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Rodas, J. D.

Publications and source records attributed to Rodas, J. D..

2 recordsLinked to original sources

Temporal and Notch identity determine layer targeting and synapse location of medulla neurons

How specification mechanisms that generate neural diversity translate into specific neuronal targeting, connectivity, and function in the adult brain is not understood. In the medulla region of the Drosophila optic lobe, neural progenitors generate different neurons in a fixed order by sequentially expressing a series of temporal transcription factors as they age. Then, Notch signaling in intermediate progenitors further diversifies neuronal progeny. Using the Electron Microscopy reconstruction of the adult fly brain, we matched the temporal and Notch identity of medulla neurons with their adult targeting features across the different optic lobe neuropils at synapse resolution, and found that these specification mechanisms are significantly associated with the depth of neuropil targeting in the adult brain, for both local interneurons and projection neurons. We show that this temporal identity-dependent targeting of projection neurons unfolds early in development and is genetically determined. Notably, synapse location in the adult brain of putative medulla neurons can be used to predict their temporal origin. Moreover, synapses of neuronal types from different connectome-predicted functional subsystems are compartmentalized in the different neuropils, suggesting a link between synaptic stratification and specific visual functions. Finally, we show that candidate terminal selector TFs are significantly associated with a specific depth bias in the optic lobe neuropils, providing putative molecular determinants of this targeting. Together, we show that temporal identity and Notch status of medulla neurons can predict their neuropil synapse location, linking their developmental patterning with adult circuit architecture.

developmental biology↗

Comparative analysis of tardigrade locomotion across life stage, species, and pharmacological treatment

Animal locomotion requires coordination between the central and peripheral nervous systems, between sensory inputs and motor outputs, and between nerves and muscles. Analysis of locomotion thus provides a comprehensive and sensitive readout of nervous system function and dysfunction. Tardigrades, the smallest known walking animals, coordinate movement of their eight legs with a relatively simple nervous system, and are a promising model for neuronal control of limb-driven locomotion. Here, we developed open-source tools for automated tracking of tardigrade locomotion in an unconstrained two-dimensional environment, for measuring multiple parameters of individual leg movements, and for quantifying interleg coordination. We used these tools to analyze >13,000 complete strides in >100 tardigrades, and identified preferred walking speeds and distinct step coordination patterns associated with those speeds. In addition, the rear legs of tardigrades, although they have distinct anatomy and step kinematics, were nonetheless incorporated into overall patterns of interleg coordination. Finally, comparisons of tardigrade locomotion across lifespan, between species, and between pharmacological treatments suggested that neuronal regulation of high-level aspects of walking (e.g. speed, turns, walking bout initiation) operate independently from circuits controlling individual leg movements and interleg coordination.

animal behavior and cognition↗