Immune Functions of Astrocytes in Viral Neuroinfections
Abstract
:1. Introduction
2. Immune Responses of Virus-Infected Astrocytes
2.1. Types of Viral Infections
2.2. Viral Infections of Astrocytes
Persisting Viral Infections of Astrocytes
2.3. Pattern Recognition Receptors in Astrocytes
2.3.1. Toll-like Receptors in Astrocytes
2.3.2. NOD-like Receptors in Astrocytes
2.3.3. Retinoic Acid-Inducible Gene I-like Receptors
2.3.4. C-Type Lectin Receptors
3. Viral Infection Triggers Cytokine Signaling and Their Release from Astrocytes
4. Viral Infections of Astrocytes Trigger Neurologic Symptoms
4.1. Neurologic Symptoms Induced by Cytokines Released from Astrocytes
4.2. Effect of Viral Infection on the Glymphatic System and Survival of Neurons
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
BBB | Blood–brain barrier |
CCHFV | Crimean–Congo hemorrhagic fever virus |
CCL2 | Monocyte chemoattractant protein-1; MCP-1 |
CCL4/MIP-1β | C-C motif chemokine ligand 4/Macrophage inflammatory protein 1β |
CCL5/RANTES | C-C motif chemokine ligand 5/Regulated upon activation, normal T cell expressed and presumably secreted |
CDI | Chronic diffuse infection |
CFI | Chronic focal infection |
CNS | Central nervous system |
CXCL10/IP10 | Gamma-interferon-inducible protein-10; IP-10 |
EBV | Epstein–Barr Virus |
EV71 | Enterovirus 71 |
GAS | Gamma interferon activation site |
GDI | Guanine nucleotide-dissociated inhibitor |
GFAP | Glial fibrillary acidic protein |
HCoV-OC43 | Human coronavirus OC43 |
HIV-1 | Human immunodeficiency virus 1 |
HSV-1 | Herpes simplex virus-1 |
IFN | Interferon |
IFNAR | IFNα/β receptor |
IL | Interleukin |
IRF | IFN-regulatory factor |
ISG | Interferon-stimulated gene |
JEV | Japanese encephalitis virus |
MERS-CoV | Middle East respiratory syndrome virus |
MHC | Major histocompatibility complex |
MVB | Multivesicular body |
NLR | NOD-like receptor |
PRR | Pattern-recognition receptor |
RABV | Rabies virus |
SARS-CoV-2 | Severe acute respiratory syndrome coronavirus 2 |
TBEV | Tick-borne encephalitis virus |
TGF-β1 | Transforming growth factor β1 |
TI | Tiht junction |
TMEV | Theiler’s murine encephalomyelitis virus |
VSV | Vesicular stomatitis virus |
WEEV | Western equine encephalitis virus |
WNV | West Nile virus |
ZIKV | Zika virus |
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Receptor | Virus | Cell/Tissue | Direct and Indirect Effects of Viral Binding to PRRs | References |
---|---|---|---|---|
TLRs (2–4) | polyI:C | human astrocytes | upregulation of TLRs (2–4), secretion of IL-6 and CXCL-10, expression of IFN-β | [73] |
TLR7 | EV71 | cerebral cortex in mice, mouse astrocytes | production of IL-6, apoptosis | [23] |
TLR3, TLR4 | ZIKV | human astrocytes | increase in the release of RANTES, IP-10, IFN-β, autophagy, TLR3, TLR4 expression | [10] |
TLR3 | WNV | mouse brain | encephalitis, breakdown of the blood–brain barrier | [74] |
RIG-1, MDA-5 | VSV, Sendai virus | mouse astrocytes | increase in the expression of RIG-1, MDA-5, release of IL-6, TNF-α | [27] |
