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Isolation and Purification of Fungal β-Glucan as an Immunotherapy Strategy for Glioblastoma
Published on: June 2, 2023
β-Glucan Induces Distinct and Protective Innate Immune Memory in Differentiated Macrophages
Cody L Stothers1, Katherine R Burelbach2, Allison M Owen2
1Department of Pathology, Microbiology and Immunology, Vanderbilt University Medical Center, Nashville, TN; cody.l.stothers@vanderbilt.edu.
Abstract:
Bacterial infections are a common and deadly threat to vulnerable patients. Alternative strategies to fight infection are needed. β-Glucan, an immunomodulator derived from the fungal cell wall, provokes resistance to infection by inducing trained immunity, a phenomenon that persists for weeks to months. Given the durability of trained immunity, it is unclear which leukocyte populations sustain this effect. Macrophages have a life span that surpasses the duration of trained immunity. Thus, we sought to define the contribution of differentiated macrophages to trained immunity. Our results show that β-glucan protects mice from Pseudomonas aeruginosa infection by augmenting recruitment of innate leukocytes to the site of infection and facilitating local clearance of bacteria, an effect that persists for more than 7 d. Adoptive transfer of macrophages, trained using β-glucan, into naive mice conferred a comparable level of protection. Trained mouse bone marrow-derived macrophages assumed an antimicrobial phenotype characterized by enhanced phagocytosis and reactive oxygen species production in parallel with sustained enhancements in glycolytic and oxidative metabolism, increased mitochondrial mass, and membrane potential. β-Glucan induced broad transcriptomic changes in macrophages consistent with early activation of the inflammatory response, followed by sustained alterations in transcripts associated with metabolism, cellular differentiation, and antimicrobial function. Trained macrophages constitutively secreted CCL chemokines and robustly produced proinflammatory cytokines and chemokines in response to LPS challenge. Induction of the trained phenotype was independent of the classic β-glucan receptors Dectin-1 and TLR-2. These findings provide evidence that β-glucan induces enhanced protection from infection by driving trained immunity in macrophages.
Insights
Beta-glucan enhances resistance to bacterial infections by inducing trained immunity in macrophages. This immune training improves bacterial clearance and offers protection lasting over a week.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Bacterial infections pose a significant threat to vulnerable populations, necessitating novel therapeutic strategies.
- Trained immunity, induced by fungal-derived beta-glucan, offers persistent protection against infection.
- The specific cell types responsible for the sustained effects of trained immunity remain unclear.
Purpose of the Study:
- To investigate the role of differentiated macrophages in beta-glucan-induced trained immunity.
- To define the contribution of macrophages to the protective effects of trained immunity against bacterial infection.
Main Methods:
- Mice were infected with Pseudomonas aeruginosa after beta-glucan administration.
- Adoptive transfer of beta-glucan-trained macrophages was performed.
- Phenotypic, metabolic, and transcriptomic analyses of trained macrophages were conducted.
- Macrophage responses were assessed independently of Dectin-1 and TLR-2 receptors.
Main Results:
- Beta-glucan conferred protection against Pseudomonas aeruginosa infection for over 7 days by enhancing leukocyte recruitment and bacterial clearance.
- Adoptive transfer of trained macrophages replicated this protective effect in naive mice.
- Trained macrophages exhibited enhanced phagocytosis, reactive oxygen species production, and altered metabolic profiles.
- Transcriptomic analysis revealed sustained changes in metabolism, differentiation, and antimicrobial function pathways.
Conclusions:
- Beta-glucan induces trained immunity predominantly through macrophages.
- Trained macrophages display a robust antimicrobial phenotype with enhanced metabolic and functional capabilities.
- The induction of trained immunity by beta-glucan is independent of Dectin-1 and TLR-2 signaling.
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