Guillain-Barré syndrome: perspectives with infants and children

H R Jones1

  • 1Department of Neurology, Lahey Clinic, Burlington, MA 01805, USA.

Insights

Guillain-Barré syndrome (GBS) is a critical pediatric neurology emergency causing acute flaccid paralysis. Early hospitalization and immunomodulating treatment are vital for affected children, especially those unable to walk.

Area of Science:

  • Pediatric Neurology
  • Autoimmune Disorders
  • Peripheral Neuropathy

Background:

  • Acute flaccid paraparesis/quadriparesis in children signifies a pediatric neurology emergency.
  • Guillain-Barré syndrome (GBS), an autoimmune post-infectious demyelinating peripheral nervous system disorder, is the most common cause.
  • Children may present with primary axonal processes, mimicking presentations seen in other regions.

Observation:

  • Immediate hospitalization is crucial for suspected GBS due to potential respiratory compromise.
  • Differential diagnoses include transverse myelitis, toxic neuropathies, tick paralysis, infantile botulism, myasthenia gravis, and dermatomyositis.
  • Clinical presentations vary, including severe pain syndromes mimicking pseudo-encephalopathy and Miller-Fisher syndrome (ataxia, ophthalmoparesis, areflexia).

Findings:

  • Most pediatric GBS cases have a benign course, but severe cases require intensive care and monitoring.
  • Immunomodulating therapy is indicated for children with GBS who lose ambulation.
  • Comparative efficacy studies for plasmapheresis versus intravenous immunoglobulin in pediatric GBS are lacking.

Implications:

  • Prompt recognition and management of GBS are essential to prevent severe neurological deficits and respiratory failure.
  • Further research is needed to establish optimal treatment strategies for pediatric GBS.
  • Understanding GBS variants and differential diagnoses aids in accurate and timely patient care.

Related Concept Videos

Pharmacokinetics in Pediatric Patients: Overview and Drug Absorption01:23

Pharmacokinetics in Pediatric Patients: Overview and Drug Absorption

Understanding the physiological differences in the pediatric population is crucial for effective pharmacotherapy. Neonates, infants, and children exhibit significant variations in gastric pH, gastric emptying time, intestinal transit time, and biliary function. These variations profoundly affect oral drug absorption, necessitating a nuanced approach to pediatric dosing.Neonates present with a unique physiological profile, having a gastric pH greater than 4 and faster and more irregular gastric...
975
Spinal Cord Injury ll: Pathophysiology01:14

Spinal Cord Injury ll: Pathophysiology

Spinal cord injury progresses through two interconnected phases: primary injury and secondary injury.Primary InjuryPrimary injury happens at the moment of trauma and involves immediate mechanical damage to the spinal cord.Compression happens when broken vertebrae, herniated discs, or accumulating blood (such as a hematoma) press directly against the spinal cord, distorting its normal shape and function. In cases of contusion, the cord is bruised by a blunt force (like penetrating injuries or...
43
Myasthenia Gravis ll: Pathophysiology01:22

Myasthenia Gravis ll: Pathophysiology

The disease process of myasthenia gravis begins at the neuromuscular junction, where antibodies attack key proteins needed for muscle activation. This immune reaction weakens signal transmission, leading to the characteristic muscle fatigue and weakness that define the condition.Immune-Mediated DamageIn most individuals, antibodies target acetylcholine receptors (AChRs) on the postsynaptic membrane of muscle cells. By blocking acetylcholine binding, these antibodies prevent the nerve signal...
69
Secondary Spinal Cord Injury llI: Pathophysiology01:25

Secondary Spinal Cord Injury llI: Pathophysiology

Early Ischemia and Ionic ImbalanceWithin minutes of spinal cord injury, a secondary cascade begins, progressing over hours to weeks. Vascular damage reduces blood flow, causing ischemia and mitochondrial dysfunction. ATP depletion leads to ion pump failure, membrane depolarization, sodium influx, potassium efflux, and water accumulation, resulting in cellular swelling. Increased intracellular calcium further disrupts mitochondria and accelerates cellular injury.Excitotoxicity and Neuronal...
68