Bacterial Flagella

Bacterial flagella are slender, rotating appendages that propel bacterial cells through liquid or across surfaces, making them central to motility and environmental adaptation. Each flagellum consists of a basal body, hook, and helical filament; an ion-driven motor, powered primarily by the proton motive force, rotates the filament, while chemotaxis signaling changes rotation to guide movement toward favorable conditions. Studying bacterial flagella helps explain how cells navigate chemical gradients, colonize surfaces, form biofilms, and contribute to infection. Flagellar structure and movement also support bacterial classification, antimicrobial research, and the design of engineered microswimmers.

Bacterial Flagella - Related Videos

Education

JoVE Core - Microbiology

Flagella and Motility in Bacteria

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2025

Flagella are specialized, thread-like structures that extend from a bacteria's cell envelope. They play a crucial role in motility and chemotaxis. Their structural organization and functioning exemplify sophisticated biological engineering, enabling bacterial survival and adaptability in diverse environments.Structure of the FlagellumA bacterial flagellum consists of three key components: the filament, the hook, and basal body. The filament, a long, helical structure composed of repeating...

Research

JoVE EoE - Rodent Models

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.

Research

JoVE Journal - Biology
Free Sample

Electron Cryotomography of Bacterial Cells

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Cited by 21 •

2010

We illustrate here how to use electron cryotomography (ECT) to study the ultrastructure of bacterial cells in near-native states, to "macromolecular" (~4 nm) resolution.

Visualization of Bacterial Motility Using Redox Dye–Supplemented Semisolid Medium

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2025

Source: Chu, W., and Zhuang, X. Visualizing Bacterial Motility Based on a Color Reaction. J. Vis. Exp. (2022)This video demonstrates a redox dye-based semisolid agar assay for assessing bacterial motility by visually distinguishing motile and non-motile strains.

Assessing Bacterial Swarming Using a Gradient Inhibitor Plate

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2025

Source: Guo, S., et al. Quantifying Bacterial Surface Swarming Motility on Inducer Gradient Plates. J. Vis. Exp. (2022).This video demonstrates the use of a double-layer gradient swarm plate to study bacterial swarming behavior under varying inhibitor concentrations. A plate with a gradient-forming inhibitor in the bottom layer is inoculated with bacteria and incubated. Images are captured at regular intervals to analyze the effect of inhibitor concentration on bacterial swarming.

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