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1.
Sci Rep ; 14(1): 10696, 2024 05 10.
Article in English | MEDLINE | ID: mdl-38730068

ABSTRACT

COVID-19, caused by SARS-CoV-2, affects neuronal cells, causing several symptoms such as memory loss, anosmia and brain inflammation. Curcuminoids (Me08 e Me23) and curcumin (CUR) are derived from Curcuma Longa extract (EXT). Many therapeutic actions have been linked to these compounds, including antiviral action. Given the severe implications of COVID-19, especially within the central nervous system, our study aims to shed light on the therapeutic potential of curcuminoids against SARS-CoV-2 infection, particularly in neuronal cells. Here, we investigated the effects of CUR, EXT, Me08 and Me23 in human neuroblastoma SH-SY5Y. We observed that Me23 significantly decreased the expression of plasma membrane-associated transmembrane protease serine 2 (TMPRSS2) and TMPRSS11D, consequently mitigating the elevated ROS levels induced by SARS-CoV-2. Furthermore, Me23 exhibited antioxidative properties by increasing NRF2 gene expression and restoring NQO1 activity following SARS-CoV-2 infection. Both Me08 and Me23 effectively reduced SARS-CoV-2 replication in SH-SY5Y cells overexpressing ACE2 (SH-ACE2). Additionally, all of these compounds demonstrated the ability to decrease proinflammatory cytokines such as IL-6, TNF-α, and IL-17, while Me08 specifically reduced INF-γ levels. Our findings suggest that curcuminoid Me23 could serve as a potential agent for mitigating the impact of COVID-19, particularly within the context of central nervous system involvement.


Subject(s)
Anti-Inflammatory Agents , Antioxidants , Antiviral Agents , COVID-19 Drug Treatment , Curcumin , SARS-CoV-2 , Humans , Curcumin/pharmacology , Curcumin/analogs & derivatives , Antioxidants/pharmacology , Antiviral Agents/pharmacology , SARS-CoV-2/drug effects , SARS-CoV-2/physiology , Anti-Inflammatory Agents/pharmacology , Cell Line, Tumor , Curcuma/chemistry , Serine Endopeptidases/metabolism , COVID-19/virology , COVID-19/metabolism , Reactive Oxygen Species/metabolism , NF-E2-Related Factor 2/metabolism , Plant Extracts/pharmacology , Cytokines/metabolism , NAD(P)H Dehydrogenase (Quinone)/metabolism , Neurons/drug effects , Neurons/metabolism , Neurons/virology
2.
Proc Natl Acad Sci U S A ; 121(19): e2401341121, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38696466

ABSTRACT

Neurotropic alphaherpesviruses, including herpes simplex virus type 1 (HSV-1), recruit microtubule motor proteins to invade cells. The incoming viral particle traffics to nuclei in a two-step process. First, the particle uses the dynein-dynactin motor to sustain transport to the centrosome. In neurons, this step is responsible for long-distance retrograde axonal transport and is an important component of the neuroinvasive property shared by these viruses. Second, a kinesin-dependent mechanism redirects the particle from the centrosome to the nucleus. We have reported that the kinesin motor used during the second step of invasion is assimilated into nascent virions during the previous round of infection. Here, we report that the HSV-1 pUL37 tegument protein suppresses the assimilated kinesin-1 motor during retrograde axonal transport. Region 2 (R2) of pUL37 was required for suppression and functioned independently of the autoinhibitory mechanism native to kinesin-1. Furthermore, the motor domain and proximal coiled coil of kinesin-1 were sufficient for HSV-1 assimilation, pUL37 suppression, and nuclear trafficking. pUL37 localized to the centrosome, the site of assimilated kinesin-1 activation during infection, when expressed in cells in the absence of other viral proteins; however, pUL37 did not suppress kinesin-1 in this context. These results indicate that the pUL37 tegument protein spatially and temporally regulates kinesin-1 via the amino-terminal motor region in the context of the incoming viral particle.


Subject(s)
Herpesvirus 1, Human , Kinesins , Viral Structural Proteins , Kinesins/metabolism , Herpesvirus 1, Human/physiology , Herpesvirus 1, Human/metabolism , Humans , Animals , Axonal Transport/physiology , Chlorocebus aethiops , Centrosome/metabolism , Neurons/metabolism , Neurons/virology , Vero Cells , Cell Nucleus/metabolism , Cell Nucleus/virology
3.
J Virol ; 98(5): e0003224, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38651900

