Insights

Endovascular techniques successfully removed intravascular foreign bodies, primarily migrated catheters, with a 100% success rate and zero mortality. This minimally invasive approach is the preferred treatment for such rare but serious complications.

Area of Science:

  • Vascular Surgery
  • Interventional Radiology
  • Medical Device Complications

Background:

  • Intravascular foreign body embolization, often due to catheter fracture or migration, is a rare event (approx. 1%).
  • Catheter migration constitutes the majority of these embolization cases.
  • This study presents a large series of foreign body removals using endovascular techniques.

Purpose of the Study:

  • To identify common locations of intravascular foreign bodies, particularly migrated catheters.
  • To detail the endovascular techniques employed for foreign body retrieval.
  • To characterize the patient population affected by intravascular foreign bodies.

Main Methods:

  • A 9-year retrospective study (2009-2017) of endovascular foreign body removal.
  • Inclusion of 53 patients (28 female, 25 male; average age 58 years).
  • Analysis of catheter implantation methods and patient demographics.

Main Results:

  • Extracted devices included 33 totally implantable catheters, 16 peripherally inserted central catheters, and others.
  • Common lodging sites were the right atrium (35.8%), superior vena cava (11.3%), and right ventricle (11.3%).
  • The loop-snare technique (84.9%) was most common, utilizing predominantly right femoral access (96.2%). Disconnection during removal (55.1%) and catheter fracture (12.2%-32.7%) were primary causes. Zero mortality and 100% technical success were achieved.

Conclusions:

  • Percutaneous endovascular intervention is the optimal treatment for intravascular foreign bodies.
  • This minimally invasive procedure offers low complication rates and high retrieval success.
  • Consideration of catheter safety and quality is crucial to minimize future complications.
Abstract

Related Concept Videos

Body Temperature01:25

Body Temperature

The body's temperature, measured in degrees, is determined by the balance between heat production and dissipation to the surrounding environment. For instance, if exercising vigorously, the body will produce more heat, causing sweat and dissipating that heat. Despite extreme environmental conditions and physical exertion, the human temperature-control system maintains a constant core body temperature (the temperature of deep tissues, which are the tissues located beneath the skin and other...
4.9K
Body Temperature01:07

Body Temperature

Body temperature reflects the equilibrium between heat production and heat loss within the body. Most heat is generated by metabolically active tissues, particularly the liver, heart, brain, kidneys, and endocrine organs. At rest, skeletal muscles contribute 20–30% of total heat production, but during vigorous exercise, this can increase up to 30–40 times.
The average body temperature is approximately 37°C (98.6°F) and typically ranges from 36.1–37.2°C...
1.5K
Centroid of a Body01:16

Centroid of a Body

The centroid is an important concept in engineering, physics, and mechanics. It is the geometric center of a body. It always lies within the body except in cases with holes or cavities. When the material that a body is composed of is uniform or homogeneous, the centroid coincides with its center of mass or the center of gravity.
For a homogeneous body with constant density, the centroid can usually be found using equations representing a balance of the moments of the body's volume. If the...
1.9K
Free-body Diagram01:28

Free-body Diagram

In mechanics, understanding the motion of objects is essential, and one tool that helps solve this problem is the free-body diagram. It is a simple but powerful graphical representation that succinctly represents all the forces acting on an object. A free-body diagram can represent a stationary or moving object, and is used in mechanics to explain the cause of an object's motion.
A free-body diagram transforms a complex problem into a simple representation, making it easy to understand the...
3.7K
Composite Bodies00:55

Composite Bodies

A composite body is a body made up of multiple parts, connected to form a larger, unified object. Each part has its own weight and center of gravity, which must be considered to determine the center of gravity of the composite body. In cases where the density or specific weight is constant, the center of gravity coincides with the centroid.
Composite bodies have widespread applications in mechanical engineering, from automobiles to aircraft to rockets. For example, an automobile wheel comprises...
1.4K
Whole Body Regeneration01:33

Whole Body Regeneration

Regeneration is the process of restoring injured or lost tissues, organs, or body parts. While simpler organisms generally show greater ability to regenerate their whole body, few complex animals show similarly exceptional regeneration. For example, planarian flatworms have a unique regenerative potential making them a popular study organism among biologists to understand the mechanisms of whole body regeneration. Other organisms, such as hydra, also show extreme regeneration potential;...
4.2K