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1.
Eur J Immunol ; 52(3): 503-510, 2022 03.
Article in English | MEDLINE | ID: covidwho-1718287

ABSTRACT

Corona disease 2019 (COVID-19) affects multiple organ systems. Recent studies have indicated perturbations in the circulating metabolome linked to COVID-19 severity. However, several questions pertain with respect to the metabolome in COVID-19. We performed an in-depth assessment of 1129 unique metabolites in 27 hospitalized COVID-19 patients and integrated results with large-scale proteomic and immunology data to capture multiorgan system perturbations. More than half of the detected metabolic alterations in COVID-19 were driven by patient-specific confounding factors ranging from comorbidities to xenobiotic substances. Systematically adjusting for this, a COVID-19-specific metabolic imprint was defined which, over time, underwent a switch in response to severe acute respiratory syndrome coronavirus-2 seroconversion. Integration of the COVID-19 metabolome with clinical, cellular, molecular, and immunological severity scales further revealed a network of metabolic trajectories aligned with multiple pathways for immune activation, and organ damage including neurological inflammation and damage. Altogether, this resource refines our understanding of the multiorgan system perturbations in severe COVID-19 patients.


Subject(s)
COVID-19/immunology , COVID-19/metabolism , Metabolome/immunology , SARS-CoV-2 , Adolescent , Adult , Aged , COVID-19/complications , Case-Control Studies , Central Nervous System Diseases/etiology , Central Nervous System Diseases/immunology , Central Nervous System Diseases/metabolism , Cohort Studies , Female , Humans , Male , Metabolomics , Middle Aged , Organ Specificity , Pandemics , Phenotype , Proteomics , Severity of Illness Index , Young Adult
3.
Front Immunol ; 11: 580304, 2020.
Article in English | MEDLINE | ID: covidwho-1256375

ABSTRACT

Gamma-delta (γδ) T cells are a subset of T cells that promote the inflammatory responses of lymphoid and myeloid lineages, and are especially vital to the initial inflammatory and immune responses. Given the capability to connect crux inflammations of adaptive and innate immunity, γδ T cells are responsive to multiple molecular cues and can acquire the capacity to induce various cytokines, such as GM-CSF, IL-4, IL-17, IL-21, IL-22, and IFN-γ. Nevertheless, the exact mechanisms responsible for γδ T cell proinflammatory functions remain poorly understood, particularly in the context of the central nervous system (CNS) diseases. CNS disease, usually leading to irreversible cognitive and physical disability, is becoming a worldwide public health problem. Here, we offer a review of the neuro-inflammatory and immune functions of γδ T cells, intending to understand their roles in CNS diseases, which may be crucial for the development of novel clinical applications.


Subject(s)
Central Nervous System Diseases/immunology , Inflammation/immunology , Intraepithelial Lymphocytes/immunology , Th17 Cells/immunology , Animals , Central Nervous System , Cytokines/metabolism , Humans , Immunity, Innate , Receptors, Antigen, T-Cell, gamma-delta/metabolism
4.
Brain Behav Immun ; 91: 740-755, 2021 01.
Article in English | MEDLINE | ID: covidwho-1064860

ABSTRACT

Central nervous system (CNS) innate immunity plays essential roles in infections, neurodegenerative diseases, and brain or spinal cord injuries. Astrocytes and microglia are the principal cells that mediate innate immunity in the CNS. Pattern recognition receptors (PRRs), expressed by astrocytes and microglia, sense pathogen-derived or endogenous ligands released by damaged cells and initiate the innate immune response. Toll-like receptors (TLRs) are a well-characterized family of PRRs. The contribution of microglial TLR signaling to CNS pathology has been extensively investigated. Even though astrocytes assume a wide variety of key functions, information about the role of astroglial TLRs in CNS disease and injuries is limited. Because astrocytes display heterogeneity and exhibit phenotypic plasticity depending on the effectors present in the local milieu, they can exert both detrimental and beneficial effects. TLRs are modulators of these paradoxical astroglial properties. The goal of the current review is to highlight the essential roles played by astroglial TLRs in CNS infections, injuries and diseases. We discuss the contribution of astroglial TLRs to host defense as well as the dissemination of viral and bacterial infections in the CNS. We examine the link between astroglial TLRs and the pathogenesis of neurodegenerative diseases and present evidence showing the pivotal influence of astroglial TLR signaling on sterile inflammation in CNS injury. Finally, we define the research questions and areas that warrant further investigations in the context of astrocytes, TLRs, and CNS dysfunction.


