Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 653
Filter
1.
Viruses ; 16(3)2024 Feb 28.
Article in English | MEDLINE | ID: mdl-38543745

ABSTRACT

Hepatitis D virus (HDV) infection represents the most severe form of chronic viral hepatitis. We have shown that the delivery of HDV replication-competent genomes to the hepatocytes using adeno-associated virus (AAV-HDV) as gene delivery vehicles offers a unique platform to investigate the molecular aspects of HDV and associated liver damage. For the purpose of this study, we generated HDV genomes modified by site-directed mutagenesis aimed to (i) prevent some post-translational modifications of HDV antigens (HDAgs) such as large-HDAg (L-HDAg) isoprenylation or short-HDAg (S-HDAg) phosphorylation; (ii) alter the localization of HDAgs within the subcellular compartments; and (iii) inhibit the right conformation of the delta ribozyme. First, the different HDV mutants were tested in vitro using plasmid-transfected Huh-7 cells and then in vivo in C57BL/6 mice using AAV vectors. We found that Ser177 phosphorylation and ribozymal activity are essential for HDV replication and HDAg expression. Mutations of the isoprenylation domain prevented the formation of infectious particles and increased cellular toxicity and liver damage. Furthermore, altering HDAg intracellular localization notably decreased viral replication, though liver damage remained unchanged versus normal HDAg distribution. In addition, a mutation in the nuclear export signal impaired the formation of infectious viral particles. These findings contribute valuable insights into the intricate mechanisms of HDV biology and have implications for therapeutic considerations.


Subject(s)
Hepatitis Delta Virus , RNA, Viral , Animals , Mice , Hepatitis delta Antigens/genetics , Hepatitis delta Antigens/metabolism , RNA, Viral/metabolism , Mice, Inbred C57BL , Virus Replication/genetics , Protein Processing, Post-Translational , Liver/metabolism
2.
World J Gastroenterol ; 29(38): 5395-5405, 2023 Oct 14.
Article in English | MEDLINE | ID: mdl-37900584

ABSTRACT

BACKGROUND: The screening practices for hepatitis D virus (HDV) are diverse and non-standardized worldwide, and the exact prevalence of HDV is uncertain. AIM: To estimate HDV prevalence and investigate viral marker quantity trends in patients with hepatitis D. METHODS: We collected 5594 serum samples from patients with hepatitis B in Jilin Province, China (3293 males and 2301 females, age range of 2 to 89 years). We then conducted tests for hepatitis B surface antigen (HBsAg), hepatitis B Virus (HBV) DNA, anti-hepatitis D antigen (HDAg), and HDV RNA. RESULTS: We found that the prevalence of anti-HDAg and HDV RNA among hepatitis B patient were 3.6% (3.2-4.2%) and 1.2% (0.9-1.5%), respectively, 87.69% of hepatitis D patients were 51-70 years old. HDV infection screening positive rate of patients with HBV DNA levels below 2000 IU/mL (2.0%) was higher than those above 2000 IU/mL (0.2%). Among anti-HDAg positive patients, the HDV RNA positive rate was positively correlated with the HBsAg level and anti-HDAg level. There was a weak correlation between HBsAg and anti-HDAg levels among hepatitis D patients. CONCLUSION: Our study highlights the importance of considering multiple factors when assessing the severity of HDV infection, comprehensive evaluation of patients' clinical and laboratory parameters is necessary for proper diagnosis and treatment.


Subject(s)
Coinfection , Hepatitis B , Hepatitis D , Adolescent , Adult , Aged , Aged, 80 and over , Child , Child, Preschool , Female , Humans , Male , Middle Aged , Young Adult , DNA , East Asian People , Hepatitis B/diagnosis , Hepatitis B/epidemiology , Hepatitis B Surface Antigens , Hepatitis B virus/genetics , Hepatitis D/diagnosis , Hepatitis D/epidemiology , Hepatitis delta Antigens , Hepatitis Delta Virus/genetics , RNA , Coinfection/diagnosis , Coinfection/epidemiology , Coinfection/virology
3.
Virus Res ; 338: 199239, 2023 12.
Article in English | MEDLINE | ID: mdl-37827303

ABSTRACT

RNA editing of the hepatitis delta virus (HDV) is essential for generating the large delta antigen, which is crucial for virion assembly. In HDV genotype 1 (HDV-1), editing occurs within the context of the unbranched rod-like structure characteristic of HDV RNA, while RNA editing in HDV-3 requires a branched double-hairpin structure. The regulation of RNA editing in HDV-2 and HDV-4 remains uncertain. Based on predictions of the unbranched rod-like RNA structures of HDV-2 and HDV-4, the editing site occurs as an A.C mismatch pair, surrounded by four base pairs upstream and two base pairs downstream of the editing site, respectively. To investigate HDV-2 and HDV-4 RNA editing, cultured cells were transfected with non-replicating editing reporters carrying wild-type sequences or specific mutations. The results revealed that the editing rates observed for wild-type HDV-2 and HDV-4 were fairly similar, albeit lower than that of HDV-1. Like HDV-1, both HDV-2 and HDV-4 showed a reduction in editing rate when the A.C mismatch pair and the immediately upstream base-paired region were disturbed. Notably, extending the downstream base-paired region from two to three or four (forming a structure identical to that of HDV-1) base pairs increased editing rate. Furthermore, we presented novel evidence that indicates the importance of the first bulge's size, located upstream of the editing site, and the base-pairing length within 7-13 and 28-39 nucleotides downstream of the editing site in influencing the HDV-4 editing rate. To summarize, our analyses suggest that the unbranched rod-like structures surrounding the editing site of HDV-2 and HDV-4 play a crucial role in regulating their RNA editing rates.


