Bacterial Suspension Imaging

Bacterial suspension imaging is the visualization of bacterial cells dispersed in a liquid medium, enabling researchers to examine cell shape, abundance, organization, and behavior in conditions that preserve a free-floating population. In microscopy, a prepared suspension is placed in an imaging chamber, and transmitted or fluorescent light is converted into contrast that distinguishes cells from the surrounding medium; time-lapse acquisition can capture movement and changes over time. This approach supports measurements of bacterial morphology, motility, growth, aggregation, and interactions with environmental or experimental conditions, providing quantitative evidence for studies in microbiology, physiology, ecology, and biotechnology.

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JoVE EoE - Immune Response

Infecting Flies with Bacterial Suspension Using a Nanoinjector

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2025

This video demonstrates the nano-injection of bacterial suspension into the fly body cavity, resulting in bacterial multiplication and infection. The fly's immune response clears some bacteria, while others escape immune clearance and survive within the host causing an infection.

Bacterial Endophthalmitis Mouse Model: A Method for Generating Bacterial Endophthalmitis via Intravitreal Injection of Bacterial Suspension into Eye of Mouse

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2025

This video describes a method for generating a mouse model that mimics bacterial endophthalmitis – an intraocular infection resulting from a bacterial invasion into the eye’s vitreous cavity – via intravitreal injection of a bacterial suspension into the eye. This mouse model helps study the disease mechanism and evaluate therapeutics for it.

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.

Imaging InlC Secretion to Investigate Cellular Infection by the Bacterial Pathogen Listeria monocytogenes

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Cited by 7 •

2013

Listeria monocytogenes is a Gram positive bacterial pathogen frequently used as a major model for the study of intracellular parasitism. Imaging late L. monocytogenes infection stages within the context of small-interfering RNA screens allows for the global study of cellular pathways required for bacterial infection of target host cells.

Bacterial Immobilization for Imaging by Atomic Force Microscopy

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Cited by 36 •

2011

Live Gram-negative and Gram-positive bacteria can be immobilized on gelatin-coated mica and imaged in liquid using Atomic Force Microscopy (AFM).

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