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Drosophila Fezf coordinates laminar-specific connectivity through cell-intrinsic and cell-extrinsic mechanisms

View ORCID ProfileMatthew Pecot, Ivan Santiago, Jing Peng, Curie Ahn, Burak Gur, Chundi Xu, Aziz Karakhanyan, Marion Silies
doi: https://doi.org/10.1101/231399
Matthew Pecot
Harvard Medical School, United States;
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  • For correspondence: matthew_pecot@hms.harvard.edu
Ivan Santiago
Harvard Medical School, United States;
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Jing Peng
Harvard Medical School, United States;
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Curie Ahn
Harvard Medical School, United States;
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Burak Gur
European Neuroscience Institute, United States
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Chundi Xu
Harvard Medical School, United States;
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Aziz Karakhanyan
Harvard Medical School, United States;
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Marion Silies
European Neuroscience Institute, United States
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Abstract

Laminar arrangement of neural connections is a fundamental feature of neural circuit organization. Identifying mechanisms that coordinate neural connections within correct layers is thus vital for understanding how neural circuits are assembled. In the medulla of the Drosophila visual system neurons form connections within ten parallel layers. The M3 layer receives input from two neuron types that sequentially innervate M3 during development. Here we show that M3-specific innervation by both neurons is coordinated by Drosophila Fezf (dFezf), a conserved transcription factor that is selectively expressed by the earlier targeting input neuron. In this cell, dFezf instructs layer specificity and activates the expression of a secreted molecule (Netrin) that regulates the layer specificity of the other input neuron. We propose that employment of transcriptional modules that cell-intrinsically target neurons to specific layers, and cell-extrinsically recruit other neurons is a general mechanism for building layered networks of neural connections.

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The copyright holder for this preprint is the author/funder. It is made available under a CC-BY 4.0 International license.
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  • Posted December 8, 2017.

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Drosophila Fezf coordinates laminar-specific connectivity through cell-intrinsic and cell-extrinsic mechanisms
Matthew Pecot, Ivan Santiago, Jing Peng, Curie Ahn, Burak Gur, Chundi Xu, Aziz Karakhanyan, Marion Silies
bioRxiv 231399; doi: https://doi.org/10.1101/231399
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Drosophila Fezf coordinates laminar-specific connectivity through cell-intrinsic and cell-extrinsic mechanisms
Matthew Pecot, Ivan Santiago, Jing Peng, Curie Ahn, Burak Gur, Chundi Xu, Aziz Karakhanyan, Marion Silies
bioRxiv 231399; doi: https://doi.org/10.1101/231399

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