Changes in Transcranial Ultrasound Velocities in Children with Sickle Cell Disease Undergoing Adenotonsillectomy

Griffin Santarelli1, Sarah C DeShields2, Stacey L Ishman3

  • 11 Department of Otolaryngology-Head and Neck Surgery, Eastern Virginia Medical School and the Children's Hospital of The King's Daughters, Norfolk, Virginia, USA.

Insights

Adenotonsillectomy may reduce cerebral blood flow velocity in children with sickle cell disease and obstructive sleep apnea (OSA). Further research is needed to confirm if this lowers stroke risk.

Area of Science:

  • Pediatric Neurology
  • Sleep Medicine
  • Vascular Medicine

Background:

  • Sickle cell disease (SCD) and obstructive sleep apnea (OSA) are associated with increased stroke risk in children.
  • Cerebral blood flow velocity (CBFV) is a marker for cerebrovascular health.
  • Adenotonsillectomy is a treatment for OSA in children.

Purpose of the Study:

  • To evaluate changes in CBFV in children with SCD and OSA after adenotonsillectomy.
  • To investigate the correlation between OSA severity and CBFV values.

Main Methods:

  • A case series of 15 children (aged 2-18) with SCD and OSA (apnea-hypopnea index >1) was reviewed.
  • Transcranial Doppler ultrasonography measured CBFV before and after adenotonsillectomy.
  • Data were analyzed to assess changes in CBFV and correlation with OSA severity.

Main Results:

  • Following adenotonsillectomy, significant reductions in CBFV were observed in the left terminal internal cerebral artery and right middle cerebral artery.
  • Mean preoperative apnea-hypopnea index was 8.9, with 40% having severe OSA (AHI >10).
  • No significant correlation was found between baseline apnea-hypopnea index and changes in CBFV.

Conclusions:

  • Adenotonsillectomy may lead to a reduction in certain CBFV parameters in children with SCD and OSA.
  • Further investigation is required to determine if these CBFV changes correlate with a reduced risk of stroke.

Related Concept Videos

Average Velocity01:12

Average Velocity

To calculate the other physical quantities in kinematics, we must introduce the time variable. The time variable allows us not only to state the position of the object during its motion, but also how fast it is moving. The speed at which an object is moving is given by the rate at which the position changes with time. For each position xi, we assign a particular time ti. If the details of the motion at each instant are not important, the rate is usually expressed as the average velocity. This...
24.4K
Instantaneous Velocity - II01:10

Instantaneous Velocity - II

Instantaneous velocity is the quantity that measures how fast an object is moving along its path. In other words, the instantaneous velocity of an object is the limit of the average velocity as the elapsed time approaches zero, or the derivative of displacement with respect to time. Like average velocity, the instantaneous velocity is a vector with the dimensions of length per unit time. Instantaneous velocity can have both positive and negative values. The instantaneous velocity can be...
13.5K
Escape Velocity01:26

Escape Velocity

The escape velocity of an object is defined as the minimum initial velocity that it requires to escape the surface of another object to which it is gravitationally bound and never to return. For example, what would be the minimum velocity at which a satellite should be launched from the Earth's surface such that it just escapes the Earth's gravitational field?
To calculate the escape velocity, it is assumed that no energy is lost to any frictional forces. In practice, a satellite...
8.5K
Velocity of an Object01:18

Velocity of an Object

Understanding how an object moves along a path requires distinguishing between motion over a time span and motion at a precise moment. A useful example is a vehicle traveling along a straight and level path, where its position at any given time is known. The initial step in analyzing this motion is to measure how far the vehicle travels over a fixed time period. This measurement, called average velocity, is computed by dividing the total change in position by the duration over which the change...
213
Velocity Potential01:20

Velocity Potential

In steady, incompressible flow through a long, straight pipe with a uniform cross-section, the flow in the central region (far from the pipe walls) is irrotational. This irrotational nature means that fluid particles do not rotate around their axes, and a scalar function called the velocity potential, represented by ϕ, can be used to describe their movement. In irrotational flows, the velocity field V is defined as the gradient of the velocity potential:
757
Drift Velocity01:19

Drift Velocity

The high speed of electrical signals results from the fact that the force between charges acts rapidly at a distance. Thus, when a free charge is forced into a wire, the incoming charge pushes other charges ahead due to the repulsive force between like charges. These moving charges move the charges farther down the line. The density of charge in a system cannot easily be increased, so the signal is passed on rapidly. The resulting electrical shock wave moves through the system at nearly the...
5.6K