Recent studies have reported and provided nucleotide sequence data from divergent isolates of hepatitis E virus (HEV), including isolates from North America and Africa. Sera were investigated from 29 Chinese patients with a diagnosis of acute hepatitis and who were negative for hepatitis viruses A-E by serology (HEV was excluded by testing for IgG antibody only). To determine whether some patients were infected with HEV but had yet to seroconvert to antibody positivity, RT-PCR was carried out with primers designed within conserved sequences of the HEV open reading frame (ORF) 1 and ORF2 regions. Fifteen patients were found to harbour sequences related to HEV. Analysis of the HEV products revealed that nucleotide sequences from nine of the sera closely matched Burmese-like HEV sequences (more than 92 % nucleotide identity across ORF1 and 88 % in ORF2). The remaining six HEV isolates were similar to each other but divergent from all other known HEV sequences (74 to 83 % nucleotide identity in ORF1 or ORF2). Phylogenetic analysis suggests that the six divergent isolates represent a fourth genotype of HEV, distinct from the previously described Burmese, Mexican and United States variants (genotypes 1, 2 and 3). This novel variant, referred to here as the Chinese genotype (genotype 4), may be responsible for a significant proportion of cases of acute hepatitis in China, as seen by the fact that 40 % of the HEVinfected patients in this study were genotype 4 positive.
Isolates of hepatitis E virus (HEV) have recently been described from China that are distinct from Burmese, Mexican and US viruses and constitute a novel genotype (genotype 4). Here, the complete genomic sequence of a representative isolate of genotype 4 HEV, amplified directly from the stool of an acutely infected patient, is presented. Analysis of the entire sequence confirms our previous conclusion, based upon partial sequence data, that these Chinese isolates belong to a novel genotype. Typical of genetic variation in HEV, most nucleotide substitutions occur in the third base of the codon and do not affect the amino acid sequence. The genotype 4 virus is unusual in that a single nucleotide insertion in the ORF 3 region changes the initiation of ORF 3, and perhaps also ORF 2. The consequences of these changes are discussed.
Evidence that hepatitis E is zoonotic is accumulating. Serum samples were collected from pigs, cattle, and goats from various regions of China to determine whether they had been infected with hepatitis E virus (HEV). An in-house enzyme immunoassay (EIA) and reverse transcriptase-polymerase chain reaction (RT-PCR) with primers from open reading frame (ORF) 2 were used to detect anti-HEV antibodies and HEV RNA. The mean positivity rates of anti-HEV antibody for pigs and cattle were 78.8% and 6.3% but none of the goat sera were positive. Pigs may be more susceptible to infection with HEV than cattle or goats. Five of 263 pig sera were positive for HEV RNA and four of these five were also positive for anti-HEV. The PCR products (nt 6007-6354) were cloned and sequenced and compared to other HEV sequences in the nucleotide databases. The five sequences shared 83-93% identity to each other at the nucleotide level and 74-79%, 73-74%, 73-78%, and 83-99% identity to HEV genotypes 1, 2, 3, and 4, respectively. They were closely related to human isolates of HEV genotype 4. Phylogenetic analyses also place these swine sequences in HEV genotype 4, resembling most closely viruses isolated from Chinese patients with acute hepatitis. These data support the hypothesis that sporadic hepatitis E in China is zoonotic.
Infection with hepatitis E virus (HEV) may be diagnosed by the presence of HEV RNA or anti-HEV antibodies. An enzyme immunoassay (EIA) was developed for the detection of antigen. Twenty-four monoclonal antibodies (mAbs) were produced. An indirect sandwich EIA was developed to detect HEV antigen using a combination of three mAbs as coating antibodies. Approximately 44.6% (33/74), 28.6% (50/175), and none (0/27) of sera positive for anti-HEV IgM alone, both anti-HEV IgM and IgG, and anti-HEV IgG alone also were positive for HEV antigen using this EIA. Forty-two HEV antibody-positive sera were tested for HEV RNA and antigen in parallel and the concordance was 81.0% (34/42). All PCR products were found to belong to HEV genotype 4. In order to evaluate the temporal relationship between HEV antigen positivity and HEV RNA, anti-HEV IgG and IgM, and ALT concentrations, macaques were infected with HEV genotypes 1 and 4 and serial samples were collected. The results showed that the antigen EIA can detect the capsid proteins of both genotypes. HEV antigen was detectable prior to ALT elevation and the appearance of anti-HEV antibodies in the infected monkeys and lasted for several weeks in all cases. HEV antigen became detectable in the serum at almost the same time as HEV RNA in feces but persisted for 4 weeks less than HEV RNA. This assay should be valuable for the diagnosis of acute hepatitis E, particularly in the window period prior to seroconversion to anti-HEV.
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