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Updated: Jul 5, 2025

An Automated Culture System for Use in Preclinical Testing of Host-Directed Therapies for Tuberculosis
Published on: August 16, 2021
Recent advances in understanding the human host immune response in tuberculous meningitis
James R Barnacle1,2,3, Angharad G Davis1,3, Robert J Wilkinson1,2,3
1The Francis Crick Institute, London, United Kingdom.
Abstract:
Tuberculous meningitis (TBM), the most severe form of tuberculosis, causes death in approximately 25% cases despite antibiotic therapy, and half of survivors are left with neurological disability. Mortality and morbidity are contributed to by a dysregulated immune response, and adjunctive host-directed therapies are required to modulate this response and improve outcomes. Developing such therapies relies on improved understanding of the host immune response to TBM. The historical challenges in TBM research of limited in vivo and in vitro models have been partially overcome by recent developments in proteomics, transcriptomics, and metabolomics, and the use of these technologies in nested substudies of large clinical trials. We review the current understanding of the human immune response in TBM. We begin with M. tuberculosis entry into the central nervous system (CNS), microglial infection and blood-brain and other CNS barrier dysfunction. We then outline the innate response, including the early cytokine response, role of canonical and non-canonical inflammasomes, eicosanoids and specialised pro-resolving mediators. Next, we review the adaptive response including T cells, microRNAs and B cells, followed by the role of the glutamate-GABA neurotransmitter cycle and the tryptophan pathway. We discuss host genetic immune factors, differences between adults and children, paradoxical reaction, and the impact of HIV-1 co-infection including immune reconstitution inflammatory syndrome. Promising immunomodulatory therapies, research gaps, ongoing challenges and future paths are discussed.
Insights
Tuberculous meningitis (TBM) is a severe form of tuberculosis with high mortality and neurological disability. Understanding the human immune response in TBM is crucial for developing new host-directed therapies.
Area of Science:
- Neuroscience
- Immunology
- Infectious Diseases
Background:
- Tuberculous meningitis (TBM) is the most severe form of tuberculosis, leading to significant mortality and long-term neurological disability.
- A dysregulated immune response contributes to TBM's high morbidity and mortality, necessitating host-directed therapies.
Purpose of the Study:
- To review the current understanding of the human immune response in tuberculous meningitis.
- To highlight the role of recent advancements in omics technologies and clinical trial substudies in TBM research.
Main Methods:
- Review of current literature on the human immune response in TBM.
- Analysis of host immune factors, including innate and adaptive responses, genetic factors, and co-infections.
- Discussion of omics technologies (proteomics, transcriptomics, metabolomics) applied to TBM research.
Main Results:
- Detailed outline of Mycobacterium tuberculosis entry into the CNS, microglial infection, and CNS barrier dysfunction.
- Summary of innate immune responses, including cytokine profiles, inflammasomes, and specialized pro-resolving mediators.
- Overview of adaptive immune responses, neurotransmitter pathways, host genetics, and co-infection impacts (e.g., HIV-1).
Conclusions:
- Improved understanding of TBM immunopathology is essential for developing effective adjunctive immunomodulatory therapies.
- Addressing research gaps and challenges, particularly in pediatric TBM and co-infections, is critical for future therapeutic advancements.
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