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Herbert, F.

Publications and source records attributed to Herbert, F..

4 recordsLinked to original sources

Astrocytes control the Neuroinflammation and ILC2 response through IL-33/ST2 signaling, during protection against Cerebral Malaria in Toxoplasma-P. berghei coinfected Mice

Cerebral malaria (CM) is a complex multi-systemic disorder defined as a diffuse encephalopathy with acute neurological manifestations characterized by alterations in the level of consciousness, deep coma and seizure preceding death. During infection, astrocytes undergo significant morphological and molecular changes, adopting a reactive state that impacts on their functions. This reactivity is characterized by a shift in from a neuroprotective (A2) to a neurotoxic (A1) phenotype, influencing the outcome of the immune response. These phenotypes may vary depending on the chronicity of the infection or multiples infections of the same host. In this study, we investigated how Toxoplasma gondii (Tg) brain infection impacts on the outcome of experimental cerebral malaria (ECM) in mice infected with Plasmodium berghei ANKA (PbA). Our results highlighted an immunomodulatory role of GFAP+ astrocytes underweening significant morphological and molecular alterations and adopting a unique intermediate reactivity state (A1/A2). This state was correlated with production of CXCL-10 and TGF-{beta}, which control inflammation without exacerbating infection. Our study also revealed a key role of the IL-33/ST2 pathway induced by Tg brain infection in protecting against ECM. Astrocyte-derived IL-33 was crucial to promote brain recruitment and activation of innate lymphoid cells (ILC2), which contribute to the hosts antiparasitic response. Additionally, we identified a distinctive intermediate M1/M2 phenotype in CD86+CD206+CD16/32+MHCIIhi microglia and noted an enhanced recruitment of inflammatory monocytes, both contributing to inflammation and control of PbA infection. This study reveals, for the first time, how latent brain infection with T. gondii confers protection against a severe cerebral form of malaria, positioning astrocytes at the core of the neuroinflammatory response that controls PbA infection severity. This expands our understanding of host-pathogen interactions and the potential for targeting astrocytic pathways in preventing CM. Author SummaryCerebral malaria (CM) is one of the most severe complications of Plasmodium infection, often leading to coma and death. The mechanisms that determine why some individuals develop this life-threatening condition remain poorly understood. In this study, we explored how a chronic brain infection with the parasite Toxoplasma gondii influences the development of CM in mice. We found that Tg infection reshapes the brains immune environment, particularly through the actions of astrocytes, cells that normally support and protect neurons. During coinfection, astrocytes adopted a balanced reactive state that limited inflammation without worsening the infection. This response involved the IL-33/ST2 signalling pathway and led to the recruitment of protective immune cells, helping to control Plasmodium infection in the brain. Our findings uncover an unexpected protective role of latent T. gondii infection and identify astrocytes as central regulators of neuroinflammation. This work highlights potential new strategies for preventing or mitigating cerebral malaria by targeting astrocyte-mediated immune responses.

immunology↗

7-ketocholesterol contributes to microglia-driven increases in astrocyte reactive oxygen species in Alzheimer's disease

Oxidative stress is a prominent feature of Alzheimers disease. Within this context, cholesterol undergoes oxidation, producing the pro-inflammatory product 7-ketocholesterol (7-KC). In this study, we observe elevated levels of 7-KC in the brains of the 3xTg mouse model of AD. To further understand the contribution of 7-KC on the oxidative environment, we developed a method to express a genetically encoded fluorescent hydrogen peroxide (H2O2) sensor in astrocytes, the primary source of cholesterol in the brain. With this sensor, we discovered that 7-KC increases H2O2 levels in astrocytes in vivo, but not when directly applied to astrocytes in vitro. Interestingly, when 7-KC was applied to a microglia cell line alone or mixed astrocyte and microglia cultures, it resulted in microglia activation and increased oxidative stress in astrocytes. Depletion of microglia from 3xTg mice resulted in reduced 7-KC in the brains of these mice. Taken together, these findings suggest that 7-KC, acting through microglia, contributes to increased astrocyte oxidative stress in AD. This study sheds light on the complex interplay between cholesterol oxidation, microglia activation, and astrocyte oxidative stress in the pathogenesis of AD.

neuroscience↗

A secreted helminth microRNA suppresses gastrointestinal cell differentiation required for innate immunity

Pathogens have developed multiple strategies to modulate host immune defense mechanisms. Understanding how this is achieved has potential to inform novel therapeutics for diseases caused by immune dysfunction. Parasitic helminths are masters of immune evasion, via release of secreted products, resulting in chronic infection. Helminths secrete small regulatory microRNA (miRNAs), which can interact with host cells. Here we show that a single parasite miRNA (miR-5352), conserved across gastrointestinal (GI) nematodes, suppresses IL-13-induced GI epithelial cell differentiation and cytokine responses, and promotes stem cell maintenance. Mechanistically, this is achieved through targeted repression of critical host factors, including Klf-4 and the IL-22 receptor, together with modulation of Wnt and Notch signalling pathways. Nematode miR-5352 shows seed sequence conservation with mammalian miR-92a family members, indicating that through convergent evolution, GI nematodes exploit a host miRNA regulatory network to suppress host innate responses, promote tissue regeneration and establish a favourable environment for chronic infection.

microbiology↗

Tuft cell-derived acetylcholine is an effector of type 2 immunity and directly targets helminth parasites in the gut lumen

Upon parasitic helminth infection, activated intestinal tuft cells secrete IL-25, which initiates a type 2 immune response during which lamina propria ILC2s produce IL-13. This causes epithelial remodelling, including tuft cell hyperplasia with an unknown function. We describe a novel cholinergic effector function of tuft cells, which we show are the only epithelial cells expressing Choline Acetyltransferase (ChAT). During parasite infections, mice with epithelial-specific deletion of ChAT have increased worm burden and faecal egg counts although they are able to mount a comparable type 2 immune response. Mechanistically, IL-13-amplified tuft cells release acetylcholine (ACh) into the gut lumen. We demonstrate a direct effect of ACh on worms, reducing their viability and fecundity via helminth muscarinic ACh receptors, with effects promoted by inhibition of acetylcholinesterase, an helminth-secreted enzyme. Thus, tuft cells are sentinels in naive mice, and their amplification upon helminth infections serves an additional type 2 immune response effector function.

immunology↗