Intrapleural Migration of Ventriculoperitoneal Shunt due to Negative Intrathoracic Pressure

Siddharth Srinivasan1, Yasaswi Kanneganti1, Rajesh Nair1

  • 1Department of Neurosurgery, Kasturba Medical College and Hospital, Udupi, Karnataka, India.

PubMed

Insights

Delayed distal shunt tip migration into the thoracic cavity is a rare complication of ventriculoperitoneal (VP) shunts in infants. This case highlights how negative intrathoracic pressure can cause gradual shunt migration, leading to pleural effusion and respiratory distress.

Area of Science:

  • Neurosurgery
  • Pediatric Surgery
  • Radiology

Background:

  • Ventriculoperitoneal (VP) shunts are standard treatment for congenital obstructive hydrocephalus, particularly aqueductal stenosis in infants.
  • Shunt migration is a known complication, but delayed distal shunt tip migration into the thoracic cavity is rare.
  • Negative intrathoracic pressure is a suspected mechanism for this delayed migration.

Purpose of the Study:

  • To report a rare case of delayed distal ventriculoperitoneal shunt migration into the thoracic cavity in an infant.
  • To discuss the potential mechanisms and clinical implications of this complication.
  • To raise awareness among healthcare professionals about this rare but serious VP shunt complication.

Main Methods:

  • Case report of a 1-year-old infant with obstructive hydrocephalus treated with a VP shunt.
  • Detailed description of clinical presentation, neuroimaging findings (MRI), and surgical intervention.
  • Postoperative follow-up including chest roentgenogram and CT thorax to diagnose shunt migration and pleural effusion.
  • Description of revision surgery and management of complications like CSF hydrothorax.

Main Results:

  • The infant presented with symptoms of raised intracranial pressure and underwent VP shunt placement.
  • Three months postoperatively, the infant developed dyspnea due to complete shunt migration into the right pleural space with significant effusion.
  • CT imaging suggested subcostal tunneling during the initial surgery, with gradual migration due to negative intrathoracic pressure.
  • Revision surgery successfully repositioned the shunt, and the patient recovered with temporary ventilation and chest tube drainage.

Conclusions:

  • Delayed supradiaphragmatic migration of VP shunts into the thoracic cavity can occur slowly over time due to negative intrathoracic pressure.
  • This complication can lead to significant morbidity, including pleural effusion and respiratory distress.
  • Neurosurgeons, pediatricians, and intensivists should be vigilant for this rare complication and consider it in the differential diagnosis of respiratory symptoms in patients with VP shunts.

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