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Analyzing the Permeability of the Blood-Brain Barrier by Microbial Traversal through Microvascular Endothelial Cells
Published on: February 14, 2020
Multidimensional Proteome Profiling of Blood-Brain Barrier Perturbation by Group B Streptococcus
Anaamika Campeau1,2,3,4, Robert H Mills1,2,3,4, Marie Blanchette1,5
1Department of Pharmacology, University of California, San Diego, La Jolla, California, USA.
Insights
Group B Streptococcus (GBS) meningitis causes severe infant neurological issues. Our study reveals GBS infection alters brain vasculature, impacting immune responses and cellular function, highlighting the need for tissue-specific analysis.
Area of Science:
- Neuroscience
- Infectious Disease
- Proteomics
Background:
- Group B Streptococcus (GBS) is a primary cause of neonatal meningitis, leading to significant neurological deficits.
- Understanding the host-pathogen interactions within the brain during GBS infection is crucial but remains incompletely characterized.
- Previous research has primarily focused on microbial factors, neglecting host responses at the tissue level.
Purpose of the Study:
- To investigate the host response to GBS infection in the murine brain using quantitative proteomics.
- To analyze molecular changes at different levels of tissue complexity, from whole brain to vascular substructures.
- To elucidate the role of brain vasculature in GBS pathogenesis and host defense.
Main Methods:
- Multiplexed quantitative proteomics was employed to analyze protein expression profiles.
- Samples analyzed included whole murine brains, isolated brain microvessels, and choroid plexus.
- Proteomic data was correlated with host protein glycosylation profiles and cellular dysfunction markers.
Main Results:
- Whole brain analysis revealed acute-phase response signatures.
- Isolated brain microvessels showed upregulated interferon signaling and leukocyte recruitment proteins, with unaltered blood-brain barrier proteins.
- The choroid plexus exhibited increased peripheral immune cell proteins, and vasculature proteins were linked to MHC class I antigen processing and ER dysfunction.
Conclusions:
- GBS infection significantly perturbs the brain's molecular landscape, particularly within the vasculature.
- Distinct proteomic profiles exist between whole brain tissue and specific vascular substructures during infection.
- Systems-level proteomic analysis of functional tissue substructures is essential for a comprehensive understanding of GBS meningitis and its neurological sequelae.
Abstract:
Group B Streptococcus (GBS) remains the leading cause of neonatal meningitis, a disease associated with high rates of adverse neurological sequelae. The in vivo relationship between GBS and brain tissues remains poorly characterized, partly because past studies had focused on microbial rather than host processes. Additionally, the field has not capitalized on systems-level technologies to probe the host-pathogen relationship. Here, we use multiplexed quantitative proteomics to investigate the effect of GBS infection in the murine brain at various levels of tissue complexity, beginning with the whole organ and moving to brain vascular substructures. Infected whole brains showed classical signatures associated with the acute-phase response. In isolated brain microvessels, classical blood-brain barrier proteins were unaltered, but interferon signaling and leukocyte recruitment proteins were upregulated. The choroid plexus showed increases in peripheral immune cell proteins. Proteins that increased in abundance in the vasculature during GBS invasion were associated with major histocompatibility complex (MHC) class I antigen processing and endoplasmic reticulum dysfunction, a finding which correlated with altered host protein glycosylation profiles. Globally, there was low concordance between the infection proteome of whole brains and isolated vascular tissues. This report underscores the utility of unbiased, systems-scale analyses of functional tissue substructures for understanding disease.IMPORTANCE Group B Streptococcus (GBS) meningitis remains a major cause of poor health outcomes very early in life. Both the host-pathogen relationship leading to disease and the massive host response to infection contributing to these poor outcomes are orchestrated at the tissue and cell type levels. GBS meningitis is thought to result when bacteria present in the blood circumvent the selectively permeable vascular barriers that feed the brain. Additionally, tissue damage subsequent to bacterial invasion is mediated by inflammation and by immune cells from the periphery crossing the blood-brain barrier. Indeed, the vasculature plays a central role in disease processes occurring during GBS infection of the brain. Here, we employed quantitative proteomic analysis of brain vascular substructures during invasive GBS disease. We used the generated data to map molecular alterations associated with tissue perturbation, finding widespread intracellular dysfunction and punctuating the importance of investigations relegated to tissue type over the whole organ.
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