Subject(s)
Hepatitis Delta Virus , RNA Editing , Hepatitis Delta Virus/genetics , RNA, Viral/metabolism , Virus Replication , Genotype , Hepatitis delta Antigens/genetics , Hepatitis delta Antigens/chemistry , Hepatitis delta Antigens/metabolism
4.
J Dent Res ; 102(11): 1272-1279, 2023 10.
Article in English | MEDLINE | ID: mdl-37575047

ABSTRACT

Hepatitis delta virus (HDV) has been detected in the minor salivary gland (MSG) tissue of Sjögren's disease (SjD) patients in the absence of a hepatitis B virus (HBV) coinfection. Previous research has shown that HDV antigen (HDAg) expression can trigger an SjD-like phenotype in vivo, demonstrating a potential cause-and-effect relationship. We hypothesize that if HDV plays a role in the development of SjD, then HDV profiles may be correlated with disease manifestations. This retrospective study characterized HDV in a cohort of 48 SjD MSG samples collected between 2014 and 2021. Analyses of HDAg expression, including cell type and subcellular localization, in situ hybridization of HDV RNA, and comparative analyses with associated SjD and viral hepatitis clinical features, were conducted. HDAg was detected in MSG acinar, ductal, myoepithelial, and adipose cells and localized with the nuclei, cytoplasm, and mitochondria. In situ hybridization detected HDV genomic RNA localization in the MSG nuclei. A significant negative correlation was found between HDAg intensity and focal lymphocytic inflammation and in patients with both anti-SSA/Ro-52 and anti-SSA/Ro-60. In analyzing autoimmune disease comorbidities with SjD, it was found that SjD patients diagnosed with autoimmune thyroiditis and/or hypothyroidism were significantly more represented in the high HDAg intensity group compared to the negative and moderate HDAg intensity groups. No significant associations were detected between MSG-localized HDAg and liver enzymes or an evident HBV coinfection. This study has further confirmed that there is a nonhepatic reservoir for chronic HDV persistence in SjD-affected salivary gland tissue in a third independent SjD patient cohort. In addition, this study describes the unique colocalization of HDAg with mitochondria. The detection of HDV antigen and sequence within SjD-affected salivary gland tissue, and in the absence of an evident current or past HBV coinfection, warrants further investigation.


Subject(s)
Coinfection , Hepatitis B , Sjogren's Syndrome , Humans , Hepatitis Delta Virus/genetics , Hepatitis Delta Virus/metabolism , Hepatitis delta Antigens/metabolism , Retrospective Studies , Salivary Glands, Minor/metabolism , Hepatitis B/complications , Hepatitis B virus/genetics , Hepatitis B virus/metabolism , RNA/metabolism
5.
Viruses ; 15(8)2023 08 03.
Article in English | MEDLINE | ID: mdl-37632029

ABSTRACT

Hepatitis D virus (HDV) is a defective RNA virus with a negative-strand RNA genome encompassing less than 1700 nucleotides. The HDV genome encodes only for one protein, the hepatitis delta antigen (HDAg), which exists in two forms acting as nucleoproteins. HDV depends on the envelope proteins of the hepatitis B virus as a helper virus for packaging its ribonucleoprotein complex (RNP). HDV is considered the causative agent for the most severe form of viral hepatitis leading to liver fibrosis/cirrhosis and hepatocellular carcinoma. Many steps of the life cycle of HDV are still enigmatic. This review gives an overview of the complete life cycle of HDV and identifies gaps in knowledge. The focus is on the description of cellular factors being involved in the life cycle of HDV and the deregulation of cellular pathways by HDV with respect to their relevance for viral replication, morphogenesis and HDV-associated pathogenesis. Moreover, recent progress in antiviral strategies targeting cellular structures is summarized in this article.


Subject(s)
Hepatitis Delta Virus , Liver Neoplasms , Animals , Hepatitis Delta Virus/genetics , Hepatitis delta Antigens , Antiviral Agents , Life Cycle Stages , Liver Cirrhosis
6.
J Hepatol ; 79(3): 657-665, 2023 09.
Article in English | MEDLINE | ID: mdl-37120031

