Connectomics Research

Connectomics research is the study of the brain’s wiring diagram, mapping connections among neurons and brain regions to understand how structure supports function. It combines anatomical, imaging, and computational methods to trace neural pathways, quantify synapses, and organize connectivity data into networks at scales ranging from individual cells to whole brains. In neuroscience, these maps help researchers relate circuit architecture to perception, behavior, learning, and disease. Connectomics also supports comparisons across development, species, and neurological conditions, providing a framework for identifying disrupted circuits and generating testable models of brain function.

Connectomics Research - Related Videos

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JoVE Journal - Neuroscience

A Scanning Electron Microscopy-Compatible Optical Imaging Method for Mesoscopic All-Cell Brain Mapping

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2026

We introduced a novel imaging technique called Optical Multilayer Interference Tomography (OMLIT), which enables unbiased imaging of all cells in brain specimens at the mesoscale and can be seamlessly integrated into the imaging workflow of tape-based serial scanning electron microscopy on the same sample.

Cytotoxic Efficacy of Photodynamic Therapy in Osteosarcoma Cells In Vitro

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Cited by 8 •

2014

The protocol reported here allows the evaluation of the efficacy of photodynamic therapy (PDT) in cell lines and the optimization of the PDT settings before applying the therapy in animal models.

Fiber Connections of the Supplementary Motor Area Revisited: Methodology of Fiber Dissection, DTI, and Three Dimensional Documentation

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Cited by 32 •

2017

The purpose of this study is to show each step of the fiber dissection technique on human cadaveric brains, the 3D documentation of these dissections, and the diffusion tensor imaging of the anatomically dissected fiber pathways.

Structure-Guided Design and Development of Novel Cyclophilin A Inhibitors and Ganoderiol-F Derivatives: An In-Silico Approach

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2026

Here, we present a protocol for the structure-guided design of protein-ligand binding interaction between Sanglifehrin A and Cyclophilin A/Ganoderiol-F, essential in discovering new drugs. The stability of the ligand-receptor complex was evaluated using molecular dynamics simulation.

Anatomically Inspired Three-dimensional Micro-tissue Engineered Neural Networks for Nervous System Reconstruction, Modulation, and Modeling

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Cited by 40 •

2017

This manuscript details the fabrication of micro-tissue engineered neural networks: three-dimensional micron-sized constructs comprised of long aligned axonal tracts spanning aggregated neuronal population(s) encased in a tubular hydrogel. These living scaffolds can serve as functional relays to reconstruct or modulate neural circuitry or as biofidelic test-beds mimicking gray-white matter neuroanatomy.

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