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Updated: Sep 13, 2025

Immunometabolic Circuits in Infection for Advancing Host Directed Therapies
Published on: September 13, 2024
Research progress on immunometabolism and gut microbiota in cryptococcal meningitis: mechanisms and therapeutic
Sha Wen1,2,3,4, Mu Liu1,3,4, Chengyu Pan1,3,4
1Department of Neurology, Affiliated Hospital of Zunyi Medical University, Zunyi, China.
Abstract:
Cryptococcal meningitis (CM) is a fatal central nervous system infection caused by Cryptococcus neoformans breaching the blood-brain barrier (BBB), carrying a mortality rate approaching 100% in untreated individuals, while even survivors following treatment often experience neurological complications including optic nerve atrophy, memory impairment, hydrocephalus, and motor dysfunction. Current research has yet to fully elucidate the complex pathological mechanisms of CM, particularly leaving a significant gap in the systemic analysis within the dynamic interaction network of immunity, metabolism, and the gut microbiota. This article systematically integrates the interplay of immune responses, metabolic reprogramming, and the gut microbiome to reveal the pathogenesis of CM across multiple dimensions: in immune regulation, the phagocytic-inflammatory equilibrium in macrophages and CD4 + T cells defends against pathogen invasion, but hyperactivated immune responses may damage the BBB and exacerbate neural injury; metabolically, host iron overload induces ferroptosis, disrupting the BBB via lipid peroxidation, while inositol metabolism provides substrates for cryptococcal capsular synthesis, enhancing its virulence and promoting CNS invasion; the gut microbiota, meanwhile, modulates immune homeostasis via the "gut-brain axis," with its metabolites (e.g., short-chain fatty acids) enhancing BBB integrity and suppressing neuroinflammation through immunomodulation. We propose a combined therapeutic strategy of "immunomodulators + metabolic inhibitors + microbiota intervention," moving beyond traditional single-factor research paradigms to establish a multi-omics integrated framework for the precise treatment of CM-spanning molecular mechanisms to clinical translation-and propelling the field of neuroinfectious diseases towards a host-pathogen-microenvironment systemic regulation paradigm.
Insights
Cryptococcal meningitis (CM) is a deadly CNS infection. This study reveals how immune responses, metabolism, and gut microbes interact to cause CM, proposing a multi-faceted treatment approach for better outcomes.
Area of Science:
- Neuroscience
- Immunology
- Microbiology
- Metabolic Science
Background:
- Cryptococcal meningitis (CM) is a severe CNS infection with high mortality and significant neurological sequelae.
- Existing research lacks a systemic analysis of the intricate interplay between immunity, metabolism, and gut microbiota in CM pathogenesis.
Purpose of the Study:
- To systematically integrate immune responses, metabolic reprogramming, and gut microbiome dynamics in understanding CM pathogenesis.
- To propose a novel, multi-faceted therapeutic strategy for CM based on a systemic regulation paradigm.
Main Methods:
- Systematic integration of data on immune regulation (macrophages, CD4+ T cells), host metabolism (iron overload, inositol metabolism), and gut microbiota.
- Analysis of the gut-brain axis and microbial metabolite influence on BBB integrity and neuroinflammation.
Main Results:
- Immune responses, while protective, can exacerbate BBB damage and neural injury if hyperactivated.
- Host iron overload induces ferroptosis, disrupting the BBB, while inositol metabolism fuels cryptococcal virulence.
- Gut microbiota metabolites modulate immune homeostasis, enhance BBB integrity, and reduce neuroinflammation.
Conclusions:
- CM pathogenesis involves a complex network of immune, metabolic, and microbial factors.
- A combined therapeutic strategy targeting "immunomodulators + metabolic inhibitors + microbiota intervention" is proposed.
- This multi-omics approach advances neuroinfectious disease research towards systemic host-pathogen-microenvironment regulation.
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