ABSTRACT

BACKGROUND & AIMS: Bulevirtide (BLV) is a HDV/HBV entry inhibitor that is associated with virologic response (responders, HDV-RNA undetectable or ≥2 log10 IU/ml decrease from baseline) in >50% of patients after a 24-week treatment. However, some patients only achieve a <1 log10 IU/ml decline in HDV-RNA after the 24-week treatment (non-responders). Here, we report a viral resistance analysis in participants receiving BLV monotherapy who were non-responders or experienced virologic breakthrough (VB, i.e., two consecutive increases in HDV-RNA of ≥1 log10 IU/ml from nadir or two consecutive HDV-RNA detectable results if previously undetectable) from the phase II MYR202 and phase III MYR301 study. METHODS: Deep-sequencing of the BLV-corresponding region in HBV PreS1 and of the HDV HDAg gene, as well as in vitro phenotypic testing, were performed for the participant with VB (n = 1) and non-responders (n = 20) at baseline (BL) and Week 24 (WK24). RESULTS: No amino acid exchanges associated with reduced susceptibility to BLV within the BLV-corresponding region or within HDAg were identified in isolates from any of the 21 participants at BL or at WK24. Although variants (HBV n = 1; HDV n = 13) were detected at BL in some non-responders or in the participant with VB, none were associated with reduced sensitivity to BLV in vitro. Furthermore, the same variant was detected in virologic responders. A comprehensive phenotypic analysis demonstrated that the BLV EC50 values from 116 BL samples were similar across non-responders, partial responders (HDV RNA decline ≥1 but <2 log10 IU/ml), and responders regardless of the presence of HBV and/or HDV polymorphisms. CONCLUSIONS: No amino acid substitutions associated with reduced sensitivity to BLV monotherapy were detected at BL or WK24 in non-responders or the participant with VB after 24-week BLV treatment. IMPACT AND IMPLICATIONS: This is the first study investigating the development of resistance in patients treated with BLV. Excluding resistance to BLV as an explanation for an insufficient decrease in HDV-RNA levels during BLV therapy is an important finding for patients, clinicians, and researchers. It demonstrates that BLV has a high barrier to resistance, indicating it is safe and suitable for long-term treatment, although long-term surveillance for resistance should be performed. Our results hint at other still unknown mechanisms as an explanation for the persistence of serum HDV-RNA during inhibition of viral entry. CLINICAL TRIAL NUMBERS: NCT03546621 and NCT03852719.


Subject(s)
Antiviral Agents , Hepatitis Delta Virus , Humans , Antiviral Agents/adverse effects , Hepatitis delta Antigens , Hepatitis Delta Virus/genetics , Hepatitis, Chronic/drug therapy , RNA
7.
J Biomol Struct Dyn ; 41(24): 14651-14664, 2023.
Article in English | MEDLINE | ID: mdl-36856037

ABSTRACT

Medicinal plants the underpinning of indigenous herbal serve, are the possible source of key compounds for the development of new drugs. Hepatitis D, one of the most widespread infectious diseases associated with global public health issues. Therefore, we aim to screen natural compounds to find out potent inhibitor towards hepatitis delta antigen. Through ADMET investigation, we have screened twenty phytochemicals for this study. Additionally, using molecular docking, these phytochemicals were docked with the HDV protease which signifies the phytochemicals beta-amyrin, chiratenol, episwertenol and swertanone have a significant capability to bind with hepatitis D virus protein. The docking study was further accompanied by analyzes RMSD, RMSF, Rg, SASA, Hbond number, and principal component analysis through 100 ns MD simulations. Based on our principal component analysis, beta-amyrin, chiratenol, episwertenol and swertanone phytochemicals can be a potential drug candidates for inhibition of hepatitis D. The above observation is also supported by our Gibbs free energy landscape study. The potential therapeutic characteristics of the phytochemicals against hepatitis D inhibition offer additional support for the in vitro and in vivo studies in future.


Subject(s)
Hepatitis D , Swertia , Triterpenes , Humans , Molecular Docking Simulation , Hepatitis delta Antigens , Swertia/chemistry , Molecular Dynamics Simulation , Phytochemicals/pharmacology , Phytochemicals/chemistry
8.
J Hepatol ; 78(5): 958-970, 2023 05.
Article in English | MEDLINE | ID: mdl-36702177

ABSTRACT

BACKGROUND & AIMS: Chronic coinfection with HBV and HDV leads to the most aggressive form of chronic viral hepatitis. Herein, we aimed to elucidate the molecular mechanisms underlying the widely reported observation that HDV interferes with HBV in most coinfected patients. METHODS: Patient liver tissues, primary human hepatocytes, HepaRG cells and human liver chimeric mice were used to analyze the effect of HDV on HBV using virological and RNA-sequencing analyses, as well as RNA synthesis, stability and association assays. RESULTS: Transcriptomic analyses in cell culture and mouse models of coinfection enabled us to define an HDV-induced signature, mainly composed of interferon (IFN)-stimulated genes (ISGs). We also provide evidence that ISGs are upregulated in chronically HDV/HBV-coinfected patients but not in cells that only express HDV antigen (HDAg). Inhibition of the hepatocyte IFN response partially rescued the levels of HBV parameters. We observed less HBV RNA synthesis upon HDV infection or HDV protein expression. Additionally, HDV infection or expression of HDAg alone specifically accelerated the decay of HBV RNA, and HDAg was associated with HBV RNAs. On the contrary, HDAg expression did not affect other viruses such as HCV or SARS-CoV-2. CONCLUSIONS: Our data indicate that HDV interferes with HBV through both IFN-dependent and IFN-independent mechanisms. Specifically, we uncover a new viral interference mechanism in which proteins of a satellite virus affect the RNA production of its helper virus. Exploiting these findings could pave the way to the development of new therapeutic strategies against HBV. IMPACT AND IMPLICATIONS: Although the molecular mechanisms remained unexplored, it has long been known that despite its dependency, HDV decreases HBV viremia in patients. Herein, using in vitro and in vivo models, we showed that HDV interferes with HBV through both IFN-dependent and IFN-independent mechanisms affecting HBV RNA metabolism, and we defined the HDV-induced modulation signature. The mechanisms we uncovered could pave the way for the development of new therapeutic strategies against HBV by mimicking and/or increasing the effect of HDAg on HBV RNA. Additionally, the HDV-induced modulation signature could potentially be correlated with responsiveness to IFN-α treatment, thereby helping to guide management of HBV/HDV-coinfected patients.


