Optimal Global Longitudinal Strain Thresholds for Pediatric Heart Surgery: Insights from a University Hospital

Sofía Melo1, Sergio Alzate-Ricaurte2, Santiago Pedroza2

  • 1Departamento de Anestesiología, Facultad de Medicina, Universidad Icesi, Calle 18 No. 122-135, 760031, Cali, Colombia.

Pediatric Cardiology
|February 29, 2024
PubMed

Insights

Global longitudinal strain (GLS) effectively predicts 30-day mortality in pediatric congenital heart surgery patients. Lower preoperative GLS indicates higher risk, informing better patient care and outcomes.

Area of Science:

  • Cardiology
  • Pediatric Cardiac Surgery
  • Echocardiography

Background:

  • Congenital heart diseases affect millions globally, with limited risk assessment tools in pediatric care.
  • Accurate prediction of postoperative outcomes is crucial for managing pediatric patients with congenital heart diseases.

Purpose of the Study:

  • To investigate the association between global longitudinal strain (GLS) and postoperative outcomes in pediatric patients undergoing heart surgery.
  • To establish predictive cut-off points for GLS in assessing 30-day mortality risk.

Main Methods:

  • Prospective observational study of 89 pediatric patients (<18 years) undergoing heart surgery with cardiopulmonary bypass (CPB).
  • Transesophageal echocardiography used for pre- and post-CPB GLS measurements.
  • Receiver operating characteristic curve analysis to determine GLS cut-off points for mortality risk.

Main Results:

  • Global longitudinal strain (GLS) demonstrated effective discriminatory capacity (AUC > 0.70) in predicting 30-day mortality.
  • Pre-CPB GLS showed the strongest predictive power (AUC 0.833) with a cut-off of 12.
  • Lower pre-CPB GLS values correlated with increased vasoactive-inotropic support and longer mechanical ventilation.

Conclusions:

  • Global longitudinal strain (GLS) measurement is a reproducible method for assessing ventricular function in pediatric heart surgery.
  • Preoperative GLS shows significant potential as a prognostic tool for predicting mortality risk.
  • This study provides initial cut-off points for preoperative, postoperative, and index GLS in this population.

Related Concept Videos

Plastic Deformations01:14

Plastic Deformations

It is essential to understand how structural members behave under plastic deformation when the bending stress exceeds the material's yield strength. This state of deformation permanently alters the shape of the member, in contrast to the linear elastic behavior observed before yielding. The strain at any point in the member is expressed in terms of maximum strain. Notably, the neutral axis, which coincides with the centroid during elastic bending, shifts away from the centroid under plastic...
86
True Stress and True Strain01:28

True Stress and True Strain

Engineering stress is calculated as the load divided by the original, undeformed cross-sectional area. It approximates a material under load. This approximation is especially relevant post-yield in ductile materials. Though engineering stress-strain diagrams are often used for their convenience and accessibility, they can sometimes fall short in accuracy, particularly when dealing with large strain values.
In contrast, true stress offers a more precise portrayal. It is computed by dividing the...
304
Transformation of Plane Strain01:12

Transformation of Plane Strain

When analyzing elongated structures like bars subjected to uniformly distributed loads, it is essential to understand the transformation of plane strain when coordinate axes are rotated. This transformation helps to assess how material deformation characteristics vary with orientation, which is crucial in materials science and structural engineering.
Under plane strain conditions, typical for members where one dimension significantly exceeds the others, deformations and resultant strains are...
162
Normal Strain under Axial Loading01:20

Normal Strain under Axial Loading

Normal strain under axial loading is an important concept in the field of mechanics of materials. Axial loading implies the application of a force along the axis of a material, like a column or bar. This force can either compress or stretch the material. In the context of axial loading, normal strain is the deformation experienced by the material in the direction of the loading force. It's calculated as the change in length divided by the original length of the material. This unitless ratio...
471