Area of research
Cellular and Molecular Neuroscience · Developmental Neuroscience
Research interest
Research interests include Neurogenesis and neuroplasticity mechanisms, Neuroscience and Neuropharmacology Research, Neural dynamics and brain function, and Neuroinflammation and Neurodegeneration Mechanisms.
Pyramidal neurons proportionately alter cortical interneuron subtypes.
Developmental dysregulation of chandelier cell excitability in a mouse model of Dravet Syndrome
Feature-specific threat coding in lateral septum guides defensive action
An enhancer-AAV toolbox to target and manipulate distinct interneuron subtypes
An anatomical and physiological basis for flexible coincidence detection in the auditory system.
Exploring brain circuits, one cell type-or more- at a time.
Reciprocal interaction between cortical SST and PV interneurons in top-down regulation of retinothalamic refinement.
An anatomical and physiological basis for flexible coincidence detection in the auditory system
Discrete interneuron subsets participate in GluN1/GluN3A excitatory glycine receptor (eGlyR)-mediated regulation of hippocampal network activity throughout development and evolution
Feature-specific threat coding in lateral septum guides defensive action
Reciprocal interaction between cortical SST and PV interneurons in top-down regulation of retinothalamic refinement
Biologically grounded neocortex computational primitives implemented on neuromorphic hardware improve vision transformer performance.
Discrete interneuron subsets participate in GluN1/GluN3A excitatory glycine receptor (eGlyR)-mediated regulation of hippocampal network activity throughout development and evolution
LARIS enables accurate and efficient ligand and receptor interaction analysis in spatial transcriptomics
A novel and evolutionarily conserved inhibitory circuit selectively regulates dentate gyrus mossy cell function
Layer 1 neocortex: Gating and integrating multidimensional signals.
Pyramidal neurons proportionately alter the identity and survival of specific cortical interneuron subtypes
Metabotropic signaling within somatostatin interneurons controls transient thalamocortical inputs during development.
Neurogliaform Cells Exhibit Laminar-specific Responses in the Visual Cortex and Modulate Behavioral State-dependent Cortical Activity
Neurogliaform Cells Exhibit Laminar-specific Responses in the Visual Cortex and Modulate Behavioral State-dependent Cortical Activity
Divergent opioid-mediated suppression of inhibition between hippocampus and neocortex across species and development
Neurogliaform Cells Exhibit Laminar-specific Responses in the Visual Cortex and Modulate Behavioral State-dependent Cortical Activity
Pyramidal neurons proportionately alter the identity and survival of specific cortical interneuron subtypes
Biologically Realistic Computational Primitives of Neocortex Implemented on Neuromorphic Hardware Improve Vision Transformer Performance
Neurogliaform Cells Exhibit Laminar-specific Responses in the Visual Cortex and Modulate Behavioral State-dependent Cortical Activity
Cortical somatostatin interneuron subtypes form cell-type-specific circuits
Nova proteins direct synaptic integration of somatostatin interneurons through activity-dependent alternative splicing.
Author response: Nova proteins direct synaptic integration of somatostatin interneurons through activity-dependent alternative splicing
Metabotropic signaling within somatostatin interneurons controls transient thalamocortical inputs during development
Single-cell delineation of lineage and genetic identity in the mouse brain.