Anatomy clinical correlates: Thoracic wall

Last updated: November 01, 2022

Anatomy clinical correlates: Thoracic wall

PHU

PHU

Anatomical terminology
Human development week 2
Human development week 3
Ectoderm
Endoderm
Mesoderm
Introduction to the central and peripheral nervous systems
Introduction to the somatic and autonomic nervous systems
Introduction to the cranial nerves
Anatomy of the breast
Anatomy of the heart
Anatomy of the lungs and tracheobronchial tree
Bones and joints of the thoracic wall
Muscles of the thoracic wall
Vessels and nerves of the thoracic wall
Anatomy of the superior mediastinum
Anatomy of the inferior mediastinum
Anatomy of the pleura
Anatomy clinical correlates: Mediastinum
Anatomy clinical correlates: Thoracic wall
Anatomy clinical correlates: Pleura and lungs
Anatomy clinical correlates: Heart
Anatomy clinical correlates: Breast
Abdominal quadrants, regions and planes
Anatomy of the abdominal viscera: Esophagus and stomach
Anatomy of the abdominal viscera: Kidneys, ureters and suprarenal glands
Anatomy of the abdominal viscera: Liver, biliary ducts and gallbladder
Anatomy of the abdominal viscera: Small intestine
Anatomy of the diaphragm
Anatomy of the muscles and nerves of the posterior abdominal wall
Anatomy of the vessels of the posterior abdominal wall
Anatomy of the abdominal viscera: Blood supply of the foregut, midgut and hindgut
Anatomy of the abdominal viscera: Innervation of the abdominal viscera
Anatomy of the abdominal viscera: Large intestine
Anatomy of the abdominal viscera: Pancreas and spleen
Anatomy of the anterolateral abdominal wall
Anatomy of the inguinal region
Anatomy of the peritoneum and peritoneal cavity
Abdominal hernias
Inguinal hernias: Clinical sciences
Femoral hernias: Clinical sciences
Umbilical hernias: Clinical sciences
Ventral and incisional hernias: Clinical sciences
Inguinal hernia
Femoral hernia
Anatomy of the eye
Anatomy of the inner ear
Anatomy of the external and middle ear
Anatomy of the infratemporal fossa
Anatomy of the cranial base
Anatomy of the oral cavity
Anatomy of the nose and paranasal sinuses
Cranial nerve pathways
Bones of the cranium
Nerves and vessels of the face and scalp
Anatomy of the orbit
Muscles of the face and scalp
Anatomy of the salivary glands
Anatomy of the tongue
Anatomy of the pterygopalatine (sphenopalatine) fossa
Anatomy of the temporomandibular joint and muscles of mastication
Anatomy of the pharynx and esophagus
Anatomy of the larynx and trachea
Fascia and spaces of the neck

Transcript

Watch video only

If it wasn't for our thoracic wall, many of the important organs in our thoracic cavity would be unprotected and vulnerable to injury.

But sometimes the thoracic wall itself can be injured, which has a wide range of clinical consequences depending on the affected structures.

Let’s start by talking about the ribs.

First, like any other bone in our body, ribs can break, causing rib fractures.

These usually result from direct trauma or crushing injuries.

The middle ribs are the ones most commonly fractured.

The weakest part of a rib is the posterolateral bend, anterior to its angle.

However, direct trauma can cause a rib to fracture anywhere.

The broken part of the rib can harm internal organs, such as the liver, kidney or the spleen.

Rib fractures higher up can cause mediastinal injuries, and if the fracture is lower, then it can tear the diaphragm.

Furthermore, rib fractures at any level have the risk of causing an intrathoracic injury such as a pneumothorax, which is when there’s air in the pleural cavity, and that doesn’t allow the lung on that side to expand properly.

Since ribs move during respiration, coughing, laughing and sneezing are very painful after a rib fracture!

A related injury is a flail chest, which is when three or more ribs fracture in two or more places, which can allow a big segment of the thoracic wall to move freely.

During a normal inspiration, the thoracic wall expands outwards and increases its diameter, whereas during expiration, it decreases its diameter to expel air.

However, when there’s a flail chest, the movement is paradoxical, meaning that during inspiration, the free segment actually moves inward and during expiration, it moves outward.

This is an extremely painful injury that impairs ventilation, and, as a consequence, blood isn’t properly oxygenated.

Management wise, for a flail chest, you want to ensure adequate pain control and supplemental oxygen if needed.

If respiratory failure occurs as a result of the flail chest, then positive pressure ventilation can be used to force the flail chest segment out during inspiration.

Sometimes, a chest tube may also be required.

Now, between the ribs, in the anterior part of the chest, there’s the sternum, which is the protector of the mediastinal viscera.

Sources

  1. "Hyman's Comparative Vertebrate Anatomy" University of Chicago Press (1992)
  2. "Anatomy & Physiology" Wikipedia (2009)
  3. "Congenital Thoracic Wall Deformities" Springer Science & Business Media (2011)
  4. "Median sternotomy" Multimedia Manual of Cardio-Thoracic Surgery (2015)
  5. "Management of Congenital Chest Wall Deformities" Seminars in Plastic Surgery (2011)
  6. "Mosby's Medical Dictionary" Elsevier (2013)