Area of research
Biophysics · Structural Biology
Research interest
Argonne conducts fundamental research to understand, predict, and ultimately control matter and energy at the electronic, atomic, and molecular levels. Through a continual pursuit of excellence and scientific achievement, our broad research agenda and unique scientific facilities support every aspect of the innovation ecology: basic research, technology development, and prototype development and testing.
Dense, continuous membrane labeling and expansion microscopy visualization of ultrastructure in tissues
Integrating machine learning and geospatial approaches for multi-hazard vulnerability mapping: implications for environmental health and contaminant risk in fragile ecosystems
Photocatalytic degradation of imidacloprid using biomass derived S/N-doped carbon dots: Insights into antimicrobial activity and zebrafish embryo toxicity
OsO <sub>2</sub> as the Contrast‐Generating Chemical Species of Osmium‐Stained Biological Tissues in Electron Microscopy
Isochronic development of cortical synapses in primates and mice
Regional cytoarchitecture of the adult and developing mouse enteric nervous system
Layer 5 of cortex innervates the thalamic reticular nucleus in mice
Ultrastructural analysis of dendritic spine necks reveals a continuum of spine morphologies
Integration of signals from different cortical areas in higher order thalamic neurons
Primate neuronal connections are sparse in cortex as compared to mouse
Multi-modal imaging of a single mouse brain over five orders of magnitude of resolution
AxonEM Dataset: 3D Axon Instance Segmentation of Brain Cortical Regions
Neuronal BIN1 Regulates Presynaptic Neurotransmitter Release and Memory Consolidation
An ultrastructural connectomic analysis of a higher‐order thalamocortical circuit in the mouse
ZO-1 Regulates Intercalated Disc Composition and Atrioventricular Node Conduction
Low-dose x-ray tomography through a deep convolutional neural network
Flexible Learning-Free Segmentation and Reconstruction of Neural Volumes
International Neuroscience Initiatives through the Lens of High-Performance Computing
Flexible Learning-Free Segmentation and Reconstruction for Sparse Neuronal Circuit Tracing
Publisher Correction: Flexible Learning-Free Segmentation and Reconstruction of Neural Volumes
Quantifying Mesoscale Neuroanatomy Using X-Ray Microtomography
High-Performance Computing in Neuroscience for Data-Driven Discovery, Integration, and Dissemination
Saturated Reconstruction of a Volume of Neocortex
NeuroBlocks – Visual Tracking of Segmentation and Proofreading for Large Connectomics Projects
Distinct Profiles of Myelin Distribution Along Single Axons of Pyramidal Neurons in the Neocortex
Stacked Endoplasmic Reticulum Sheets Are Connected by Helicoidal Membrane Motifs
The open connectome project data cluster
High-contrast en bloc staining of neuronal tissue for field emission scanning electron microscopy
Pervasive Synaptic Branch Removal in the Mammalian Neuromuscular System at Birth