Wide-area Imaging

Wide-area imaging is a medical imaging approach that captures anatomical or physiological information across a broad field of view in a single acquisition or coordinated series, helping clinicians assess spatial patterns that smaller scans may miss. It works by combining optics, detectors, and image-processing methods to record signals from an expanded region and assemble them into a detailed image while preserving clinically useful contrast and structure. In medicine, wide-area imaging can support tissue assessment, lesion and vascular mapping, surgical guidance, screening, and longitudinal monitoring, providing a broader view for diagnosis and treatment planning.

Wide-area Imaging - Related Videos

Research

JoVE Journal - Biology

Long-term Imaging Mammalian Cells using Wide-Field Microscopy

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2006

A Large Lateral Craniotomy Procedure for Mesoscale Wide-field Optical Imaging of Brain Activity

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Cited by 18 •

2017

This protocol presents a method for creating a large unilateral craniotomy over the temporal and parietal regions of the mouse cerebral cortex. This is especially useful for real time imaging over an expansive area of a cortical hemisphere.

Wide-field Fluorescent Microscopy and Fluorescent Imaging Flow Cytometry on a Cell-phone

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Cited by 32 •

2013

We review our recent results on the integration of fluorescent microscopy and imaging flow cytometry tools on a cell-phone using compact and cost-effective opto-fluidic attachments. These cell-phone based micro-analysis devices might be useful for cytometric analysis, such as performing various cell counting tasks as well as for high-throughput screening of e.g., water samples in resource limited settings.

Research

JoVE Journal - Neuroscience
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In Vivo Wide-Field and Two-Photon Calcium Imaging from a Mouse Using a Large Cranial Window

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Cited by 9 •

2022

The present protocol describes making a large (6 x 3 mm2) cranial window using food wrap, transparent silicone, and cover glass. This cranial window allows in vivo wide-field and two-photon calcium imaging experiments in the same mouse.

Wide-Field, Real-Time Imaging of Local and Systemic Wound Signals in Arabidopsis

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Cited by 7 •

2021

Extracellular glutamate-triggered systemic calcium signaling is critical for the induction of plant defense responses to mechanical wounding and herbivore attack in plants. This article describes a method to visualize the spatial and temporal dynamics of both these factors using Arabidopsis thaliana plants expressing calcium- and glutamate-sensitive fluorescent biosensors.

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