ABSTRACT

Critical stages of lytic herpes simplex virus type 1 (HSV-1) replication are marked by the sequential expression of immediate early (IE) to early (E), then late (L) viral genes. HSV-1 can also persist in neuronal cells via a non-replicative, transcriptionally repressed infection called latency. The regulation of lytic and latent transcriptional profiles is critical to HSV-1 pathogenesis and persistence. We sought a fluorescence-based approach to observe the outcome of neuronal HSV-1 infection at the single-cell level. To achieve this goal, we constructed and characterized a novel HSV-1 recombinant that enables discrimination between lytic and latent infection. The dual reporter HSV-1 encodes a human cytomegalovirus-immediate early (hCMV-IE) promoter-driven enhanced yellow fluorescent protein (eYFP) to visualize the establishment of infection and an endogenous mCherry-VP26 fusion to report lytic replication. We confirmed that viral gene expression, replication, and spread of infection are not altered by the incorporation of the fluorescent reporters, and fluorescent protein (FP) detection virtuously reports the progression of lytic replication. We demonstrate that the outcome of HSV-1 infection of compartmentalized primary neurons is determined by viral inoculating dose: high-dose axonal inoculation proceeds to lytic replication, whereas low-dose axonal inoculation establishes a latent HSV-1 infection. Interfering with low-dose axonal inoculation via small molecule drugs reports divergent phenotypes of eYFP and mCherry reporter detection, correlating with altered states of viral gene expression. We report that the transcriptional state of neuronal HSV-1 infection is variable in response to changes in the intracellular neuronal environment.IMPORTANCEHerpes simplex virus type 1 (HSV-1) is a prevalent human pathogen that infects approximately 67% of the global human population. HSV-1 invades the peripheral nervous system, where latent HSV-1 infection persists within the host for life. Immunological evasion, viral persistence, and herpetic pathologies are determined by the regulation of HSV-1 gene expression. Studying HSV-1 gene expression during neuronal infection is challenging but essential for the development of antiviral therapeutics and interventions. We used a recombinant HSV-1 to evaluate viral gene expression during infection of primary neurons. Manipulation of cell signaling pathways impacts the establishment and transcriptional state of HSV-1 latency in neurons. The work here provides critical insight into the cellular and viral factors contributing to the establishment of latent HSV-1 infection.


Subject(s)
Herpes Simplex , Herpesvirus 1, Human , Luminescent Proteins , Neurons , Virus Replication , Herpesvirus 1, Human/genetics , Herpesvirus 1, Human/physiology , Neurons/virology , Neurons/metabolism , Humans , Animals , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Herpes Simplex/virology , Genes, Reporter , Virus Latency/genetics , Gene Expression Regulation, Viral , Chlorocebus aethiops , Vero Cells , Cytomegalovirus/genetics , Cytomegalovirus/physiology
4.
Front Immunol ; 15: 1368465, 2024.
Article in English | MEDLINE | ID: mdl-38646526

ABSTRACT

HIV-infection of microglia and macrophages (MMs) induces neuronal injury and chronic release of inflammatory stimuli through direct and indirect molecular pathways. A large percentage of people with HIV-associated neurologic and psychiatric co-morbidities have high levels of circulating inflammatory molecules. Microglia, given their susceptibility to HIV infection and long-lived nature, are reservoirs for persistent infection. MMs and neurons possess the molecular machinery to detect pathogen nucleic acids and proteins to activate innate immune signals. Full activation of inflammasome assembly and expression of IL-1ß requires a priming event and a second signal. Many studies have demonstrated that HIV infection alone can activate inflammasome activity. Interestingly, secreted phosphoprotein-1 (SPP1/OPN) expression is highly upregulated in the CNS of people infected with HIV and neurologic dysfunction. Interestingly, all evidence thus far suggests a protective function of SPP1 signaling through mammalian target of rapamycin (mTORC1/2) pathway function to counter HIV-neuronal injury. Moreover, HIV-infected mice knocked down for SPP1 show by neuroimaging, increased neuroinflammation compared to controls. This suggests that SPP1 uses unique regulatory mechanisms to control the level of inflammatory signaling. In this mini review, we discuss the known and yet-to-be discovered biological links between SPP1-mediated stimulation of mTOR and inflammasome activity. Additional new mechanistic insights from studies in relevant experimental models will provide a greater understanding of crosstalk between microglia and neurons in the regulation of CNS homeostasis.


Subject(s)
HIV Infections , Inflammasomes , Microglia , Neurons , Osteopontin , Signal Transduction , TOR Serine-Threonine Kinases , Humans , Inflammasomes/metabolism , Microglia/metabolism , Microglia/immunology , Animals , TOR Serine-Threonine Kinases/metabolism , Neurons/metabolism , Neurons/virology , HIV Infections/immunology , HIV Infections/metabolism , HIV Infections/virology , Osteopontin/metabolism
5.
J Cell Mol Med ; 28(9): e18338, 2024 May.
Article in English | MEDLINE | ID: mdl-38683122

ABSTRACT

Respiratory syncytial virus (RSV) infects neuronal cells in the central nervous system (CNS), resulting in neurological symptoms. In the present study, we intended to explore the mechanism of RSV infection-induced neuroinflammatory injury from the perspective of the immune response and sought to identify effective protective measures against the injury. The findings showed that toll-like receptor 4 (TLR4) was activated after RSV infection in human neuronal SY5Y cells. Furthermore, TLR4 activation induced autophagy and apoptosis in neuronal cells, promoted the formation of the NOD-like receptor family pyrin domain containing 3 (NLRP3) inflammasome, and increased the secretion of downstream inflammatory cytokines such as interleukin-1ß (IL-1ß), interleukin-18 (IL-18) and tumour necrosis factor-α (TNF-α). Interestingly, blockade of TLR4 or treatment with exogenous melatonin significantly suppressed TLR4 activation as well as TLR4-mediated apoptosis, autophagy and immune responses. Therefore, we infer that melatonin may act on the TLR4 to ameliorate RSV-induced neuronal injury, which provides a new therapeutic target for RSV infection.


