Molecular characteristics of pediatric patients with sickle cell anemia and stroke

S A Sarnaik1, S K Ballas

  • 1Children's Hospital of Michigan and the Department of Pediatrics, Wayne State University School of Medicine, Detroit, Michigan, USA.

Insights

Cerebrovascular accidents (CVA) in children with sickle cell anemia (SS) may be more common in females and those with specific beta(S) haplotypes. Alpha-gene deletion appears protective against CVA in these young patients.

Area of Science:

  • Pediatric Hematology
  • Neurology
  • Genetics

Background:

  • Cerebrovascular accidents (CVA) are significant complications in children with sickle cell anemia (SS).
  • Risk factors predisposing children to CVA in SS are not well-established.
  • Understanding these factors is crucial for early detection and prevention strategies.

Purpose of the Study:

  • To investigate the association between alpha-globin genotype, beta(S) haplotype, and CVA in children with SS.
  • To identify specific genetic factors that may predispose or protect against CVA in this pediatric population.

Main Methods:

  • Analysis of alpha-globin genotype and beta(S) haplotype in 41 children with SS who experienced CVA.
  • Comparison of genetic findings with a larger cohort of children with SS.
  • Retrospective review of patient data, including age at stroke and gender distribution.

Main Results:

  • Alpha-gene deletion was less prevalent (19.5%) in children with CVA compared to the general African-American population.
  • Certain beta(S) haplotypes (Ben/CAR, Ben/Ben, Ben/Sen, CAR/CAR) were more common in patients with CVA.
  • CVA occurred more frequently in females and in neonates with four or more alpha-genes and specific beta(S) haplotypes (Ben/CAR, atypical, CAR/CAR).

Conclusions:

  • Alpha-gene deletion may offer a protective effect against CVA in children with SS.
  • Specific beta(S) haplotypes are associated with an increased risk of CVA in pediatric SS patients.
  • Females and neonates with specific genetic profiles (e.g., four alpha-genes, certain beta(S) haplotypes) appear to be at higher risk.

Related Concept Videos

Multiple Allele Traits02:19

Multiple Allele Traits

For the same gene multiple alleles can interact to influence phenotypes like the shape and protein composition of an individual cells.By studying allele interactions on the molecular and cellular levels researchers can understand the resulting phenotypes and complications of human conditions like sickle cell trait, improving treatment.The ABO blood group system is a common example of multiple alleles in humans. This system includes three alleles called IA, IB, and i alleles, which combine in...
Hemorrhagic Stroke ll: Pathophysiology01:29

Hemorrhagic Stroke ll: Pathophysiology

A hemorrhagic stroke develops when a cerebral blood vessel ruptures, allowing blood to escape into the surrounding brain tissue, as in intracerebral hemorrhage (ICH), or into the subarachnoid space, as in subarachnoid hemorrhage (SAH). Because the skull is a rigid compartment, the sudden presence of extravascular blood rapidly increases intracranial pressure and compresses adjacent neural structures, leading to immediate tissue injury and impaired cerebral perfusion.Mass Effect and Primary...
Ischemic Stroke ll: Pathophysiology01:15

Ischemic Stroke ll: Pathophysiology

An ischemic stroke occurs when a cerebral blood vessel becomes obstructed, most often by a thrombus or embolus, interrupting the delivery of oxygen and glucose to brain tissue. Because neurons rely on continuous aerobic metabolism, energy failure begins within minutes of reduced perfusion. The region receiving the least blood flow becomes the infarct core, an area of irreversible cellular death. Surrounding this core lies the penumbra, a zone of hypoperfused but still viable tissue that is...
Hemorrhagic Stroke l: Introduction01:17

Hemorrhagic Stroke l: Introduction

A hemorrhagic stroke is an acute neurological event that occurs when a weakened cerebral blood vessel ruptures, allowing blood to accumulate within or around the brain. The sudden release of blood forms a focal hematoma that increases intracranial pressure, displaces neural tissue, and can obstruct cerebrospinal fluid pathways. These effects may be compounded by intraventricular extension of the hemorrhage, cerebral edema, or compression of adjacent structures, all of which contribute to...
Ischemic Stroke l: Introduction01:15

Ischemic Stroke l: Introduction

Ischemic stroke is an acute cerebrovascular condition in which blood flow to a brain region is suddenly interrupted, leading to tissue infarction. Neurons depend on continuous oxygen and glucose supply, so even brief reductions in perfusion cause energy failure, ionic imbalance, and irreversible injury. Ischemic strokes are classified into thrombotic and embolic types based on their underlying mechanisms.Thrombotic MechanismsThrombotic stroke develops when a clot forms within a cerebral artery.
Disorders of Erythrocytes01:27

Disorders of Erythrocytes

Disorders of erythrocytes, or red blood cells (RBCs), include a range of conditions affecting their number, shape, or function.
Erythrocyte disorders can be broadly categorized into two main types: anemic and polycythemic conditions.
A low oxygen-carrying capacity of the blood due to the loss, lower production, or destruction of erythrocytes is termed anemia. Hemorrhagic anemia, for example, occurs when bleeding from an external wound or internal ulcer reduces erythrocyte counts.
On the other...