Subject(s)
COVID-19 , Coinfection , Hepatitis B , Hepatitis D , Humans , Mice , Animals , Hepatitis Delta Virus/physiology , Hepatitis B virus/physiology , Interferons , Hepatitis delta Antigens/metabolism , Hepatitis D/complications , Hepatitis B/complications , Virus Replication/physiology , COVID-19/complications , SARS-CoV-2/genetics , RNA, Viral/genetics
9.
J Immunoassay Immunochem ; 44(2): 133-146, 2023 Mar 04.
Article in English | MEDLINE | ID: mdl-36369932

ABSTRACT

Infection with both Hepatitis B (HBV) and D (HDV) virus causes more severe liver damage than HBV alone. Superinfections among chronic HBV infected cohorts often lead to HDV persistence with rapid progression to cirrhosis, necessitating continuous surveillance to determine their prevalence and relative contribution to liver pathology. A cross-sectional study among hospital outpatients in Ekiti and Osunstates was conducted using random sampling technique. Blood samples were collected from 410 participants and tested for HBV serological markers. All samples positive for HBsAg samples were tested for Hepatitis D virus antigen (HDAg), serum anti-HDV IgM, and serum anti-HDV IgG using enzyme-linked immunosorbent assay kits. The prevalence of HBV infection among the 410 samples was 12.4% (CI 9.5-15.9). Past HBV exposure was detected in 120 (29.2%), while 147(35.8%) were susceptible to HBV infection. Among the HBsAg positive individuals, 9.8% were hepatitis D antigen (HDAg) positive, while 3.9% and 1.9% were positive for IgG anti-HDV and IgM anti-HDV, respectively. Risk factors associated with HBV infections in this study were multiple sexual partners and sharing of sharp objects. Our investigation has verified the endemicity of HBV in Nigeria and revealed that HBV- HDV co-infection is highly prevalent in south-west Nigeria.


Subject(s)
Coinfection , Hepatitis B , Hepatitis D , Humans , Hepatitis B Surface Antigens , Hepatitis D/epidemiology , Hepatitis delta Antigens , Seroepidemiologic Studies , Nigeria/epidemiology , Cross-Sectional Studies , Hepatitis B/epidemiology , Hepatitis B virus , Hospitals , Immunoglobulin M , Immunoglobulin G , Prevalence
10.
Gut ; 72(6): 1186-1195, 2023 06.
Article in English | MEDLINE | ID: mdl-35977815

ABSTRACT

OBJECTIVE: Chronic HBV/HDV infections are a major cause of liver cancer. Current treatments can only rarely eliminate HBV and HDV. Our previously developed preS1-HDAg immunotherapy could induce neutralising antibodies to HBV in vivo and raise HBV/HDV-specific T-cells. Here, we further investigate if a heterologous prime-boost strategy can circumvent T-cell tolerance and preclude HDV superinfection in vivo. DESIGN: A DNA prime-protein boost strategy was evaluated for immunogenicity in mice and rabbits. Its ability to circumvent T-cell tolerance was assessed in immunocompetent hepatitis B surface antigen (HBsAg)-transgenic mice. Neutralisation of HBV and HDV was evaluated both in vitro and in immunodeficient human-liver chimeric mice upon adoptive transfer. RESULTS: The prime-boost strategy elicits robust HBV/HDV-specific T-cells and preS1-antibodies that can effectively prevent HBV and HDV (co-)infection in vitro and in vivo. In a mouse model representing the chronic HBsAg carrier state, active immunisation primes high levels of preS1-antibodies and HDAg-specific T-cells. Moreover, transfer of vaccine-induced antibodies completely protects HBV-infected human-liver chimeric mice from HDV superinfection. CONCLUSION: The herein described preS1-HDAg immunotherapy is shown to be immunogenic and vaccine-induced antibodies are highly effective at preventing HBV and HDV (super)infection both in vitro and in vivo. Our vaccine can complement current and future therapies for the control of chronic HBV and HDV infection.


