Epicranial Aponeurosis

The epicranial aponeurosis, also called the galea aponeurotica, is a tough sheet of connective tissue that forms a major layer of the scalp and links the frontal and occipital bellies of the occipitofrontalis muscle. When these muscle portions contract, tension transmitted through the aponeurosis moves the scalp and contributes to forehead elevation and scalp mobility, while loose connective tissue beneath it permits gliding over the pericranium. In biology and anatomy, this structure provides a clear example of how muscles, fascia, and skin work together. Its organization also has clinical importance because scalp injuries can separate tissue layers and produce substantial bleeding.

Epicranial Aponeurosis - Related Videos

Research

JoVE Journal - Bioengineering

Semiautomated Longitudinal Microcomputed Tomography-based Quantitative Structural Analysis of a Nude Rat Osteoporosis-related Vertebral Fracture Model

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Cited by 1 •

2017

The goal of this protocol is to generate a nude rat osteoporosis-related vertebral compression fracture model that can be longitudinally evaluated in vivo using a semiautomated microcomputed tomography-based quantitative structural analysis.

Combination of High Ligation and Intraoperative Embolization Using Polidocanol for Treatment of Varicoceles

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2023

To reduce the postoperative recurrence rate of varicocelectomy, we combined high ligation of varicocele with intraoperative embolization. We injected polidocanol from the spermatic vein during surgery to embolize the branches of the spermatic vein and collateral veins. This is an alternative surgical method for the treatment of varicocele.

Modified Long Head of Biceps Tendon Rerouting and Fixation as Partial Capsular Reconstruction for Massive Irreparable Rotator Cuff Tears

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2026

We propose a technical modification for capsular reconstruction that utilizes arthroscopic rerouting and fixation of the long head of the biceps tendon to enhance the repair of massive irreparable rotator cuff tears.

Acute In Vivo Electrophysiological Recordings of Local Field Potentials and Multi-unit Activity from the Hyperdirect Pathway in Anesthetized Rats

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Cited by 13 •

2017

In this study, the methodology is presented on how to perform multi-site in vivo electrophysiological recordings from the hyperdirect pathway under urethane anesthesia.

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