In Vivo Imaging

In vivo imaging is the visualization of biological structures, processes, or activity within a living organism, allowing researchers to study biology without removing or destroying tissue. Depending on the modality, it detects signals such as fluorescence, bioluminescence, ultrasound echoes, X-rays, or magnetic resonance, often using contrast agents or genetically encoded reporters to generate images over time. In biology, these approaches reveal cell movement, gene expression, tissue development, disease progression, and responses to treatment in their native physiological context. Repeated imaging can track dynamic changes in the same subject, strengthening longitudinal studies while reducing the need for endpoint sampling.

In Vivo Imaging - Related Videos

Research

JoVE Journal - Immunology and Infection

Non-invasive In Vivo Fluorescence Optical Imaging of Inflammatory MMP Activity Using an Activatable Fluorescent Imaging Agent

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Cited by 4 •

2017

This paper explains the application of fluorescent imaging using an activatable optical imaging probe to visualize the in vivo activity of key matrix metalloproteinases in two different experimental models of inflammation.

Bioluminescent Bacterial Imaging In Vivo

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Cited by 9 •

2012

This article describes the administration of lux-tagged bacteria to mice and subsequent in vivo analysis using IVIS bioluminescence imaging.

Transient Optical Clearing Using Absorbing Molecules for Ex Vivo and In Vivo Imaging

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Cited by 1 •

2025

Optical clearing techniques, such as absorbing molecules solutions, reduce light scattering temporarily to enhance biological imaging and offer biocompatible, reversible in vivo imaging strategies for deeply embedded organs. This protocol presents detailed experimental procedures as well as advanced image processing to achieve high-quality, dynamic imaging for real-time dynamics in living animals.

Mesoscopic Fluorescence Tomography for In-vivo Imaging of Developing Drosophila

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Cited by 9 •

2009

Mesoscopic fluorescence tomography operates beyond the penetration limits of tissue-sectioning fluorescence microscopy. The technique is based on multi-projection illumination and a photon transport description. We demonstrate in-vivo whole-body 3D visualization of the morphogenesis of GFP-expressing wing imaginal discs in Drosophila melanogaster.

In vivo Neuronal Calcium Imaging in C. elegans

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Cited by 20 •

2013

With its small transparent body, well-documented neuroanatomy and a host of amenable genetic techniques and reagents, C. elegans makes an ideal model organism for in vivo neuronal imaging using relatively simple, low-cost techniques. Here we describe single neuron imaging within intact adult animals using genetically encoded fluorescent calcium indicators.

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