Failed caudal block due to physiologic changes associated with a cerebrospinal fluid leak: a case report

Erin Bruce1, Adam O Spencer2, Mehmet Sait Albayram3

  • 1Department of Anesthesia, University of Calgary, Calgary, AB, Canada.

Insights

A failed caudal block in an infant was explained by a cerebrospinal fluid (CSF) leak. The leak caused anesthetic to be absorbed systemically, reducing its effectiveness for surgery.

Area of Science:

  • Neurology
  • Anesthesiology
  • Pediatric Surgery

Background:

  • The Monroe-Kellie hypothesis states that the intracranial volumes of brain tissue, cerebrospinal fluid (CSF), and blood are constant.
  • This principle is typically applied to intracranial hypertension but is also relevant in cases of CSF volume depletion.

Observation:

  • A one-month-old infant with arthrogryposis and apnea experienced a failed caudal block during inguinal hernia repair.
  • Imaging revealed a significant CSF leak, likely from a prior lumbar puncture, with engorgement of the epidural venous plexus.

Findings:

  • The failed caudal block is attributed to rapid systemic absorption of anesthetic due to the engorged epidural venous plexus.
  • Reduced CSF flow and dilution of anesthetic by leaking CSF may also have contributed.

Implications:

  • This case highlights the importance of considering CSF volume depletion in anesthetic management.
  • Understanding the Monroe-Kellie hypothesis can explain paradoxical findings in regional anesthesia.
  • Iatrogenic CSF leaks can have significant anesthetic implications in pediatric patients.
Abstract

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