Subject(s)
Hepatitis B, Chronic , Hepatitis B , Superinfection , Humans , Mice , Animals , Rabbits , Hepatitis delta Antigens , Hepatitis B Surface Antigens , Hepatitis B, Chronic/prevention & control , Superinfection/prevention & control , Hepatitis Delta Virus/genetics , Hepatitis B/prevention & control , Hepatitis B virus/genetics , Antibodies, Viral , Mice, Transgenic
11.
Virol J ; 19(1): 163, 2022 10 17.
Article in English | MEDLINE | ID: mdl-36253859

ABSTRACT

BACKGROUND: Hepatitis delta virus (HDV), a satellite virus of hepatitis B virus (HBV), is a small, defective RNA virus strongly associated with the most severe form of hepatitis and progressive chronic liver disease and cirrhosis. Chronic hepatitis D, resulting from HBV/HDV coinfection, is considered to be the most severe form of viral hepatitis and affects 12-20 million people worldwide. Involved in the endocytosis and exocytosis of cellular and viral proteins, clathrin contributes to the pathogenesis and morphogenesis of HDV. Previously, we demonstrated that HDV-I and -II large hepatitis delta antigens (HDAg-L) possess a putative clathrin box that interacts with clathrin heavy chain (CHC) and supports HDV assembly. METHODS: Virus assembly and vesicular trafficking of HDV virus-like particles (VLPs) were evaluated in Huh7 cells expressing HDV-I, -II and -III HDAg-L and hepatitis B surface antigen (HBsAg). To elucidate the interaction motif between HDAg-L and CHC, site-directed mutagenesis was performed to introduce mutations into HDAg-L and CHC and analyzed using coimmunoprecipitation or pull-down assays. RESULTS: Comparable to HDV-I virus-like particles (VLPs), HDV-III VLPs were produced at a similar level and secreted into the medium via clathrin-mediated post-Golgi vesicular trafficking. Mutation at F27 or E33 of CHC abolished the binding of CHC to the C-terminus of HDV-III HDAg-L. Mutation at W207 of HDV-III HDAg-L inhibited its association with CHC and interfered with HDV-III VLP formation. We elucidated mechanism of the binding of HDV-III HDAg-L to CHC and confirmed the pivotal role of clathrin binding in the assembly of genotype III HDV. CONCLUSIONS: A novel W box which was identified at the C terminus of HDV-III HDAg-L is known to differ from the conventional clathrin box but also interacts with CHC. The novel W box of HDAg-L constitutes a new molecular target for anti-HDV-III therapeutics.


Subject(s)
Hepatitis B Surface Antigens , Hepatitis Delta Virus , Clathrin/metabolism , Clathrin Heavy Chains/genetics , Clathrin Heavy Chains/metabolism , Genotype , Hepatitis B Surface Antigens/metabolism , Hepatitis B virus/genetics , Hepatitis Delta Virus/genetics , Hepatitis delta Antigens/chemistry , Hepatitis delta Antigens/genetics , Hepatitis delta Antigens/metabolism , Humans , RNA, Viral/metabolism , Viral Proteins/genetics , Virus Replication
12.
J Virol ; 96(19): e0112422, 2022 10 12.
Article in English | MEDLINE | ID: mdl-36102650

ABSTRACT

Hepatitis delta virus (HDV) is a defective satellite virus that uses hepatitis B virus (HBV) envelope proteins to form its virions and infect hepatocytes via the HBV receptors. Concomitant HDV/HBV infection continues to be a major health problem, with at least 25 million people chronically infected worldwide. N6-methyladenine (m6A) modification of cellular and viral RNAs is the most prevalent internal modification that occurs cotranscriptionally, and this modification regulates various biological processes. We have previously described a wider range of functional roles of m6A methylation of HBV RNAs, including its imminent regulatory role in the encapsidation of pregenomic RNA. In this study, we present evidence that m6A methylation also plays an important role in the HDV life cycle. Using the methylated RNA immunoprecipitation (MeRIP) assay, we identified that the intracellular HDV genome and antigenome are m6A methylated in HDV- and HBV-coinfected primary human hepatocytes and HepG2 cell expressing sodium taurocholate cotransporting polypeptide (NTCP), while the extracellular HDV genome is not m6A methylated. We observed that HDV genome and delta antigen levels are significantly decreased in the absence of METTL3/14, while the extracellular HDV genome levels are increased by depletion of METTL3/14. Importantly, YTHDF1, an m6A reader protein, interacts with the m6A-methylated HDV genome and inhibits the interaction between the HDV genome and antigens. Thus, m6A of the HDV genome negatively regulates virion production by inhibiting the interaction of the HDV genome with delta antigens through the recruitment of YTHDF1. This is the first study that provides insight into the functional roles of m6A in the HDV life cycle. IMPORTANCE The functional roles of N6-methyladenine (m6A) modifications in the HBV life cycle have been recently highlighted. Here, we investigated the functional role of m6A modification in the HDV life cycle. HDV is a subviral agent of HBV, as it uses HBV envelope proteins to form its virions. We found that m6A methylation also occurs in the intracellular HDV genome and antigenome but not in the extracellular HDV genome. The m6A modification of the HDV genome recruits m6A reader protein (YTHDF1) onto the viral genome. The association of YTHDF1 with the HDV genome abrogates the interaction of delta antigens with the HDV genome and inhibits virion assembly. This study describes the unique effects of m6A on regulation of the HDV life cycle.


