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Published on: February 8, 2022
Pathophysiology of intracranial hypertension in cryptococcal meningoencephalitis
Arie Van Wieren1, Arturo Casadevall1
1Department of Molecular Microbiology and Immunology, Johns Hopkins Bloomberg School of Public Health, Johns Hopkins University, Baltimore, Maryland, USA.
Insights
Cryptococcal meningoencephalitis causes high intracranial pressure (ICP) due to impaired cerebrospinal fluid (CSF) outflow. Research priorities include understanding fungal and host factors affecting CSF dynamics for better ICP management.
Area of Science:
- Neuroscience
- Infectious Diseases
- Pathophysiology
Background:
- Cryptococcal meningoencephalitis (CME) is a significant cause of mortality and disability.
- Intracranial hypertension (ICH) is a primary, treatable factor in CME mortality and neurological deficits.
- Elevated cerebrospinal fluid (CSF) opening pressure is common in CME, often without clear imaging indicators like ventriculomegaly or edema.
Purpose of the Study:
- To review and synthesize evidence defining priorities for mechanistic research into intracranial hypertension in CME.
- To explore the pathophysiology of elevated CSF pressure in CME, focusing on CSF dynamics and outflow resistance.
Main Methods:
- Synthesis of clinical, microbiological, imaging, pathological, and experimental evidence.
- Analysis of intracranial pressure physiology and CSF dynamics in the context of CME.
- Review of potential mechanisms contributing to increased CSF outflow resistance.
Main Results:
- Evidence supports a CSF outflow-limited mechanism for elevated ICP in CME, indicated by rapid pressure changes after CSF drainage.
- Correlations between opening pressure and fungal/capsular polysaccharide burden suggest a role for fungal elements in obstructing CSF efflux.
- Potential modifiers of ICP include cryptococcal phenotypes, host immune/osmotic states, and glymphatic transport disruption.
Conclusions:
- Increased CSF outflow resistance, driven by fungal and host factors, is a likely dominant mechanism for ICH in CME.
- Further research is needed to link fungal/host factors to ICP, quantify efflux-site burden, measure outflow resistance, and develop targeted therapeutics.
- While alternative mechanisms exist, understanding CSF dynamics is crucial for advancing ICP management in CME.
Abstract:
Cryptococcal meningoencephalitis (CME) is a major cause of death and disability, and intracranial hypertension is a leading, treatable contributor to mortality and neurologic sequelae. Across CME cohorts, markedly elevated cerebrospinal fluid (CSF) opening pressure is common and often occurs despite minimal ventriculomegaly or diffuse edema on neuroimaging. This review synthesizes clinical, microbiological, imaging, pathological, and experimental evidence to define priorities for mechanistic research. Intracranial pressure (ICP) physiology predicts that once intracranial compliance is exhausted, small volume changes can produce rapid pressure increases, making CSF dynamics central to many intracranial hypertension syndromes. In CME, the frequent, rapid improvement after therapeutic CSF drainage, followed by pressure re-accumulation, supports a CSF outflow-limited mechanism for ICP. Convergent observations, including correlations between opening pressure and fungal/capsular polysaccharide burden and postmortem localization of organisms and polysaccharide at candidate CSF efflux sites, support a model of increased CSF outflow resistance. Potential modifiers include cryptococcal phenotypes (e.g., capsule size/architecture, aggregation), host immune and osmotic states, and disruption of perivascular ("glymphatic") transport that may alter clearance and compliance. Alternative dominant mechanisms (e.g., mass effect, obstructive hydrocephalus, venous sinus thrombosis, or inflammatory edema in immune reconstitution inflammatory syndrome/post-infectious inflammatory response syndrome) likely account for a minority of cases but remain clinically important. Current ICP control relies on invasive CSF drainage, and empiric pharmacologic approaches have not translated well, meaning progress will depend on both clinical and basic science research that link fungal and host factors to ICP trajectories, quantify efflux-site burden, directly measure outflow resistance, and explore adjunctive therapeutics that address CSF efflux and fungal clearance.
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