C-shaped Cartilage

C-shaped cartilage refers to the incomplete rings of hyaline cartilage that reinforce the trachea, helping maintain an open airway while preserving flexibility. Each ring curves around the anterior and lateral walls of the trachea, leaving a posterior gap bridged by the trachealis muscle and connective tissue; this arrangement prevents airway collapse while allowing the esophagus to expand during swallowing. In biology, understanding C-shaped cartilage clarifies respiratory anatomy, airflow, swallowing, and the structural basis of airway protection. Its organization also provides context for interpreting tracheal injury, obstruction, and procedures involving airway management.

C-shaped Cartilage - Related Videos

Research

JoVE Journal - Developmental Biology

Morphometric Analyses of Shape: The Analysis Software Toolbox for Craniofacial Shape Quantification in Zebrafish

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2026

This work describes a protocol for quantifying craniofacial cartilage shape using free software (tpsDigs2, MorphoJ, and PAST) to measure changes in facial structure in zebrafish larvae.

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage

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Cited by 10 •

2015

Cell organization of craniofacial bones has long been hypothesized but never directly visualized. Multi-spectral cell labeling and in vivo live imaging allows visualization of dynamic cell behavior in zebrafish lower jaw. Here, we detail the protocol to manipulate Zebrabow transgenic fish and directly observe cell intercalation and morphological changes of chondrocytes in the Meckel’s cartilage.

Safranin-O Staining: A Method to Visualize the Structural Integrity and Cellularity of Cartilage

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2025

In this video, we demonstrate a staining procedure for cartilage using safranin-orange. This method helps visualize the cartilage and detect any damage.

Education

JoVE Core - Chemistry

Molecular Shape and Polarity

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2020

Dipole Moment of a Molecule Polar covalent bonds connect two atoms with differing electronegativities, leaving one atom with a partial positive charge (δ+) and the other atom with a partial negative charge (δ–), as the electrons are pulled toward the more electronegative atom. This separation of charge gives rise to a bond dipole moment. The magnitude of a bond dipole moment is represented by the Greek letter mu (µ) and is given by the formula shown here, where Q is the magnitude of the...

VSEPR Theory and the Basic Shapes

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2020

Overview of VSEPR Theory Valence shell electron-pair repulsion theory (VSEPR theory) enables us to predict the molecular structure, including approximate bond angles around a central atom, of a molecule from an examination of the number of bonds and lone electron pairs in its Lewis structure. The VSEPR model assumes that electron pairs in the valence shell of a central atom will adopt an arrangement that minimizes repulsions between these electron pairs by maximizing the distance between them.

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