Subject(s)
Astrocytes/metabolism , Neurodegenerative Diseases/physiopathology , Toll-Like Receptors/physiology , Animals , Astrocytes/physiology , Brain/metabolism , Central Nervous System/immunology , Central Nervous System/metabolism , Central Nervous System Diseases/immunology , Central Nervous System Infections/pathology , Encephalitis/immunology , Humans , Immunity, Innate/physiology , Microglia/metabolism , Neurodegenerative Diseases/metabolism , Neurons/metabolism , Receptors, Pattern Recognition/immunology , Signal Transduction , Spinal Cord/pathology , Spinal Cord Injuries/pathology , Toll-Like Receptors/metabolism
5.
Neurol Neuroimmunol Neuroinflamm ; 8(1)2021 01.
Article in English | MEDLINE | ID: covidwho-975946

ABSTRACT

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is the cause of the coronavirus disease 2019 (COVID-19) pandemic. In addition to severe respiratory symptoms, there are a growing number of reports showing a wide range of CNS complications in patients with COVID-19. Here, we review the literature on these complications, ranging from nonspecific symptoms to necrotizing encephalopathies, encephalitis, myelitis, encephalomyelitis, endotheliitis, and stroke. We postulate that there are several different mechanisms involved in COVID-19-associated CNS dysfunction, particularly activation of inflammatory and thrombotic pathways and, in a few patients, a direct viral effect on the endothelium and the parenchyma. Last, critically ill patients frequently present with protracted cognitive dysfunction in the setting of septic encephalopathy likely due to multifactorial mechanisms. Further studies are needed to clarify the relative contribution of each of these mechanisms, but available data suggest that CNS complications in COVID-19 are rare and probably not directly caused by the virus.


Subject(s)
Brain/metabolism , Brain/pathology , COVID-19/complications , COVID-19/metabolism , Central Nervous System Diseases/etiology , Central Nervous System Diseases/metabolism , Brain/immunology , COVID-19/immunology , Central Nervous System Diseases/immunology , Humans , Inflammation Mediators/immunology , Inflammation Mediators/metabolism
6.
Int J Mol Sci ; 21(5)2020 Mar 02.
Article in English | MEDLINE | ID: covidwho-823775

ABSTRACT

Neurotropic viruses infect the central nervous system (CNS) and cause acute or chronic neurologic disabilities. Regulatory T cells (Treg) play a critical role for immune homeostasis, but may inhibit pathogen-specific immunity in infectious disorders. The present review summarizes the current knowledge about Treg in human CNS infections and their animal models. Besides dampening pathogen-induced immunopathology, Treg have the ability to facilitate protective responses by supporting effector T cell trafficking to the infection site and the development of resident memory T cells. Moreover, Treg can reduce virus replication by inducing apoptosis of infected macrophages and attenuate neurotoxic astrogliosis and pro-inflammatory microglial responses. By contrast, detrimental effects of Treg are caused by suppression of antiviral immunity, allowing for virus persistence and latency. Opposing disease outcomes following Treg manipulation in different models might be attributed to differences in technique and timing of intervention, infection route, genetic background, and the host's age. In addition, mouse models of virus-induced demyelination revealed that Treg are able to reduce autoimmunity and immune-mediated CNS damage in a disease phase-dependent manner. Understanding the unique properties of Treg and their complex interplay with effector cells represents a prerequisite for the development of new therapeutic approaches in neurotropic virus infections.


Subject(s)
Central Nervous System Diseases/immunology , T-Lymphocytes, Regulatory/immunology , Virus Diseases/immunology , Animals , Central Nervous System Diseases/virology , Humans
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