Subject(s)
Adenine , Hepatitis Delta Virus , RNA-Binding Proteins , Virus Assembly , Adenine/analogs & derivatives , Hep G2 Cells , Hepatitis B virus , Hepatitis Delta Virus/physiology , Hepatitis delta Antigens/metabolism , Humans , Methyltransferases/metabolism , RNA, Viral/genetics , RNA-Binding Proteins/metabolism , Viral Envelope Proteins/genetics , Virion/metabolism
13.
Viruses ; 14(9)2022 09 13.
Article in English | MEDLINE | ID: mdl-36146833

ABSTRACT

The promoter-proximal pause induced by the binding of the DRB sensitivity-inducing factor (DSIF) and the negative elongation factor (NELF) to RNAP II is a key step in the regulation of metazoan gene expression. It helps maintain a permissive chromatin landscape and ensures a quick transcriptional response from stimulus-responsive pathways such as the innate immune response. It is also involved in the biology of several RNA viruses such as the human immunodeficiency virus (HIV), the influenza A virus (IAV) and the hepatitis delta virus (HDV). HIV uses the pause as one of its mechanisms to enter and maintain latency, leading to the creation of viral reservoirs resistant to antiretrovirals. IAV, on the other hand, uses the pause to acquire the capped primers necessary to initiate viral transcription through cap-snatching. Finally, the HDV RNA genome is transcribed directly by RNAP II and requires the small hepatitis delta antigen to displace NELF from the polymerase and overcome the transcriptional block caused by RNAP II promoter-proximal pausing. In this review, we will discuss the RNAP II promoter-proximal pause and the roles it plays in the life cycle of RNA viruses such as HIV, IAV and HDV.


Subject(s)
HIV Infections , RNA Polymerase II , Animals , Chromatin , Hepatitis delta Antigens , Humans , Promoter Regions, Genetic , RNA/metabolism , RNA Polymerase II/metabolism , Transcription, Genetic , Viral Transcription
14.
Biomol NMR Assign ; 16(2): 311-316, 2022 10.
Article in English | MEDLINE | ID: mdl-35749039

ABSTRACT

Hepatitis D virus (HDV) is a defective virus that relies on hepatitis B virus envelope proteins to complete its replication cycle. The HDV genome contains two isoforms of hepatitis delta antigen: the small and the large hepatitis delta antigens (S- and L-HDAg). Here we report the 1H, 13C and 15 N backbone and side chain resonance assignments of an N-terminally truncated form of S-HDAg (SΔ60), which lacks the 1-60 oligomerization domain. We derived secondary structures based on NMR chemical shifts, which will be used in further structural and functional studies. We show that SΔ60 is partially disordered, and that the central structured part contains two well-defined α-helices of 22 and 17 residues, respectively. A temperature titration allowed to identify the residues involved in hydrogen bonds.


Subject(s)
Viral Envelope Proteins , Virus Replication , Hepatitis Delta Virus/genetics , Hepatitis Delta Virus/metabolism , Hepatitis delta Antigens/metabolism , Nuclear Magnetic Resonance, Biomolecular
15.
Antiviral Res ; 198: 105250, 2022 02.
Article in English | MEDLINE | ID: mdl-35051490

ABSTRACT

Chronic hepatitis D is the most severe form of chronic viral hepatitis and to date, efficient therapeutic approaches against hepatitis D virus (HDV) are limited. Among the antiviral molecules currently tested in clinical trials, the farnesyl transferase inhibitor (FTI) Lonafarnib inhibits the prenylation of the large delta antigen (L-HDAg), blocking virus assembly. Given the importance of L-HDAg in the virus life cycle, we hypothesized that Lonafarnib treatment may have side effects on virus replication. Here, we setup an innovative method for the quantification of HDV RNA allowing the independent quantification of edited and non-edited versions of the HDV genome upon infection. We demonstrated that FTI treatment of HBV/HDV co-infected dHepaRG or primary human hepatocytes leads to an accumulation of intracellular HDV RNAs and a marked increase in the levels of edited RNAs non only within the infected cells but also in the viral particles that are produced. Interestingly, these viral particles were less infectious, probably due to an enrichment in edited genomes that are packaged, leading to unproductive infection given the absence of S-HDAg synthesis after viral entry. Taken together, we setup an innovative quantification method allowing the investigation of RNA editing during HDV infection in a simple, fast, clinically-relevant assay and demonstrated for the first time the dual antiviral activity of FTI on HDV infection.


