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Updated: Jul 3, 2025

Induction of Leptomeningeal Cells Modification Via Intracisternal Injection
Published on: May 7, 2020
Combining antibiotic with anti-TLR2/TLR13 therapy prevents brain pathology in pneumococcal meningitis
Susanne Dyckhoff-Shen1, Ilias Masouris1, Heba Islam2
1Department of Neurology, LMU University Hospital, LMU Munich, Germany.
Abstract:
Despite effective antibiotic therapy, brain-destructive inflammation often cannot be avoided in pneumococcal meningitis. The causative signals are mediated predominantly through TLR-recruited myeloid differentiation primary response adaptor 88 (MyD88), as indicated by a dramatic pneumococcal meningitis phenotype of Myd88-/- mice. Because lipoproteins and single-stranded RNA are crucial for recognition of Gram-positive bacteria such as Streptococcus pneumoniae by the host immune system, we comparatively analyzed the disease courses of Myd88-/- and Tlr2-/- Tlr13-/- mice. Their phenotypic resemblance indicated TLR2 and -13 as master sensors of S. pneumoniae in the cerebrospinal fluid. A neutralizing anti-TLR2 antibody (T2.5) and chloroquine (CQ) - the latter applied here as an inhibitor of murine TLR13 and its human ortholog TLR8 - abrogated activation of murine and human primary immune cells exposed to antibiotic-treated S. pneumoniae. The inhibitory effect of the T2.5/CQ cocktail was stronger than that of dexamethasone, the current standard adjunctive drug for pneumococcal meningitis. Accordingly, TLR2/TLR13 blockade concomitant with ceftriaxone application significantly improved the clinical course of pneumococcal meningitis compared with treatment with ceftriaxone alone or in combination with dexamethasone. Our study indicates the importance of murine TLR13 and human TLR8, besides TLR2, in pneumococcal meningitis pathology, and suggests their blockade as a promising antibiotic therapy adjunct.
Insights
Blocking Toll-like receptors (TLRs) 2 and 13 with an antibody and chloroquine significantly improved pneumococcal meningitis outcomes. This TLR blockade offers a promising adjunct to antibiotic therapy for reducing brain inflammation.
Area of Science:
- Immunology
- Infectious Diseases
- Neuroscience
Background:
- Pneumococcal meningitis causes severe brain inflammation despite antibiotic treatment.
- Myeloid differentiation primary response adaptor 88 (MyD88) pathway activation is crucial in meningitis pathology.
- Toll-like receptors (TLRs) 2 and 13 are key sensors for Streptococcus pneumoniae.
Purpose of the Study:
- To investigate the role of TLR2 and TLR13 in pneumococcal meningitis.
- To evaluate the therapeutic potential of blocking TLR2 and TLR13.
Main Methods:
- Comparative analysis of disease progression in Myd88-/-, Tlr2-/- Tlr13-/- mice.
- Inhibition of TLR2 and TLR13 using an anti-TLR2 antibody (T2.5) and chloroquine (CQ).
- Assessment of immune cell activation and clinical outcomes in a murine pneumococcal meningitis model.
Main Results:
- TLR2 and TLR13 were identified as master sensors of S. pneumoniae in cerebrospinal fluid.
- The T2.5/CQ cocktail effectively abrogated immune cell activation by S. pneumoniae.
- TLR2/TLR13 blockade combined with ceftriaxone improved meningitis clinical course more than dexamethasone.
Conclusions:
- Murine TLR13 and human TLR8, along with TLR2, play significant roles in pneumococcal meningitis.
- Blocking TLR2 and TLR13 presents a promising adjunctive therapy to antibiotics for pneumococcal meningitis.
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