Subject(s)
Apoptosis , Autophagy , Inflammasomes , Melatonin , NLR Family, Pyrin Domain-Containing 3 Protein , Respiratory Syncytial Virus Infections , Toll-Like Receptor 4 , Humans , Apoptosis/drug effects , Autophagy/drug effects , Cell Line, Tumor , Central Nervous System/virology , Central Nervous System/metabolism , Central Nervous System/drug effects , Central Nervous System/pathology , Cytokines/metabolism , Inflammasomes/drug effects , Inflammasomes/metabolism , Melatonin/pharmacology , Neurons/metabolism , Neurons/drug effects , Neurons/virology , NLR Family, Pyrin Domain-Containing 3 Protein/drug effects , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Respiratory Syncytial Virus Infections/virology , Respiratory Syncytial Virus Infections/metabolism , Respiratory Syncytial Virus Infections/drug therapy , Respiratory Syncytial Virus Infections/immunology , Respiratory Syncytial Virus Infections/pathology , Respiratory Syncytial Viruses/drug effects , Respiratory Syncytial Viruses/physiology , Toll-Like Receptor 4/drug effects , Toll-Like Receptor 4/metabolism
6.
Int J Neural Syst ; 34(6): 2450034, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38623650

ABSTRACT

Spiking Neural P Systems (SNP) are well-established computing models that take inspiration from spikes between biological neurons; these models have been widely used for both theoretical studies and practical applications. Virus machines (VMs) are an emerging computing paradigm inspired by viral transmission and replication. In this work, a novel extension of VMs inspired by SNPs is presented, called Virus Machines with Host Excitation (VMHEs). In addition, the universality and explicit results between SNPs and VMHEs are compared in both generating and computing mode. The VMHEs defined in this work are shown to be more efficient than SNPs, requiring fewer memory units (hosts in VMHEs and neurons in SNPs) in several tasks, such as a universal machine, which was constructed with 18 hosts less than the 84 neurons in SNPs, and less than other spiking models discussed in the work.


Subject(s)
Action Potentials , Models, Neurological , Neural Networks, Computer , Neurons , Neurons/physiology , Neurons/virology , Action Potentials/physiology , Humans , Computer Simulation , Animals
7.
Nat Microbiol ; 9(5): 1189-1206, 2024 May.
Article in English | MEDLINE | ID: mdl-38548923

ABSTRACT

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection is associated with short- and long-term neurological complications. The variety of symptoms makes it difficult to unravel molecular mechanisms underlying neurological sequalae after coronavirus disease 2019 (COVID-19). Here we show that SARS-CoV-2 triggers the up-regulation of synaptic components and perturbs local electrical field potential. Using cerebral organoids, organotypic culture of human brain explants from individuals without COVID-19 and post-mortem brain samples from individuals with COVID-19, we find that neural cells are permissive to SARS-CoV-2 to a low extent. SARS-CoV-2 induces aberrant presynaptic morphology and increases expression of the synaptic components Bassoon, latrophilin-3 (LPHN3) and fibronectin leucine-rich transmembrane protein-3 (FLRT3). Furthermore, we find that LPHN3-agonist treatment with Stachel partially restored organoid electrical activity and reverted SARS-CoV-2-induced aberrant presynaptic morphology. Finally, we observe accumulation of relatively static virions at LPHN3-FLRT3 synapses, suggesting that local hindrance can contribute to synaptic perturbations. Together, our study provides molecular insights into SARS-CoV-2-brain interactions, which may contribute to COVID-19-related neurological disorders.


Subject(s)
Brain , COVID-19 , Homeostasis , Organoids , SARS-CoV-2 , Synapses , Humans , SARS-CoV-2/physiology , COVID-19/virology , COVID-19/metabolism , COVID-19/pathology , Brain/virology , Synapses/virology , Synapses/metabolism , Organoids/virology , Virion/metabolism , Neurons/virology , Neurons/metabolism , Receptors, Peptide/metabolism , Receptors, Peptide/genetics
8.
J Neurovirol ; 30(1): 39-51, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38172412

ABSTRACT

Sarbecoviruses such as SARS and SARS-CoV-2 have been responsible for two major outbreaks in humans, the latter resulting in a global pandemic. While sarbecoviruses primarily cause an acute respiratory infection, they have been shown to infect the nervous system. However, mechanisms of sarbecovirus neuroinvasion and neuropathogenesis remain unclear. In this study, we examined the infectivity and trans-synaptic transmission potential of the sarbecoviruses SARS and SARS-CoV-2 in human stem cell-derived neural model systems. We demonstrated limited ability of sarbecoviruses to infect and replicate in human stem cell-derived neurons. Furthermore, we demonstrated an inability of sarbecoviruses to transmit between synaptically connected human stem cell-derived neurons. Finally, we determined an absence of SARS-CoV-2 infection in olfactory neurons in experimentally infected ferrets. Collectively, this study indicates that sarbecoviruses exhibit low potential to infect human stem cell-derived neurons, lack an ability to infect ferret olfactory neurons, and lack an inbuilt molecular mechanism to utilise retrograde axonal trafficking and trans-synaptic transmission to spread within the human nervous system.