Subject(s)
Hepatitis Delta Virus , RNA Editing , Antiviral Agents/pharmacology , Hepatitis Delta Virus/genetics , Hepatitis delta Antigens/metabolism , Humans , RNA, Viral/genetics , Transferases/genetics , Virus Replication
16.
Microbiol Spectr ; 9(3): e0102421, 2021 12 22.
Article in English | MEDLINE | ID: mdl-34908456

ABSTRACT

Hepatitis D is the most severe form of human viral hepatitis and currently lacks an efficient therapy. Dendritic cell-derived exosomes (Dexs) have been found to induce immune responses capable of eliminating viruses. However, the therapeutic potential of antigen-loaded exosomes in hepatitis D is still unknown. Recently, we designed exosomes loaded with ubiquitinated hepatitis delta virus (HDV) small delta antigen (Ub-S-HDAg) and then treated mice bearing replicating HDV with these exosomes to explore their antiviral effect and mechanism. Mature dendritic cell-derived exosomes (mDexs) were loaded with Ub-S-HDAg and their antivirus function was evaluated in mice with HDV viremia. Furthermore, the proportion of CD8+ cells, the ratio of Th1/Th2 cells, the postimmunization levels of cytokines were explored, and the Janus kinases (JAK)/signal transducer and activator of transcription (STAT) pathway was evaluated with a JAK2 inhibitor AG490. In Ub-S-HDAg-Dexs group, the HDV RNA viral load was significantly decreased compared with other groups by CD8+ cell enrichment and an increase Th1/Th2 cell ratio. Furthermore, lymphocyte infiltration was increased, while the HDAg level was decreased in mouse liver tissue. However, there were no significant differences in HBV surface antigen (HBsAg), alanine aminotransferase (ALT), or aspartate aminotransferase (AST) levels among the groups. Moreover, p-JAK2, p-STAT1, p-STAT4, STAT1, and STAT4 expression was increased in Ub-S-HDAg-Dexs group. In conclusion, Ub-S-HDAg-Dexs might be a potential immunotherapeutic agent for eradicating HDV by inducing specific cellular immune response via the JAK/STAT pathway. IMPORTANCE Hepatitis D is the most severe viral hepatitis with accelerating the process of liver cirrhosis and increasing the risk of hepatocellular carcinoma. However, there are no effective antiviral drugs. Exosomes derived from mature dendritic cells are used not only as immunomodulators, but also as biological carriers to deliver antigens to induce robust immune response. Based on these properties, exosomes could be used as a biological immunotherapy by enhancing adaptive immune response to inhibit hepatitis D virus replication. Our research may provide a new therapeutic strategy to eradicate HDV in the future.


Subject(s)
CD8-Positive T-Lymphocytes/immunology , Cell-Derived Microparticles/immunology , Exosomes/immunology , Hepatitis Delta Virus/immunology , Hepatitis delta Antigens/immunology , Th1-Th2 Balance/physiology , Alanine Transaminase/analysis , Animals , Antibodies, Viral/blood , Antibodies, Viral/immunology , Aspartate Aminotransferases/analysis , Cell-Derived Microparticles/virology , Cells, Cultured , Cytokines/blood , Dendritic Cells/immunology , Exosomes/virology , Female , Hepatitis B Surface Antigens/analysis , Hepatitis delta Antigens/metabolism , Immunologic Factors/pharmacology , Immunotherapy/methods , Janus Kinase 2/antagonists & inhibitors , Mice , Mice, Inbred C57BL , Protein Kinase Inhibitors/pharmacology , Tyrphostins/pharmacology , Viral Load , Virus Replication/immunology
17.
Viruses ; 13(12)2021 11 26.
Article in English | MEDLINE | ID: mdl-34960640

ABSTRACT

Hepatitis Delta virus (HDV) is a satellite of the Hepatitis B virus (HBV) and causes severe liver disease. The estimated prevalence of 15-20 million infected people worldwide may be underestimated as international diagnostic guidelines are not routinely followed. Possible reasons for this include the limited awareness among healthcare providers, the requirement for costly equipment and specialized training, and a lack of access to reliable tests in regions with poor medical infrastructure. In this study, we developed an HDV rapid test for the detection of antibodies against the hepatitis delta antigen (anti-HDV) in serum and plasma. The test is based on a novel recombinant large hepatitis delta antigen that can detect anti-HDV in a concentration-dependent manner with pan-genotypic activity across all known HDV genotypes. We evaluated the performance of this test on a cohort of 474 patient samples and found that it has a sensitivity of 94.6% (314/332) and a specificity of 100% (142/142) when compared to a diagnostic gold-standard ELISA. It also works robustly for a broad range of anti-HDV titers. We anticipate this novel HDV rapid test to be an important tool for epidemiological studies and clinical diagnostics, especially in regions that currently lack access to reliable HDV testing.


Subject(s)
Antibodies, Viral/blood , Hepatitis D, Chronic/diagnosis , Hepatitis D/diagnosis , Hepatitis Delta Virus/immunology , Hepatitis delta Antigens/immunology , Point-of-Care Testing , Cohort Studies , Enzyme-Linked Immunosorbent Assay , Genotype , Hepatitis D/virology , Hepatitis D, Chronic/virology , Hepatitis Delta Virus/genetics , Hepatitis Delta Virus/isolation & purification , Humans , Prevalence , Recombinant Proteins , Sensitivity and Specificity , Serologic Tests , Time Factors
18.
Viruses ; 13(8)2021 08 09.
Article in English | MEDLINE | ID: mdl-34452437

