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Javorski, D.

Publications and source records attributed to Javorski, D..

2 recordsLinked to original sources

An extraglomerular relay circuit for multimodal integration within the Drosophila antennal lobe

The central integration of sensory information within and between brain hemispheres is critical for efficient behavioral responses, but at which level of information processing multimodal integration occurs is poorly understood. In olfactory systems an array of receptor-specific synaptic glomeruli with corresponding projection neurons (PNs) form separate sensory channels within each hemisphere, which run in parallel with other sensory modalities to converge at higher brain regions. We recently identified a small cluster of commissural pioneer neurons (cPINs) in the Drosophila olfactory system, which controls the formation of bilateral sensory circuits to support interhemispheric integration at the first synaptic layer. Here we show that cPINs also mediate the integration of sensory channels by relaying class-specific input within the antennal lobe. Functional studies showed that medial cPINs converge olfactory amine/ammonia input with a class of non-olfactory PNs to trigger attraction. During olfactory circuit formation, growing cPINs specify separate dendritic input/output domains, which merge into distinct glomeruli of different sensory modalities. Mutant analysis of the Wnt5 pathway revealed that cPINs display an initial PN-related growth pattern, which becomes redirected to organize lateral relay between sensory channels. These results identified a small cluster of olfactory interneurons as a central coordinator for fast convergence of sensory information, providing a mechanistic model of neural circuit evolution.

neuroscience↗

Structural basis of CO2 valence coding in Drosophila

In the olfactory system, glomerular sensory channels of single receptor identity support reliable odor recognition for appropriate approach or avoidance behaviors. For many olfactory stimuli, the assigned sensory value is innate but modulated by the internal state and previous experiences. How context-dependent modulation of innate valence coding supports distinct behavioral responses is poorly understood. Here we show that CO2 sensory information in Drosophila, intrinsically aversive but modified by attractive food signals, diverges from the canonical glomerular channel already in the antennal lobe and is relayed via the polarized local interneuron LN23. LN23 relays sensory input via an extraglomerular CO2 pathway and manipulation of LN23 activity revealed a dominant role in CO2-induced avoidance behavior. The extraglomerular CO2 pathway projects to the posterior lateral protocerebrum (PLP) adjacent to the canonical Lateral Horn (LH) olfactory processing center and segregates into anatomically distinct valence channels. Connectome data together with functional characterization showed the convergence of parallel CO2 channels onto two interconnected third-order neurons. These neurons integrate additional sensory modalities via distinct mechanisms: while the glomerular CO2 pathway converges with food relay neurons onto separated dendritic domains of the PD5 interneuron in the LH, the extraglomerular pathways integrating CO2 information with antennal humidity and temperature modalities establish antagonistic inputs onto the PLP interneuron PV9. This early anatomical divergence of a defined olfactory channel followed by separated multi-modal integration provides a structural basis for context-dependent valence coding and appropriate behavioral responses.

neuroscience↗