Subject(s)
Axons , COVID-19 , Ferrets , SARS-CoV-2 , Severe acute respiratory syndrome-related coronavirus , Humans , SARS-CoV-2/pathogenicity , SARS-CoV-2/physiology , Animals , COVID-19/virology , COVID-19/transmission , Axons/virology , Ferrets/virology , Severe acute respiratory syndrome-related coronavirus/physiology , Severe acute respiratory syndrome-related coronavirus/pathogenicity , Neurons/virology , Virus Replication , Chlorocebus aethiops , Neural Stem Cells/virology , Vero Cells
9.
J Virol ; 97(12): e0133823, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-38009916

ABSTRACT

IMPORTANCE: Betacoronaviruses, including severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) and mouse hepatitis virus (MHV), exploit the lysosomal exocytosis pathway for egress. However, whether all betacoronaviruses members use the same pathway to exit cells remains unknown. Here, we demonstrated that porcine hemagglutinating encephalomyelitis virus (PHEV) egress occurs by Arl8b-dependent lysosomal exocytosis, a cellular egress mechanism shared by SARS-CoV-2 and MHV. Notably, PHEV acidifies lysosomes and activates lysosomal degradative enzymes, while SARS-CoV-2 and MHV deacidify lysosomes and limit the activation of lysosomal degradative enzymes. In addition, PHEV release depends on V-ATPase-mediated lysosomal pH. Furthermore, this is the first study to evaluate ßCoV using lysosome for spreading through the body, and we have found that lysosome played a critical role in PHEV neural transmission and brain damage caused by virus infection in the central nervous system. Taken together, different betacoronaviruses could disrupt lysosomal function differently to exit cells.


Subject(s)
Betacoronavirus 1 , Coronavirus Infections , Exocytosis , Lysosomes , Neurons , Animals , Mice , Betacoronavirus 1/metabolism , Lysosomes/enzymology , Lysosomes/metabolism , Lysosomes/virology , Murine hepatitis virus/metabolism , Neurons/enzymology , Neurons/metabolism , Neurons/pathology , Neurons/virology , SARS-CoV-2/metabolism , Swine/virology , Hydrogen-Ion Concentration , Vacuolar Proton-Translocating ATPases/metabolism , Coronavirus Infections/pathology , Coronavirus Infections/transmission , Coronavirus Infections/virology
10.
J Virol ; 97(12): e0143823, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-37991364

ABSTRACT

IMPORTANCE: Herpes simplex virus 1 (HSV-1) establishes lifelong latency in neuronal cells. Following a stressor, the virus reactivates from latency, virus is shed at the periphery and recurrent disease can occur. During latency, the viral lncRNA termed the latency-associated transcript (LAT) is known to accumulate to high abundance. The LAT is known to impact many aspects of latency though the molecular events involved are not well understood. Here, we utilized a human neuronal cell line model of HSV latency and reactivation (LUHMES) to identify the molecular-binding partners of the LAT during latency. We found that the LAT binds to both the cellular protein, TMEM43, and HSV-1 genomes in LUHMES cells. Additionally, we find that knockdown of TMEM43 prior to infection results in a decreased ability of HSV-1 to establish latency. This work highlights a potential mechanism for how the LAT facilitates the establishment of HSV-1 latency in human neurons.


Subject(s)
Cell Nucleus , Genome, Viral , Herpes Simplex , Herpesvirus 1, Human , RNA, Long Noncoding , Virus Latency , Humans , Cell Line , Herpes Simplex/genetics , Herpes Simplex/metabolism , Herpes Simplex/virology , Herpesvirus 1, Human/genetics , RNA, Long Noncoding/genetics , Virus Activation/genetics , Virus Latency/genetics , Cell Nucleus/metabolism , Cell Nucleus/virology , Neurons/metabolism , Neurons/virology , Membrane Proteins/deficiency , Membrane Proteins/metabolism , Genome, Viral/genetics
11.
J Virol ; 97(12): e0118323, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-37991381

ABSTRACT

IMPORTANCE: Central nervous system infection by flaviviruses such as Japanese encephalitis virus, Dengue virus, and West Nile virus results in neuroinflammation and neuronal damage. However, little is known about the role of long non-coding RNAs (lncRNAs) in flavivirus-induced neuroinflammation and neuronal cell death. Here, we characterized the role of a flavivirus-induced lncRNA named JINR1 during the infection of neuronal cells. Depletion of JINR1 during virus infection reduces viral replication and cell death. An increase in GRP78 expression by JINR1 is responsible for promoting virus replication. Flavivirus infection induces the expression of a cellular protein RBM10, which interacts with JINR1. RBM10 and JINR1 promote the proinflammatory transcription factor NF-κB activity, which is detrimental to cell survival.


