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1.
Artigo em Inglês | MEDLINE | ID: mdl-34759019

RESUMO

BACKGROUND AND OBJECTIVES: Compared with stroke controls, patients with varicella zoster virus (VZV) vasculopathy have increased amyloid in CSF, along with increased amylin (islet amyloid polypeptide [IAPP]) and anti-VZV antibodies. Thus, we examined the gene expression profiles of VZV-infected primary human brain vascular adventitial fibroblasts (HBVAFs), one of the initial arterial cells infected in VZV vasculopathy, to determine whether they are a potential source of amyloid that can disrupt vasculature and potentiate inflammation. METHODS: Mock- and VZV-infected quiescent HBVAFs were harvested at 3 days postinfection. Targeted RNA sequencing of the whole-human transcriptome (BioSpyder Technologies, TempO-Seq) was conducted followed by gene set enrichment and pathway analysis. Selected pathways unique to VZV-infected cells were confirmed by enzyme-linked immunoassays, migration assays, and immunofluorescence analysis (IFA) that included antibodies against amylin and amyloid-beta, as well as amyloid staining by Thioflavin-T. RESULTS: Compared with mock, VZV-infected HBVAFs had significantly enriched gene expression pathways involved in vascular remodeling and vascular diseases; confirmatory studies showed secretion of matrix metalloproteinase-3 and -10, as well increased migration of infected cells and uninfected cells when exposed to conditioned media from VZV-infected cells. In addition, significantly enriched pathways involved in amyloid-associated diseases (diabetes mellitus, amyloidosis, and Alzheimer disease), tauopathy, and progressive neurologic disorder were identified; predicted upstream regulators included amyloid precursor protein, apolipoprotein E, microtubule-associated protein tau, presenilin 1, and IAPP. Confirmatory IFA showed that VZV-infected HBVAFs contained amyloidogenic peptides (amyloid-beta and amylin) and intracellular amyloid. DISCUSSION: Gene expression profiles and pathway enrichment analysis of VZV-infected HBVAFs, as well as phenotypic studies, reveal features of pathologic vascular remodeling (e.g., increased cell migration and changes in the extracellular matrix) that can contribute to cerebrovascular disease. Furthermore, the discovery of amyloid-associated transcriptional pathways and intracellular amyloid deposition in HBVAFs raise the possibility that VZV vasculopathy is an amyloid disease. Amyloid deposition may contribute to cell death and loss of vascular wall integrity, as well as potentiate chronic inflammation in VZV vasculopathy, with disease severity and recurrence determined by the host's ability to clear virus infection and amyloid deposition and by the coexistence of other amyloid-associated diseases (i.e., Alzheimer disease and diabetes mellitus).


Assuntos
Túnica Adventícia , Peptídeos beta-Amiloides/metabolismo , Transtornos Cerebrovasculares , Fibroblastos , Infecção pelo Vírus da Varicela-Zoster , Remodelação Vascular , Túnica Adventícia/citologia , Túnica Adventícia/metabolismo , Túnica Adventícia/patologia , Túnica Adventícia/virologia , Células Cultivadas , Transtornos Cerebrovasculares/metabolismo , Transtornos Cerebrovasculares/patologia , Transtornos Cerebrovasculares/virologia , Fibroblastos/citologia , Fibroblastos/metabolismo , Fibroblastos/patologia , Fibroblastos/virologia , Humanos , Análise de Sequência de RNA , Transcriptoma/fisiologia , Infecção pelo Vírus da Varicela-Zoster/metabolismo , Infecção pelo Vírus da Varicela-Zoster/patologia , Infecção pelo Vírus da Varicela-Zoster/virologia , Remodelação Vascular/fisiologia
2.
J Virol ; 90(23): 10527-10534, 2016 Dec 01.
Artigo em Inglês | MEDLINE | ID: mdl-27630241

