Variability of the Left Atrial Appendage in Human Hearts

Rafał Kamiński1, Adam Kosiński1, Mariola Brala2

  • 1Department of Clinical Anatomy, Medical University of Gdańsk, Gdańsk, Poland.

Plos One
|November 7, 2015
PubMed

Insights

This study on left atrial appendage morphology found differences between sexes, potentially explaining higher thrombus risk in women with atrial fibrillation. Understanding these anatomical variations aids in diagnosing echocardiographic findings.

Area of Science:

  • Cardiovascular Anatomy
  • Medical Imaging

Background:

  • Atrial fibrillation elevates the risk of thrombus formation, commonly leading to stroke.
  • The left atrial appendage (LAA) is a primary site for thrombus development in atrial fibrillation.
  • Understanding LAA morphology is crucial for assessing thromboembolic risk.

Purpose of the Study:

  • To delineate the morphology of the human left atrial appendage.
  • To investigate variations in LAA morphology concerning sex, age, and weight.
  • To correlate LAA anatomical features with thrombus formation risk in atrial fibrillation.

Main Methods:

  • Macroscopic examination of 100 human left atrial appendages from individuals aged 18-77.
  • Morphological classification into 4 groups based on lobulation.
  • Measurements of appendage orientation, orifice dimensions, and lobe shapes using anatomical specimens and silicone casts.

Main Results:

  • Female LAA predominantly featured 2 lobes; males typically had 2 or 3 lobes.
  • Mean LAA orifice diameter ranged from 12.0 to 16.0 mm.
  • A significant orifice size difference (approx. 3.3 mm) was noted between sexes in LAA type 2, with females exhibiting smaller orifices.

Conclusions:

  • Female LAA morphology, characterized by smaller orifices and tubular lobes, may predispose to higher thrombus formation risk during nonvalvular atrial fibrillation.
  • Detailed anatomical knowledge of LAA variability is essential for interpreting transesophageal echocardiographic findings.
  • Sex-based morphological differences in the LAA are significant and relevant to clinical risk assessment.

Related Concept Videos

Chambers of the Heart01:16

Chambers of the Heart

The human heart is a complex organ made up of four chambers: the right and left atria and the right and left ventricles. These internal chambers are separated by partitions known as the interatrial and interventricular septa. The exterior of the heart features a groove known as the coronary sulcus that demarcates the atria from the ventricles, while the anterior and posterior interventricular sulci distinguish between the two ventricles.
Deoxygenated blood from the body is received in the right...
11.3K
Anatomy of the Heart01:27

Anatomy of the Heart

The human heart is made up of three layers of tissue that are surrounded by the pericardium, a membrane that protects and confines the heart. The outermost layer, closest to the pericardium, is the epicardium. The pericardial cavity separates the pericardium from the epicardium. Beneath the epicardium is the myocardium, the middle layer, and the endocardium, the innermost layer. There are four chambers of the heart: the right atrium, the right ventricle, the left atrium, and the left ventricle.
122.9K
Anatomy of the Heart01:20

Anatomy of the Heart

The heart is a hollow, muscular organ approximately the size of a fist, consisting of four chambers. It is enclosed in the pericardium, a fibrous sac with two layers: the visceral and parietal pericardium, separated by a fluid-filled space containing serous fluid to reduce friction.
The heart has three layers: the innermost endocardium, the muscular myocardium, and the outer epicardium, all working together for optimal cardiac function.
Chambers of the Heart
The heart is made up of four...
4.8K
Heart Valves01:16

Heart Valves

The human heart is a complex organ with an intricate system of valves that regulate blood flow. There are two main types of valves: atrioventricular (AV) valves and semilunar valves.
The AV valves prevent the backflow of blood from the ventricles to the atria during ventricular contraction. These valves function with the assistance of the chordae tendineae and papillary muscles. When the ventricles are relaxed, the chordae tendineae are slack, allowing blood to flow from the atria into the...
13.8K
Development of the Heart01:27

Development of the Heart

The development of the human heart, a crucial organ, commences from the mesoderm on the 18th or 19th day after fertilization. This process initiates in the cardiogenic area, a group of mesodermal cells at the embryo's head end, which evolves into elongated strands known as cardiogenic cords. These cords undergo a transformation to form hollow-centered endocardial tubes.
As the embryo undergoes lateral folding, these paired tubes approach each other, merging into a single primitive heart...
3.6K
Cardiac Catheterization III: Left Heart Catheterization01:24

Cardiac Catheterization III: Left Heart Catheterization

Left heart catheterization is an invasive diagnostic procedure used to evaluate the function and structure of the left side of the heart. It is generally performed to diagnose and treat cardiovascular conditions such as valve abnormalities, coronary artery disease, and congenital heart defects.Diagnostic and therapeutic purposesLeft heart catheterization serves various diagnostic and therapeutic purposes, including:Assessing coronary artery bypass grafts.Evaluating coronary artery disease in...
1.1K