Subject(s)
Cell Death , Encephalitis Virus, Japanese , NF-kappa B , Neurons , RNA, Long Noncoding , RNA-Binding Proteins , Humans , Encephalitis Virus, Japanese/growth & development , Encephalitis Virus, Japanese/pathogenicity , Neuroinflammatory Diseases/pathology , Neuroinflammatory Diseases/virology , NF-kappa B/metabolism , RNA, Long Noncoding/genetics , RNA-Binding Proteins/metabolism , Neurons/pathology , Neurons/virology , Virus Replication
12.
J Virol ; 97(10): e0083623, 2023 10 31.
Article in English | MEDLINE | ID: mdl-37787529

ABSTRACT

IMPORTANCE: Herpesviruses are able to disseminate in infected hosts despite development of a strong immune response. Their ability to do this relies on a specialized process called cell-to-cell spread in which newly assembled virus particles are trafficked to plasma membrane surfaces that abut adjacent uninfected cells. The mechanism of cell-to-cell spread is obscure, and little is known about whether or how it is regulated in different cells. We show here that a viral protein with a well-characterized role in promoting spread from neurons has an opposite, inhibitory role in other cells.


Subject(s)
Cell Membrane Structures , Cell Nucleus , Epithelial Cells , Herpesvirus 1, Human , Intracellular Signaling Peptides and Proteins , Lipoproteins , Mutation , Viral Proteins , Virus Release , Biological Transport , Cell Membrane Structures/metabolism , Cell Nucleus/metabolism , Cell Nucleus/virology , Epithelial Cells/metabolism , Epithelial Cells/virology , Herpesvirus 1, Human/genetics , Herpesvirus 1, Human/physiology , Intracellular Signaling Peptides and Proteins/metabolism , Lipoproteins/metabolism , Neurons/metabolism , Neurons/virology , Viral Proteins/genetics , Viral Proteins/metabolism , Virion/genetics , Virion/metabolism
13.
J Virol ; 97(6): e0055623, 2023 06 29.
Article in English | MEDLINE | ID: mdl-37191498

ABSTRACT

During the 2015-2016 Zika virus (ZIKV) epidemic, ZIKV-associated neurological diseases were reported in adults, including microcephaly, Guillain-Barre syndrome, myelitis, meningoencephalitis, and fatal encephalitis. However, the mechanisms underlying the neuropathogenesis of ZIKV infection are not yet fully understood. In this study, we used an adult ZIKV infection mouse model (Ifnar1-/-) to investigate the mechanisms underlying neuroinflammation and neuropathogenesis. ZIKV infection induced the expression of proinflammatory cytokines, including interleukin-1ß (IL-1ß), IL-6, gamma interferon, and tumor necrosis factor alpha, in the brains of Ifnar1-/- mice. RNA-seq analysis of the infected mouse brain also revealed that genes involved in innate immune responses and cytokine-mediated signaling pathways were significantly upregulated at 6 days postinfection. Furthermore, ZIKV infection induced macrophage infiltration and activation and augmented IL-1ß expression, whereas microgliosis was not observed in the brain. Using human monocyte THP-1 cells, we confirmed that ZIKV infection promotes inflammatory cell death and increases IL-1ß secretion. In addition, expression of the complement component C3, which is associated with neurodegenerative diseases and known to be upregulated by proinflammatory cytokines, was induced by ZIKV infection through the IL-1ß-mediated pathway. An increase in C5a produced by complement activation in the brains of ZIKV-infected mice was also verified. Taken together, our results suggest that ZIKV infection in the brain of this animal model augments IL-1ß expression in infiltrating macrophages and elicits IL-1ß-mediated inflammation, which can lead to the destructive consequences of neuroinflammation. IMPORTANCE Zika virus (ZIKV) associated neurological impairments are an important global health problem. Our results suggest that ZIKV infection in the mouse brain can induce IL-1ß-mediated inflammation and complement activation, thereby contributing to the development of neurological disorders. Thus, our findings reveal a mechanism by which ZIKV induces neuroinflammation in the mouse brain. Although we used adult type I interferon receptor IFNAR knockout (Ifnar1-/-) mice owing to the limited mouse models of ZIKV pathogenesis, our conclusions contributed to the understanding ZIKV-associated neurological diseases to develop treatment strategies for patients with ZIKV infection based on these findings.


Subject(s)
Brain , Interleukin-1beta , Macrophages , Zika Virus Infection , Animals , Humans , Mice , Brain/immunology , Cytokines/immunology , Inflammation/immunology , Interleukin-1beta/immunology , Macrophages/immunology , Neuroinflammatory Diseases/immunology , Neuroinflammatory Diseases/virology , Zika Virus , Zika Virus Infection/immunology , Transcriptome/immunology , Disease Models, Animal , Neurons/immunology , Neurons/virology
14.
J Virol ; 97(4): e0014423, 2023 04 27.
Article in English | MEDLINE | ID: mdl-37039676