RESUMO

Varicella-zoster virus (VZV) vasculopathy produces stroke, giant cell arteritis, and granulomatous aortitis, and it develops after virus reactivates from ganglia and spreads transaxonally to arterial adventitia, resulting in persistent inflammation and pathological vascular remodeling. The mechanism(s) by which inflammatory cells persist in VZV-infected arteries is unknown; however, virus-induced dysregulation of programmed death ligand 1 (PD-L1) may play a role. Specifically, PD-L1 can be expressed on virtually all nucleated cells and suppresses the immune system by interacting with the programmed cell death protein receptor 1, found exclusively on immune cells; thus, downregulation of PD-L1 may promote inflammation, as seen in some autoimmune diseases. Both flow cytometry and immunofluorescence analyses to test whether VZV infection of adventitial cells downregulates PD-L1 showed decreased PD-L1 expression in VZV-infected compared to mock-infected human brain vascular adventitial fibroblasts (HBVAFs), perineural cells (HPNCs), and fetal lung fibroblasts (HFLs) at 72 h postinfection. Quantitative RT-PCR analyses showed no change in PD-L1 transcript levels between mock- and VZV-infected cells, indicating a posttranscriptional mechanism for VZV-mediated downregulation of PD-L1. Flow cytometry analyses showed decreased major histocompatibility complex class I (MHC-I) expression in VZV-infected cells and adjacent uninfected cells compared to mock-infected cells. These data suggest that reduced PD-L1 expression in VZV-infected adventitial cells contribute to persistent vascular inflammation observed in virus-infected arteries from patients with VZV vasculopathy, while downregulation of MHC-I prevents viral clearance. IMPORTANCE: Here, we provide the first demonstration that VZV downregulates PD-L1 expression in infected HBVAFs, HPNCs, and HFLs, which, together with the noted VZV-mediated downregulation of MHC-I, might foster persistent inflammation in vessels, leading to pathological vascular remodeling during VZV vasculopathy and persistent inflammation in infected lungs to promote subsequent infection of T cells and hematogenous virus spread. Identification of a potential mechanism by which persistent inflammation in the absence of effective viral clearance occurs in VZV vasculopathy and VZV infection of the lung is a step toward targeted therapy of VZV-induced disease.


Assuntos
Antígeno B7-H1/metabolismo , Herpesvirus Humano 3/patogenicidade , Antígenos de Histocompatibilidade Classe I/metabolismo , Túnica Adventícia/irrigação sanguínea , Túnica Adventícia/imunologia , Túnica Adventícia/virologia , Antígeno B7-H1/genética , Encéfalo/irrigação sanguínea , Encéfalo/imunologia , Encéfalo/virologia , Células Cultivadas , Regulação para Baixo , Fibroblastos/imunologia , Fibroblastos/virologia , Infecções por Herpesviridae/etiologia , Infecções por Herpesviridae/imunologia , Interações Hospedeiro-Patógeno/imunologia , Humanos , Pulmão/imunologia , Pulmão/virologia , Neuroglia/imunologia , Neuroglia/virologia
3.
Redox Biol ; 1: 292-6, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24024163

RESUMO

Superoxide (O2 (•-)) contributes to the development of cardiovascular disease. Generation of O2 (•-) occurs in both the intracellular and extracellular compartments. We hypothesized that the gene transfer of cytosolic superoxide dismutase (SOD1) or extracellular SOD (SOD3) to blood vessels would differentially protect against O2 (•-)-mediated endothelial-dependent dysfunction. Aortic ring segments from New Zealand rabbits were incubated with adenovirus (Ad) containing the gene for Escherichia coli ß-galactosidase, SOD1, or SOD3. Activity assays confirmed functional overexpression of both SOD3 and SOD1 isoforms in aorta 24 h following gene transfer. Histochemical staining for ß-galactosidase showed gene transfer occurred in the endothelium and adventitia. Next, vessels were prepared for measurement of isometric tension in Kreb's buffer containing xanthine. After precontraction with phenylephrine, xanthine oxidase impaired relaxation to the endothelium-dependent dilator acetylcholine (ACh, max relaxation 33±4% with XO vs. 64±3% without XO, p<0.05), whereas relaxation to the endothelium-independent dilator sodium nitroprusside was unaffected. In the presence of XO, maximal relaxation to ACh was improved in vessels incubated with AdSOD3 (55±2%, p<0.05 vs. control) but not AdSOD1 (34±4%). We conclude that adenoviral-mediated gene transfer of SOD3, but not SOD1, protects the aorta from xanthine/XO-mediated endothelial dysfunction. These data provide important insight into the location and enzymatic source of O2 (•-) production in vascular disease.


Assuntos
Aorta/virologia , Endotélio Vascular/metabolismo , Fenilefrina/farmacologia , Superóxido Dismutase/metabolismo , Xantina Oxidase/metabolismo , Xantina/metabolismo , Túnica Adventícia/metabolismo , Túnica Adventícia/virologia , Animais , Aorta/citologia , Aorta/metabolismo , Dependovirus/genética , Endotélio Vascular/efeitos dos fármacos , Endotélio Vascular/virologia , Vetores Genéticos/genética , Masculino , Óxido Nítrico/metabolismo , Oxidantes/farmacologia , Substâncias Protetoras/farmacologia , Coelhos , Superóxido Dismutase/genética , Superóxidos/metabolismo
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