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Increased Intracranial Pressure ll: Pathophysiology01:29

Increased Intracranial Pressure ll: Pathophysiology

Increased intracranial pressure (ICP) refers to a potentially life-threatening rise in pressure inside the skull. This usually happens when there is a major change in the volume of brain tissue, blood, or cerebrospinal fluid (CSF) — the three components inside the skull. According to the Monro-Kellie doctrine, if the volume of one component increases, the volumes of the other components must decrease to maintain normal pressure. If this does not happen, ICP rises.The process often begins with...
Cerebral Edema ll: Pathophysiology01:22

Cerebral Edema ll: Pathophysiology

Vasogenic edema is a major form of cerebral edema characterized by abnormal accumulation of fluid in the brain’s extracellular space due to disruption of the blood–brain barrier (BBB). The BBB is a specialized structure composed of endothelial cells connected by tight junctions, supported by astrocytic endfeet and a basement membrane. Under normal conditions, it tightly regulates the movement of ions, proteins, and solutes between the bloodstream and brain parenchyma. When this barrier loses...
Cytotoxic Edema: Pathophysiology01:21

Cytotoxic Edema: Pathophysiology

Cytotoxic edema is a form of cerebral edema characterized by intracellular swelling of neurons, astrocytes, and other glial cells. It develops when the mechanisms responsible for maintaining ionic gradients across the cell membrane become impaired. Under normal physiological conditions, the sodium–potassium ATPase actively transports sodium ions out of the cell and potassium ions into the cell, preserving osmotic balance and enabling electrical signaling. This pump requires a continuous supply...
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...
Cerebral Edema l: Introduction01:19

Cerebral Edema l: Introduction

Cerebral edema is a pathological increase in brain water content that disrupts intracranial pressure regulation and impairs neurological function. Because the cranial vault is rigid, even modest increases in tissue volume can compromise cerebral perfusion, distort neural structures, and initiate secondary injury. Cerebral edema develops through four principal mechanisms: vasogenic, cytotoxic, interstitial, and ionic.Vasogenic EdemaVasogenic edema arises from disruption of the blood–brain...
Increased Intracranial Pressure l: Introduction01:14

Increased Intracranial Pressure l: Introduction

Intracranial hypertension is a sustained elevation of intracranial pressure (ICP) above 22 mm Hg. In supine adults, normal ICP is ~7–15 mm Hg.The rigid, nonexpandable cranium contains three components—brain tissue, blood, and cerebrospinal fluid (CSF)—that total ~1,700 mL in a typical adult: 1,400 mL brain (~80%), 150 mL blood (~10%), and 150 mL CSF (~10%). According to the Monro–Kellie doctrine, total intracranial volume is effectively fixed. When one component expands, CSF and venous blood...

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Updated: Jul 8, 2026

Microvascular Decompression: Salient Surgical Principles and Technical Nuances
10:35

Microvascular Decompression: Salient Surgical Principles and Technical Nuances

Published on: July 5, 2011

Brainstem compression from a trigeminal schwannoma presenting with pathological crying.

Ivan Paul Bhaskar1, Ari George Chacko, Roy Thomas Daniel

  • 1Department of Neurological Sciences, Christian Medical College, Ida Scudder Road, Vellore, Tamil Nadu, 632004, India. ivanpaul69@yahoo.com

Journal of Clinical Neuroscience : Official Journal of the Neurosurgical Society of Australasia
|January 15, 2008
PubMed
Summary

Pathological crying, a rare condition, can be caused by brainstem compression. A trigeminal schwannoma compressing the pons led to pathological crying in a reported case, highlighting cortico-ponto-cerebellar pathway involvement.

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Area of Science:

  • Neurology
  • Neuroscience
  • Oncology

Background:

  • Pathological laughter and crying involve episodes of uncontrollable emotional expression.
  • Pathological laughter is associated with conditions like multiple sclerosis and brainstem gliomas.
  • Pathological crying is rare, with no prior reports linking brainstem compression to its etiology.

Observation:

  • A patient presented with pathological crying.
  • The cause was identified as a trigeminal schwannoma.
  • The tumor, with an associated cyst, was indenting the pons.

Findings:

  • This case demonstrates brainstem compression as a cause of pathological crying.
  • Trigeminal schwannoma can lead to pathological crying.
  • The cortico-ponto-cerebellar pathways are implicated in the pathogenesis of pathological crying.

Implications:

  • This finding expands the understanding of the neurological underpinnings of pathological crying.
  • It suggests that neurosurgical evaluation may be warranted for unexplained pathological crying.
  • Further research into the specific role of the cortico-ponto-cerebellar pathways in emotional regulation is indicated.