ABSTRACT

2019 coronavirus disease (COVID-19) is a disease caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). In addition to respiratory illness, COVID-19 patients exhibit neurological symptoms lasting from weeks to months (long COVID). It is unclear whether these neurological manifestations are due to an infection of brain cells. We found that a small fraction of human induced pluripotent stem cell (iPSC)-derived neurons, but not astrocytes, were naturally susceptible to SARS-CoV-2. Based on the inhibitory effect of blocking antibodies, the infection seemed to depend on the receptor angiotensin-converting enzyme 2 (ACE2), despite very low levels of its expression in neurons. The presence of double-stranded RNA in the cytoplasm (the hallmark of viral replication), abundant synthesis of viral late genes localized throughout infected cells, and an increase in the level of viral RNA in the culture medium (viral release) within the first 48 h of infection suggested that the infection was productive. Productive entry of SARS-CoV-2 requires the fusion of the viral and cellular membranes, which results in the delivery of the viral genome into the cytoplasm of the target cell. The fusion is triggered by proteolytic cleavage of the viral surface spike protein, which can occur at the plasma membrane or from endosomes or lysosomes. We found that SARS-CoV-2 infection of human neurons was insensitive to nafamostat and camostat, which inhibit cellular serine proteases, including transmembrane serine protease 2 (TMPRSS2). Inhibition of cathepsin L also did not significantly block infection. In contrast, the neuronal infection was blocked by apilimod, an inhibitor of phosphatidyl-inositol 5 kinase (PIK5K), which regulates early to late endosome maturation. IMPORTANCE COVID-19 is a disease caused by the coronavirus SARS-CoV-2. Millions of patients display neurological symptoms, including headache, impairment of memory, seizures, and encephalopathy, as well as anatomical abnormalities, such as changes in brain morphology. SARS-CoV-2 infection of the human brain has been documented, but it is unclear whether the observed neurological symptoms are linked to direct brain infection. The mechanism of virus entry into neurons has also not been characterized. Here, we investigated SARS-CoV-2 infection by using a human iPSC-derived neural cell model and found that a small fraction of cortical-like neurons was naturally susceptible to infection. The productive infection was ACE2 dependent and TMPRSS2 independent. We also found that the virus used the late endosomal and lysosomal pathway for cell entry and that the infection could be blocked by apilimod, an inhibitor of cellular PIK5K.


Subject(s)
COVID-19 , Induced Pluripotent Stem Cells , SARS-CoV-2 , Humans , Angiotensin-Converting Enzyme 2 , COVID-19/physiopathology , Endosomes/metabolism , Endosomes/virology , Induced Pluripotent Stem Cells/metabolism , Neurons/metabolism , Neurons/virology , Post-Acute COVID-19 Syndrome/physiopathology , Post-Acute COVID-19 Syndrome/virology , SARS-CoV-2/physiology , Spike Glycoprotein, Coronavirus/metabolism , Virus Internalization/drug effects , Phosphotransferases/antagonists & inhibitors , Protein Kinase Inhibitors/pharmacology , Astrocytes/virology , Cells, Cultured
15.
J Virol ; 97(2): e0193522, 2023 02 28.
Article in English | MEDLINE | ID: mdl-36722973

ABSTRACT

Herpes simplex virus 1 (HSV-1) establishes latency in neurons and expresses long noncoding RNAs termed the latency-associated transcripts (LATs). Two previous studies using HSV-1 recombinants containing deletions in the LAT promoter revealed opposing effects of the promoter deletion regarding the heterochromatinization of latent viral genomes in mice ganglia. Confounding variables in these studies include viral strains utilized (17syn+ versus KOS), anatomical infection site (footpad versus eye) and infectious virus dose (500 versus 1 × 105 PFU), and to date the basis for the differences between the two studies remains unresolved. We recently reported that 17syn+ and KOS display distinct differences in heterochromatin levels during latency in human neurons. This raised the possibility that the discrepancy seen between the two previous studies could be explained by strain-specific differences within the LAT region. Here, we examine two recombinants containing orthologous 202 bp LAT promoter deletions, 17ΔPst and KOSΔPst, in a human neuronal model of latency and reactivation (LUHMES). We found that LUHMES neurons recapitulate previous observations in mice where deletion of the LAT promoter results in an increase in H3K27me3 deposition on the viral genome compared to the parental strain 17syn+ but a decrease compared to the parental strain KOS. We also found distinct strain-specific differences in the production of viral transcripts and proteins during latency. These results indicate that the function and/or regulation of the LATs differs between HSV-1 strains and may shed light on some discrepancies found in the literature when examining the function of the LATs. IMPORTANCE Herpes simplex virus 1 (HSV-1) establishes a lifelong infection in neuronal cells. Periodically, the virus reactivates from this latent state and causes recurrent disease. Mechanisms that control entry into and maintenance of latency are not well understood, though epigenetic posttranslational modification of histones associated with the viral genome are known to play an important role. During latency, the latency-associated transcript (LAT) is known to impact epigenetic marks, but the ultimate effect has been a point of controversy. Here, we utilize a human neuronal cell line model of HSV latency and reactivation (LUHMES) to characterize latency for two HSV-1 wild-type strains and their respective LAT promoter deletion viruses. We find that the LAT acts in a strain-specific manner to influence levels of chromatin marks, viral transcription, and viral protein production. This work highlights the need to account for strain-specific differences when characterizing the LAT's function and the dynamics of reactivation.


