Cortical Imaging Depth

Cortical imaging depth is the maximum distance beneath the brain’s cortical surface at which an imaging method can resolve neural structure or activity, making it a key factor in selecting tools for neuroscience research. Depth depends on how light or other signals interact with tissue: scattering, absorption, and signal attenuation reduce image quality as the measurement path extends through cortex, while optical parameters and detector sensitivity influence the usable range. Understanding these limits helps researchers choose techniques for studying superficial layers, deeper cortical circuits, neuronal populations, and activity patterns, while guiding interpretation of data and the development of methods with improved penetration and resolution.

Cortical Imaging Depth - Related Videos

Research

JoVE Journal - Biology

In vivo Imaging of Deep Cortical Layers using a Microprism

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Cited by 11 •

2009

Right-angle microprisms inserted into the mouse neocortex allows for deep imaging of multiple cortical layers with a viewpoint typically found in slice. One-millimeter microprisms offer a wide field-of-view (~900 μm) and spatial resolutions sufficient to resolve dendritic spines. We demonstrate layer V neuronal imaging and neocortical vascular imaging using microprisms.

Calcium Imaging of Cortical Neurons using Fura-2 AM

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Cited by 108 •

2009

Calcium signals play a key role in many cellular processes including gene expression, survival and differentiation. Here we demonstrate how to perform calcium imaging using Fura-2 AM. Calcium imaging is a valuable tool to study the regulation of intracellular calcium in real time and its regulation of signaling cascades.

Assessing Cortical Cerebral Microinfarcts on High Resolution MR Images

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Cited by 24 •

2015

A high resolution ex vivo 7T MR imaging protocol is presented, to perform MR-guided histopathological validation of microvascular pathology in post-mortem human brain tissue. Furthermore, guidelines are provided for the assessment of cortical microinfarcts on in vivo 7T as well as 3T MR images.

How to Measure Cortical Folding from MR Images: a Step-by-Step Tutorial to Compute Local Gyrification Index

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Cited by 168 •

2012

Measuring gyrification (cortical folding) at any age represents a window into early brain development. Hence, we previously developed an algorithm to measure local gyrification at thousands of points over the hemisphere1. In this paper, we detail the computation of this local gyrification index.

Thinned-skull Cortical Window Technique for In Vivo Optical Coherence Tomography Imaging

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Cited by 16 •

2012

We present a method of creating a thinned-skull cortical window (TSCW) in a mouse model for in vivo OCT imaging of the cerebral cortex.

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