RIG-1, MDA-5 | lab-attenuated RABV | mouse astrocytes | activation of MAVS, production of TNF-α, IFN-γ, IL-6, IL-1β, IL-17, VEGF, | [75] |
TLR1-3 | lab-attenuated RABV | mouse brain | IFNα/β signaling pathway stimulated expression of many genes encoding inflammatory molecules such as chemokines, cytokines, TLRs (TLR1–3), and complement components | [76] |
TLR-dependent MyD88 signaling | TMEV | Mouse astrocytes | release of IFN-β | [63] |
DC-SIGN | HIV-1 | human astrocytes | Endocytosis of HIV-1 | [77] |
Virus | Cell/Tissue | Inflammatory Cytokines and Chemokines | Chemokines | References |
---|---|---|---|---|
TBEV | primary human astrocytes | TNF α, IFN α, IL-1β, IL-6, IL-8 | CCL4/MIP-1β, CXCL10 | [9] |
WNV | U373 astrocytic cell line | IL-1β | CXCL10, CCL2 | [139] |
WNV | primary human astrocytes | N/A | CXCL10, CCL5 | [140] |
ZIKV | primary human brain cortical astrocytes | IL-6, IL-8, IL-12, | CXCL-10, CCL5 | [16] |
ZIKV | primary human brain cortical astrocytes | IL-6, IL-1α, IL-4, TGF-β1 | CXCL-10, CCL5 | [10] |
JEV | mouse astrocytes (in situ) | N/A | CXCL10 | [141] |
JEV | primary rat astrocytes | IL-6, TNF-α, IL-1β | CCL5 | [142] |
JEV | primary human astrocytes | IL-6 | CXCL10, CCL2/3/4 | [12] |
JEV | human fetal astrocyte cell line SVG | IL-18, IL-1β | [143] | |
SeV | primary mouse astrocytes | IL-6, TNF-α | N/A | [27] |
RABV | mouse astrocytes (in situ) | IFN-β | N/A | [63] |
SARS-CoV-2 | astrocytes differentiated from hiPSCs | N/A *** | N/A | [32] |
HSV-1 | mouse perivascular astrocytes (in situ) and primary astrocytes | CXCL-1 | [144] | |
HIV-1 | primary human astrocytes **** | IL-6, IL-8 | [145] | |
HIV-1 | primary human fetal astrocytes | TNF-α, IL-6, IL-8 | [146] | |
VSV | primary mouse astrocytes | IL-6, TNF-α, IFN-β | [27,63] | |
EV71 | mouse brain astrocytes, in situ | IL-6 | [23] | |
TEMV | primary human astrocytes | IL-8 | MCP-1 | [25] |
TEMV | mouse astrocytes (in situ) | IFN-β | [63] | |
JHMV ** | spinal cord astrocytes (in situ) | CXCL10 | [147] | |
MHV-A59 * | astrocyte cell line | IL-1α, IL-1β, IL-2, IL-15, IL-13, IL-17 | CXCL10 | [148] |
TLR3 ligation | human astrocytes | IL-6, IFN-α | CXCL-10 | [73] |
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Jorgačevski, J.; Potokar, M. Immune Functions of Astrocytes in Viral Neuroinfections. Int. J. Mol. Sci. 2023, 24, 3514. https://doi.org/10.3390/ijms24043514
Jorgačevski J, Potokar M. Immune Functions of Astrocytes in Viral Neuroinfections. International Journal of Molecular Sciences. 2023; 24(4):3514. https://doi.org/10.3390/ijms24043514
Chicago/Turabian StyleJorgačevski, Jernej, and Maja Potokar. 2023. "Immune Functions of Astrocytes in Viral Neuroinfections" International Journal of Molecular Sciences 24, no. 4: 3514. https://doi.org/10.3390/ijms24043514
APA StyleJorgačevski, J., & Potokar, M. (2023). Immune Functions of Astrocytes in Viral Neuroinfections. International Journal of Molecular Sciences, 24(4), 3514. https://doi.org/10.3390/ijms24043514