simple Drosophila mushroom body (MB), an area involved in olfactory learning and memory. Using the highly sensitive calcium indicator GCaMP3, we simultaneously monitored the activity of >100 MB neurons in vivo (∼5% of the total population). The MB is thought to encode odors in sparse patterns of activity, but the code has yet to be explored either on a population level or with a wide variety of stimuli. We therefore imaged responses to odors chosen to evaluate the robustness of sparse representations. Different odors activated distinct patterns of MB neurons; however, we found no evidence for spatial organization of neurons by either response probability or odor tuning within the cell body layer. The degree of sparseness was consistent across a wide range of stimuli, from monomolecular odors to artificial blends and even complex natural smells. Sparseness was mainly invariant across concentrations, largely because of the influence of recent odor experience. Finally, in contrast to sensory processing in other systems, no response features distinguished natural stimuli from monomolecular odors. Our results indicate that the fundamental feature of odor processing in the MB is to create sparse stimulus representations in a format that facilitates arbitrary associations between odor and punishment or reward.

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Year:  2011        PMID: 21849538      PMCID: PMC3180869          DOI: 10.1523/JNEUROSCI.1099-11.2011

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  47 in total

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8.  Stereotyped odor-evoked activity in the mushroom body of Drosophila revealed by green fluorescent protein-based Ca2+ imaging.

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  88 in total

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2.  Transformation of odor selectivity from projection neurons to single mushroom body neurons mapped with dual-color calcium imaging.

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3.  Imaging a population code for odor identity in the Drosophila mushroom body.

Authors:  Robert A A Campbell; Kyle S Honegger; Hongtao Qin; Wanhe Li; Ebru Demir; Glenn C Turner
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Review 4.  Aversion and attraction through olfaction.

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5.  What the fly's nose tells the fly's brain.

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Review 6.  Untangling the wires: development of sparse, distributed connectivity in the mushroom body calyx.

Authors:  Vanessa M Puñal; Maria Ahmed; Emma M Thornton-Kolbe; E Josephine Clowney
Journal:  Cell Tissue Res       Date:  2021-01-06       Impact factor: 5.249

7.  Mechanisms underlying homeostatic plasticity in the Drosophila mushroom body in vivo.

Authors:  Anthi A Apostolopoulou; Andrew C Lin
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8.  Gamma neurons mediate dopaminergic input during aversive olfactory memory formation in Drosophila.

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9.  Representations of Novelty and Familiarity in a Mushroom Body Compartment.

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10.  Analysis of natural variation reveals neurogenetic networks for Drosophila olfactory behavior.

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Journal:  Proc Natl Acad Sci U S A       Date:  2012-12-31       Impact factor: 11.205

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