ABSTRACT

Human hepatitis delta virus (HDV) is a small defective RNA satellite virus that requires hepatitis B virus (HBV) envelope proteins to form its own virions. The HDV genome possesses a single coding open reading frame (ORF), located on a replicative intermediate, the antigenome, encoding the small (s) and the large (L) isoforms of the delta antigen (s-HDAg and L-HDAg). The latter is produced following an editing process, changing the amber/stop codon on the s-HDAg-ORF into a tryptophan codon, allowing L-HDAg synthesis by the addition of 19 (or 20) C-terminal amino acids. The two delta proteins play different roles in the viral cell cycle: s-HDAg activates genome replication, while L-HDAg blocks replication and favors virion morphogenesis and propagation. L-HDAg has also been involved in HDV pathogenicity. Understanding the kinetics of viral editing rates in vivo is key to unravel the biology of the virus and understand its spread and natural history. We developed and validated a new assay based on next-generation sequencing and aimed at quantifying HDV RNA editing in plasma. We analyzed plasma samples from 219 patients infected with different HDV genotypes and showed that HDV editing capacity strongly depends on the genotype of the strain.


Subject(s)
Genotype , Hepatitis Delta Virus/genetics , RNA Editing/genetics , RNA, Viral/blood , Virus Replication/genetics , Genome, Viral/genetics , Hepatitis D/blood , Hepatitis D/virology , Hepatitis Delta Virus/classification , Hepatitis Delta Virus/metabolism , Hepatitis Delta Virus/pathogenicity , Hepatitis delta Antigens/blood , Hepatitis delta Antigens/genetics , High-Throughput Nucleotide Sequencing/methods , Humans , Open Reading Frames
19.
Viruses ; 13(5)2021 04 28.
Article in English | MEDLINE | ID: mdl-33924806

ABSTRACT

Hepatitis Delta virus (HDV) lies in between satellite viruses and viroids, as its unique molecular characteristics and life cycle cannot categorize it according to the standard taxonomy norms for viruses. Being a satellite virus of hepatitis B virus (HBV), HDV requires HBV envelope glycoproteins for its infection cycle and its transmission. HDV pathogenesis varies and depends on the mode of HDV and HBV infection; a simultaneous HDV and HBV infection will lead to an acute hepatitis that will resolve spontaneously in the majority of patients, whereas an HDV super-infection of a chronic HBV carrier will mainly result in the establishment of a chronic HDV infection that may progress towards cirrhosis, liver decompensation, and hepatocellular carcinoma (HCC). With this review, we aim to unravel Ariadne's thread into the labyrinth of acute and chronic HDV infection pathogenesis and will provide insights into the complexity of this exciting topic by detailing the different players and mechanisms that shape the clinical outcome.


Subject(s)
Hepatitis Delta Virus/genetics , Hepatitis Delta Virus/pathogenicity , Satellite Viruses/genetics , Satellite Viruses/pathogenicity , Animals , Carcinoma, Hepatocellular/virology , Coinfection/virology , Hepatitis B/virology , Hepatitis B virus/genetics , Hepatitis B, Chronic/pathology , Hepatitis B, Chronic/virology , Hepatitis delta Antigens/genetics , Humans , Liver Neoplasms/virology , Mice , RNA, Viral/genetics , Virus Replication
20.
Int Immunopharmacol ; 91: 107302, 2021 Feb.
Article in English | MEDLINE | ID: mdl-33395584

ABSTRACT

The treatment for hepatitis Delta virus (HDV) still consists of Pegylated interferon (PEG-IFN) combined with inhibitors of Hepatitis B virus (HBV) replication. In some patients may be occur a virological response, which means a negative HDV RNA 6 months after stopping treatment. In this study it was conducted an in vitro approach with the aim to mimic possible immunological events that are observed in patients responding to PEG-IFN therapy. Jurkat cells (human T lymphocyte cell line) were employed alone or co-cultured with THP-1 (human monocytic cell line) and stimulated with controls and HBV Surface Antigen (HBsAg), Small-Delta Antigen (SHDAg), and HBsAg + SHDAg combined. Twenty-four hours stimulation with SHDAg and/or HBSAg led to a toxic profile in a co-culture condition and cell supernatants were collected for cytokines quantification. PEG-IFN was added and cells were incubated for additional 24 h. Co-cultured cells incubated with the association (SHDAg + PEG-IFN) significantly produced levels of IFN-γ, IL-2 and IL-12. On the other hand, the HBsAg alone was able to inhibit the production of IFN-γ, suggesting that this antigen may hinder the treatment exclusively with PEG-IFN.


Subject(s)
Antiviral Agents/pharmacology , Cytokines/metabolism , Cytotoxicity, Immunologic/drug effects , Hepatitis D/drug therapy , Hepatitis Delta Virus/immunology , Interferons/pharmacology , Polyethylene Glycols/pharmacology , Coculture Techniques , Hepatitis B Surface Antigens/pharmacology , Hepatitis D/immunology , Hepatitis D/metabolism , Hepatitis D/virology , Hepatitis Delta Virus/pathogenicity , Hepatitis delta Antigens/pharmacology , Host-Pathogen Interactions , Humans , Interferon-gamma/metabolism , Interleukin-12/metabolism , Interleukin-2/metabolism , Jurkat Cells , Signal Transduction , THP-1 Cells
SELECTION OF CITATIONS
SEARCH DETAIL
...