3D-reconstruction of living brain tissue down to individual synapse level would create opportunities for decoding the dynamics and structure-function relationships of the brain’s complex and dense information processing network. However, it has been hindered by insufficient 3D-resolution, inadequate signal-to-noise-ratio, and prohibitive light burden in optical imaging, whereas electron microscopy is inherently static. Here we solved these challenges by developing an integrated optical/machine learning technology, LIONESS (Live Information-Optimized Nanoscopy Enabling Saturated Segmentation). It leverages optical modifications to stimulated emission depletion (STED) microscopy in comprehensively, extracellularly labelled tissue and prior in...
Stimulated emission depletion (STED) microscopy enables the three-dimensional (3D) visualization of ...
Brain neurons display considerable plasticity during early circuit formation and throughout life. Ad...
The complex, nanoscopic scale of neuronal function, taking place at dendritic spines, axon terminals...
Complex wiring between neurons underlies the information-processing network enabling all brain funct...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Thesis: S.M. in Neuroscience, Massachusetts Institute of Technology, Department of Brain and Cogniti...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Optical microscopy, owing to its noninvasiveness and subcellular resolution, enables in vivo visuali...
In order to understand how memory is processed and stored in the brain, it would be helpful to obser...
Cells in the brain act as components of extended networks. Therefore, to understand neurobiological ...
Stimulated emission depletion (STED) microscopy enables the three-dimensional (3D) visualization of ...
Imaging is a dominant strategy for data collection in neuroscience, yielding stacks of images that o...
Mapping neuroanatomy, in the pursuit of linking hypothesized computational models consistent with ob...
SummaryWe describe automated technologies to probe the structure of neural tissue at nanometer resol...
Stimulated emission depletion (STED) microscopy enables the three-dimensional (3D) visualization of ...
Brain neurons display considerable plasticity during early circuit formation and throughout life. Ad...
The complex, nanoscopic scale of neuronal function, taking place at dendritic spines, axon terminals...
Complex wiring between neurons underlies the information-processing network enabling all brain funct...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Thesis: S.M. in Neuroscience, Massachusetts Institute of Technology, Department of Brain and Cogniti...
Mapping the complex and dense arrangement of cells and their connectivity in brain tissue demands na...
Optical microscopy, owing to its noninvasiveness and subcellular resolution, enables in vivo visuali...
In order to understand how memory is processed and stored in the brain, it would be helpful to obser...
Cells in the brain act as components of extended networks. Therefore, to understand neurobiological ...
Stimulated emission depletion (STED) microscopy enables the three-dimensional (3D) visualization of ...
Imaging is a dominant strategy for data collection in neuroscience, yielding stacks of images that o...
Mapping neuroanatomy, in the pursuit of linking hypothesized computational models consistent with ob...
SummaryWe describe automated technologies to probe the structure of neural tissue at nanometer resol...
Stimulated emission depletion (STED) microscopy enables the three-dimensional (3D) visualization of ...
Brain neurons display considerable plasticity during early circuit formation and throughout life. Ad...
The complex, nanoscopic scale of neuronal function, taking place at dendritic spines, axon terminals...