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Newstein, P.

Publications and source records attributed to Newstein, P..

2 recordsLinked to original sources

Homeodomain protein codes specify neuronal diversity in the first ganglion of the Drosophila visual system

The brain deploys diverse neuronal subtypes to split complex inputs into parallel channels--each tuned to distinct features--enabling rich neural processing. Yet how progenitors generate distinct but functionally related subtypes remains unknown. In the Drosophila lamina (five lamina neuron subtypes receiving photoreceptor input), we uncover the regulatory logic: a pan-class homeodomain transcription factor (HDTF), induced by Hedgehog in progenitors and maintained in all lamina neurons, drives diversification within the lamina neuron class by orchestrating a four-step program across the progenitor-to-newborn neuron transition. Specifically, it establishes progenitor identity, promotes cell-cycle exit, induces subtype-specific HDTFs, and acts as their obligate cofactor to specify distinct subtypes. Loss of subtype-specific HDTFs in newborn--but not older--neurons drives subtype-to-subtype fate conversions at molecular, morphological, and functional levels, including a contrast-to-luminance encoding switch. In the mouse retina, we find that each of the 63 amacrine, 15 bipolar, and 45 retinal ganglion cell subtypes expresses pan-class and subtype-specific HDTFs, indicating evolutionary conservation of this regulatory logic. Given the brain-wide expression of HDTFs across species, these findings convert a longstanding mystery into a testable, generalizable principle for within-class subtype diversification and lay the groundwork for subtype-precise reprogramming and cell replacement strategies.

developmental biology↗

RECIPROCALLY INHIBITORY CIRCUITS OPERATING WITH DISTINCT MECHANISMS ARE DIFFERENTLY ROBUST TO PERTURBATION AND MODULATION

What features are important for circuit robustness? Reciprocal inhibition is a building block in many circuits. We used dynamic clamp to create reciprocally inhibitory circuits from pharmacologically isolated neurons of the crab stomatogastric ganglion by injecting artificial synaptic (ISyn) and hyperpolarization-activated inward (IH) currents. There are two mechanisms of antiphase oscillations in these circuits: "escape" and "release". In release, the active neuron primarily controls the off/on transitions. In escape, the inhibited neuron controls the transitions. We characterized the robustness of escape and release circuits to alterations in circuit parameters, temperature, and neuromodulation. We found that escape circuits rely on tight correlations between synaptic and H conductances to generate bursting but are resilient to temperature increase. Release circuits are robust to variations in synaptic and H conductances but fragile to temperature increase. The modulatory current (IMI) restores oscillations in release circuits but has little effect in escape circuits. Thus, the same perturbation can have dramatically different effects depending on the circuits mechanism of operation that may not be observable from basal circuit activity.

neuroscience↗