Subject(s)
Epigenesis, Genetic , Herpes Simplex , Herpesvirus 1, Human , Neurons , Virus Latency , Animals , Humans , Mice , Genome, Viral , Herpesvirus 1, Human/physiology , Neurons/virology , Promoter Regions, Genetic , Virus Activation/genetics , Virus Latency/genetics
16.
Viruses ; 14(11)2022 11 14.
Article in English | MEDLINE | ID: mdl-36423126

ABSTRACT

Varicella-zoster virus (VZV) infection of neuronal cells and the activation of cell-intrinsic antiviral responses upon infection are still poorly understood mainly due to the scarcity of suitable human in vitro models that are available to study VZV. We developed a compartmentalized human-induced pluripotent stem cell (hiPSC)-derived neuronal culture model that allows axonal VZV infection of the neurons, thereby mimicking the natural route of infection. Using this model, we showed that hiPSC-neurons do not mount an effective interferon-mediated antiviral response following VZV infection. Indeed, in contrast to infection with Sendai virus, VZV infection of the hiPSC-neurons does not result in the upregulation of interferon-stimulated genes (ISGs) that have direct antiviral functions. Furthermore, the hiPSC-neurons do not produce interferon-α (IFNα), a major cytokine that is involved in the innate antiviral response, even upon its stimulation with strong synthetic inducers. In contrast, we showed that exogenous IFNα effectively limits VZV spread in the neuronal cell body compartment and demonstrated that ISGs are efficiently upregulated in these VZV-infected neuronal cultures that are treated with IFNα. Thus, whereas the cultured hiPSC neurons seem to be poor IFNα producers, they are good IFNα responders. This could suggest an important role for other cells such as satellite glial cells or macrophages to produce IFNα for VZV infection control.


Subject(s)
Chickenpox , Herpes Zoster , Induced Pluripotent Stem Cells , Interferon-alpha , Neurons , Humans , Herpesvirus 3, Human/physiology , Induced Pluripotent Stem Cells/virology , Interferon-alpha/immunology , Neurons/virology , Cells, Cultured
17.
J Neurol Neurosurg Psychiatry ; 93(12): 1343-1348, 2022 12.
Article in English | MEDLINE | ID: mdl-36137741

ABSTRACT

BACKGROUND: To assess whether SARS-CoV-2 infection may affect the central nervous system, specifically neurons and glia cells, even without clinical neurological involvement. METHODS: In this single centre prospective study, serum levels of neurofilament light chain (sNfL) and glial fibrillar acidic protein (sGFAp) were assessed using SimoaTM assay Neurology 2-Plex B Assay Kit, in 148 hospitalised patients with COVID-19 without clinical neurological manifestations and compared them to 53 patients with interstitial pulmonary fibrosis (IPF) and 108 healthy controls (HCs). RESULTS: Age and sex-corrected sNfL levels were higher in patients with COVID-19 (median log10-sNfL 1.41; IQR 1.04-1.83) than patients with IPF (median log10-sNfL 1.18; IQR 0.98-1.38; p<0.001) and HCs (median log10-sNfL 0.89; IQR 0.72-1.14; p<0.001). Likewise, age and sex-corrected sGFAP levels were higher in patients with COVID-19 (median log10-sGFAP 2.26; IQR 2.02-2.53) in comparison with patients with IPF (median log10-sGFAP 2.15; IQR 1.94-2.30; p<0.001) and HCs (median log10-sGFAP 1.87; IQR 0.64-2.09; p<0.001). No significant difference was found between patients with HCs and IPF (p=0.388 for sNfL and p=0.251 for sGFAp). In patients with COVID-19, a prognostic model with mortality as dependent variable (26/148 patients died during hospitalisation) and sNfl, sGFAp and age as independent variables, showed an area under curve of 0.72 (95% CI 0.59 to 0.84; negative predictive value (NPV) (%):80,positive predictive value (PPV)(%): 84; p=0.0008). CONCLUSION: The results of our study suggest that neuronal and glial degeneration can occur in patients with COVID-19 regardless of overt clinical neurological manifestations. With age, levels of sNfl and GFAp can predict in-hospital COVID-19-associated mortality and might be useful to assess COVID-19 patient prognostic profile.


Subject(s)
Brain , COVID-19 , Neuroglia , Neurons , Humans , Biomarkers/blood , Brain/pathology , Brain/virology , COVID-19/mortality , COVID-19/pathology , Neurofilament Proteins/blood , Neuroglia/pathology , Neuroglia/virology , Neurons/pathology , Neurons/virology , Prospective Studies , SARS-CoV-2 , Male , Female , Prognosis
18.
Brain ; 145(8): 2730-2741, 2022 08 27.
Article in English | MEDLINE | ID: mdl-35808999

ABSTRACT

Glial cell activation is a hallmark of several neurodegenerative and neuroinflammatory diseases. During HIV infection, neuroinflammation is associated with cognitive impairment, even during sustained long-term suppressive antiretroviral therapy. However, the cellular subsets contributing to neuronal damage in the CNS during HIV infection remain unclear. Using post-mortem brain samples from eight HIV patients and eight non-neurological disease controls, we identify a subset of CNS phagocytes highly enriched in LGALS3, CTSB, GPNMB and HLA-DR, a signature identified in the context of ageing and neurodegeneration. In HIV patients, the presence of this phagocyte phenotype was associated with synaptic stripping, suggesting an involvement in the pathogenesis of HIV-associated neurocognitive disorder. Taken together, our findings elucidate some of the molecular signatures adopted by CNS phagocytes in HIV-positive patients and contribute to the understanding of how HIV might pave the way to other forms of cognitive decline in ageing HIV patient populations.


