Immune responses against hepatitis C virus (HCV) have been studied by numerous groups. However, details concerning the production of antibodies to antigenically variable epitopes remain to be elucidated. Since the sequences of the variable regions of several HCV proteins are different among the virus strains infecting patients, we decided to design peptide combinations that represent the theoretical maximum antigenic variation of each epitope to be used as capture antigens. We prepared six peptide mixtures (hypervariable epitope constructs; HECs) representing six different epitopes from structural and non-structural proteins of HCV from genotypes 1-6. Plasma from 300 HCV patients was tested to determine if their antibodies recognize the synthetic constructs. All the patients were chronically infected with diverse HCV genotypes and did not receive antiviral treatment. Antibodies to one or more of the HECs were detected in all of the HCV-infected individuals. Immunogenicity of the HCV HECs was also evaluated in outbred and inbred mice. Strong HEC-specific antibodies were produced, and cellular responses were also induced that were Th-1 rather than Th-2. Our results show that HCV HECs are both antigens that can be used to detect the broad cross-reactivity of antibodies from HCV-infected patients, and strong immunogens that can induce antigen-specific humoral and cellular immune responses in mice.
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http://dx.doi.org/10.1089/vim.2010.0043 | DOI Listing |
Vet Sci
November 2024
Animal Infectious Disease Laboratory, College of Veterinary Medicine, Yangzhou University, Yangzhou 225012, China.
Pigeon Newcastle disease (ND) is the most common viral infectious disease in the pigeon industry, caused by pigeon paramyxovirus type 1 (PPMV-1), a variant of chicken-origin Newcastle disease virus (NDV). Previous studies have identified significant amino acid differences between PPMV-1 and chicken-origin NDV at positions 347 and 349 in the hemagglutinin-neuraminidase (HN) protein, with PPMV-1 predominantly exhibiting glycine (G) at position 347 and glutamic acid (E) at position 349, while most chicken-origin NDVs show E at position 347 and aspartic acid (D) at position 349. However, the impact of these amino acid substitutions remains unclear.
View Article and Find Full Text PDFbioRxiv
December 2024
Duke University, Duke Human Vaccine Institute, Durham NC 27710, USA.
(HNVs), a genus within the family, includes the highly virulent Nipah and Hendra viruses that cause yearly reoccurring outbreaks of deadly disease. Recent discoveries of several new species, including the zoonotic Langya virus, have revealed much higher antigenic diversity than currently characterized. Here, to explore the limits of structural and antigenic variation in HNVs, we construct an expanded, antigenically diverse panel of HNV fusion (F) and attachment (G) glycoproteins from 56 unique HNV strains that better reflects global HNV diversity.
View Article and Find Full Text PDFBMC Vet Res
December 2024
College of Veterinary Medicine, Southwest University, Rongchang, Chongqing, 402460, China.
Trends Parasitol
December 2024
University of Glasgow Centre for Parasitology, University of Glasgow, School of Infection and Immunity, Sir Graeme Davies Building, 120 University Place, Glasgow, G12 8TA, UK. Electronic address:
Trypanosoma brucei infectious populations are marked by considerable diversity in the parasite's major antigen, the variant surface glycoprotein (VSG). However, most parasites in the bloodstream are non-replicating, questioning how VSG diversity arises. Beaver et al.
View Article and Find Full Text PDFExpert Rev Anti Infect Ther
January 2025
Faculty of Health Sciences, Universidad Científica del Sur, Lima, Peru.
Introduction: The emergence of the H3N2 influenza virus in 1968 marked a significant event as it crossed the species barrier. This shift led to a pandemic, resulting in the deaths of one million people globally and highlighting the virus's severe impact on older individuals due to antigenic drift.
Area Covered: This review comprehensively examines the virological characteristics, evolutionary trends, and global epidemiology of the Influenza A (H3N2) virus.
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