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Shreyas Suryanarayana

@shreyasms.bsky.social
119 followers 332 following 10 posts

Neuroscientist @Duke Neurobiology, Postdoc with Josh Huang. Interested in cortex, thalamus, motor control, development and evolution.

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Reposted by Shreyas Suryanarayana
ISDN @isdnsociety.bsky.social · 18/08/2026
The #ISDN2027 symposium neuronal morphogenesis and connectivity will be completed by Achintya Srivastava from @tifr.res.in and @shreyasms.bsky.social from Duke University. Online registration for ISDN2027 at JNCASR in Bengaluru, India will open soon via www.isdnsociety.org
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Reposted by Shreyas Suryanarayana
Emre Yaksi @emreyaksi.bsky.social · 17/07/2026
🧠 A new paper from our lab is out! In this study, we explore how dorsal raphe nucleus (DRN) circuits modulate forebrain activity and behavior. www.nature.com/articles/s41...
nature.com
Topographically organized dorsal raphe activity modulates forebrain sensory-motor representations and contributes to defensive behaviors - Nature Communications
Functional heterogeneity of dorsal raphe nucleus is not fully understood. Here authors show topographically organized sensory and locomotor responses from the zebrafish dorsal raphe and its forebrain ...
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Reposted by Shreyas Suryanarayana
LifeCanvas Technologies @lifecanvastech.bsky.social · 08/05/2026
How does the cerebral cortex form connections with other parts of the CNS? This #SmartSPIM data again comes from @shreyasms.bsky.social, this time showing projections of ET neurons from the visual cortex to different parts of the 🧠. Read the paper to learn more: bit.ly/48YsZxn #FluorescenceFriday
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LifeCanvas Technologies @lifecanvastech.bsky.social · 24/04/2026
A new study from Josh Huang’s lab @ Duke combines viral tracing techniques with whole-brain #tissueclearing and #lightsheet imaging to explore how early brain development shapes cortical connections with the rest of the nervous system: bit.ly/48YsZxn #FluorescenceFriday @shreyasms.bsky.social
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Shreyas Suryanarayana @shreyasms.bsky.social · 25/03/2026
Happy to share my first postdoc paper, now out in @cp-neuron.bsky.social 🧠 We show how two distinct neurogenic pathways direct and indirect neurogenesis, differentially shape the cortical efferent projectome, linking evo-devo to adult connectivity and function. www.sciencedirect.com/science/arti...
sciencedirect.com
Distinct neurogenic pathways shape the diversification and mosaic organization of cortical output channels
The cerebral cortex broadcasts its output to subcortical regions through the projections of diverse extratelencephalic (ET) neurons derived from eithe…
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Reposted by Shreyas Suryanarayana
Debby Silver @debbysilver.bsky.social · 19/03/2026
Delighted to share that our study is now out @cp-cellstemcell.bsky.social www.cell.com/cell-stem-ce... Congrats to Dr. @federicamosti.bsky.social for the culmination of a beautiful thesis!
cell.com
Species-specific chromatin architecture and neurogenesis mediated by a human enhancer
How human-specific DNA changes shape brain development is poorly understood. Mosti et al. discover a human enhancer, HAR1984, which drives ETV5 and TRA2B expression via human-enriched chromatin intera...
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Reposted by Shreyas Suryanarayana
Drew Schreiner @schreinerdrew.bsky.social · 21/01/2026
Where does learning through imitation happen in the brain? In juvenile zebra finches, we pinpoint a synaptic locus of song learning in a cortico-basal ganglia circuit and leverage this localization to measure the timescale of consolidation and make birds learn faster! #neuroskyence (1/14)
biorxiv.org
A synaptic locus of song learning
Learning by imitation is the foundation for verbal and musical expression, but its underlying neural basis remains obscure. A juvenile male zebra finch imitates the multisyllabic song of an adult tutor in a process that depends on a song-specialized cortico-basal ganglia circuit, affording a powerful system to identify the synaptic substrates of imitative motor learning. Plasticity at a particular set of cortico-basal ganglia synapses is hypothesized to drive rapid learning-related changes in song before these changes are subsequently consolidated in downstream circuits. Nevertheless, this hypothesis is untested and the synaptic locus where learning initially occurs is unknown. By combining a computational framework to quantify song learning with synapse-specific optogenetic and chemogenetic manipulations within and directly downstream of the cortico-basal ganglia circuit, we identified the specific cortico-basal ganglia synapses that drive the acquisition and expression of rapid vocal changes during juvenile song learning and characterized the hours-long timescale over which these changes consolidate. Furthermore, transiently augmenting postsynaptic activity in the basal ganglia briefly accelerates learning rates and persistently alters song, demonstrating a direct link between basal ganglia activity and rapid learning. These results localize the specific cortico-basal ganglia synapses that enable a juvenile songbird to learn to sing and reveal the circuit logic and behavioral timescales of this imitative learning paradigm. ### Competing Interest Statement The authors have declared no competing interest. National Institutes of Health, K99 NS144525 (DCS), F32 MH132152 (DCS), F31 HD098772 (SB), R01 NS099288 (RM), RF1 NS118424 (RM and JP)
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Emre Yaksi @emreyaksi.bsky.social · 24/10/2025
What a pleasure to have Prof Sten Grillner form @ki.se visiting us at Kavli Institute for Systems Neuroscience for 2 full days and inspiring us about vertebrate forebrain evolution
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Shreyas Suryanarayana @shreyasms.bsky.social · 25/07/2025
Will start my posts here with a preprint! First preprint from my postdoctoral work—where we redefine and remap the isocortical efferent projectome through two foundational neurogenic mechanisms. * (1/5)
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