Subject(s)
HIV Infections , Phagocytes , Synapses , Brain/pathology , Brain/virology , HIV Infections/complications , HIV Infections/metabolism , HIV Infections/pathology , Humans , Membrane Glycoproteins , Neurocognitive Disorders , Neurons/pathology , Neurons/virology , Phagocytes/metabolism , Phagocytes/pathology , Synapses/pathology , Synapses/virology
19.
Proc Natl Acad Sci U S A ; 119(22): e2203677119, 2022 05 31.
Article in English | MEDLINE | ID: mdl-35609197

ABSTRACT

Cortical circuit tracing using modified rabies virus can identify input neurons making direct monosynaptic connections onto neurons of interest. However, challenges remain in our ability to establish the cell type identity of rabies-labeled input neurons. While transcriptomics may offer an avenue to characterize inputs, the extent of rabies-induced transcriptional changes in distinct neuronal cell types remains unclear, and whether these changes preclude characterization of rabies-infected neurons according to established transcriptomic cell types is unknown. We used single-nucleus RNA sequencing to survey the gene expression profiles of rabies-infected neurons and assessed their correspondence with established transcriptomic cell types. We demonstrated that when using transcriptome-wide RNA profiles, rabies-infected cortical neurons can be transcriptomically characterized despite global and cell-type-specific rabies-induced transcriptional changes. Notably, we found differential modulation of neuronal marker gene expression, suggesting that caution should be taken when attempting to characterize rabies-infected cells with single genes or small gene sets.


Subject(s)
DNA Fingerprinting , Neurons , Rabies virus , Rabies , Humans , Neurons/physiology , Neurons/virology , Rabies/genetics , Rabies virus/genetics , Sequence Analysis, RNA , Transcription, Genetic , Transcriptome/genetics
20.
J Virol ; 96(9): e0034922, 2022 05 11.
Article in English | MEDLINE | ID: mdl-35404085

ABSTRACT

Herpes simplex virus 2 (HSV-2) establishes latent infection in dorsal root ganglion (DRG) neurons after productive (lytic) infection in peripheral tissues. A neuron-specific microRNA, miR-138, favors HSV-1 latency by repressing viral ICP0 and host Oct-1 and Foxc1 genes, yet the role of miR-138 in HSV-2 infection was unknown. The ICP0 mRNAs of HSV-1, HSV-2, and chimpanzee herpesvirus each have one to two canonical miR-138 binding sites. The sites are 100% conserved in 308 HSV-1 and 300 HSV-2 published sequences of clinical isolates. In cotransfection assays, miR-138 repressed HSV-2 ICP0 expression through the seed region and surrounding interactions that are different from HSV-1. An HSV-2 mutant with disrupted miR-138 binding sites on ICP0 showed increased ICP0 expression in Neuro-2a cells. Photoactivatable ribonucleoside-enhanced cross-linking and immunoprecipitation confirmed miR-138 binding to HSV-2 ICP0 and identified UL19 and UL20 as additional targets whose expression was repressed by miR-138 during cotransfection. In Neuro-2a cells, transfected miR-138 and its antagomir decreased and increased HSV-2 replication, respectively, and a knockout experiment showed that miR-138's host targets OCT-1 and FOXC1 were important for HSV-2 replication. In primary mouse DRG neurons, both ICP0 and FOXC1 positively regulated HSV-2 replication, but both overexpressed and endogenous miR-138 suppressed HSV-2 replication primarily by repressing ICP0 expression. Thus, miR-138 can suppress HSV-2 neuronal replication through multiple viral and host pathways. These results reveal functional similarities and mechanistic differences in how miR-138 regulates HSV-1 and HSV-2 infection and indicate an evolutionary advantage of using miR-138 to repress lytic infection in neurons. IMPORTANCE HSV-1 and HSV-2 are closely related viruses with major differences. Both viruses establish latency in neurons from which they reactivate to cause disease. A key aspect of HSV latency is repression of productive infection in neurons. Based on previous work with HSV-1, we investigated the role of a neuron-specific microRNA, miR-138, in HSV-2 infection and established it as a repressor of HSV-2 productive infection in neuronal cells. This repression is mediated mainly by targeting viral ICP0 and host Foxc1 mRNAs, but other pathways also contribute. Despite functional conservation of the role of miR-138 between HSV-1 and HSV-2, many molecular mechanisms differ, including how miR-138 represses ICP0 expression and miR-138 targeting of HSV-2 but not HSV-1 UL19 and UL20. To our knowledge, this study provides the first example of host microRNA regulation of HSV-2 infection.


Subject(s)
Herpes Simplex , Herpesvirus 2, Human , MicroRNAs , Neurons , Animals , Forkhead Transcription Factors , Gene Expression Regulation, Viral , Herpesvirus 1, Human/genetics , Herpesvirus 1, Human/physiology , Herpesvirus 2, Human/genetics , Herpesvirus 2, Human/physiology , Immediate-Early Proteins/metabolism , Mice , MicroRNAs/genetics , Neurons/virology , Octamer Transcription Factor-1 , Ubiquitin-Protein Ligases/metabolism , Virus Latency/genetics , Virus Replication
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