Flagellar Axoneme

The flagellar axoneme is the internal microtubule-based scaffold that gives eukaryotic cilia and flagella their structure and drives their movement. Typically organized as nine outer microtubule doublets surrounding a central pair, it uses ATP-powered dynein motors to generate sliding between adjacent doublets; structural links convert this sliding into coordinated bending. Axonemal activity propels sperm and other cells through fluid and moves extracellular materials across epithelial surfaces. Studying its architecture and mechanics helps explain cellular motility, ciliary signaling, and disorders caused by defects in cilia or flagella, including impaired sperm movement and respiratory dysfunction.

Flagellar Axoneme - Related Videos

Research

JoVE Journal - Biology

Biophysical Characterization of Flagellar Motor Functions

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Cited by 8 •

2017

Recent findings suggest that bacterial flagellar motors sense a variety of environmental signals and remodel in response. The bead-assays discussed here are expected to help explain the role of remodeling in cellular adaptation to environmental stressors.

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.

Evaluation of Planar-Cell-Polarity Phenotypes in Ciliopathy Mouse Mutant Cochlea

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Cited by 8 •

2016

Primary cilia influence various signaling pathways. The mammalian cochlea is ideal for examining planar cell polarity (PCP) signaling. Cilia dysfunction affects cochlear outgrowth, cellular patterning and hair cell orientation, readouts of PCP. Our goal is to analyze PCP signaling in mouse cochlea via phenotypic analysis, immunohistochemistry and scanning electron microscopy.

Preparation and Observation of Thick Biological Samples by Scanning Transmission Electron Tomography

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Cited by 9 •

2017

This report describes a sample preparation protocol and specific imaging conditions for performing scanning transmission electron tomography of thick biological specimens.

Research

JoVE Journal - Immunology and Infection
Free Sample

A Modified EPA Method 1623 that Uses Tangential Flow Hollow-fiber Ultrafiltration and Heat Dissociation Steps to Detect Waterborne Cryptosporidium and Giardia spp.

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Cited by 11 •

2012

This protocol describes the use of a tangential flow hollow-fiber ultrafiltration sample concentration system and a heat dissociation as alternative steps for the detection of waterborne Cryptosporidium and Giardia species using EPA Method 1623.

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