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Biomedical subjects

Akio Adachi

Publications and source records attributed to Akio Adachi.

28 records · Page 2Linked to original sources

Amino acid residues 88 and 89 in the central hydrophilic region of human immunodeficiency virus type 1 Vif are critical for viral infectivity by enhancing the steady-state expression of Vif.

A hydrophilic region consisting of strikingly clustered charged amino acids is present at the center of human immunodeficiency virus type 1 (HIV-1) Vif. In this study, the role for this central hydrophilic region (E(88)WRKKR(93)) in the virus replication in nonpermissive H9 cells was investigated by extensive deletion and substitution analysis. A total of 31 mutants were constructed. Deletion of the E(88) or W(89) residue alone abolished viral infectivity in H9 cells and impaired virus replication in primary macrophage cultures. Substitution analysis indicated that the hydrophilicity and charge of the central region are insignificant for the function of Vif. Of the 16 substitution mutants, 3 mutants with substitution of E(88) and W(89) with an A residue did not grow in H9 cells. Upon transfection, four mutants (i.e., two mutants with deletion of E(88) or W(89); a mutant with substitution of E(88) and W(89) with A; and a mutant with substitution of E(88), W(89), and R(90) with A) were found to express Vif at a very reduced level relative to that by the wild-type clone. These results have thus demonstrated that amino acid residues 88 and 89 of Vif are critical for the replication of HIV-1 in target cells by enhancing the steady-state expression of Vif. In addition, E(88) and W(89) residues were found to be extremely conserved among the Vif proteins of naturally occurring HIV-1 field isolates as well as those of laboratory HIV-1 strains.

Amino Acid Sequence↗

Susceptibility of HVS-immortalized lymphocytic HSC-F cells to various strains and mutants of HIV/SIV.

Susceptibility of HSC-F, a cynomolgus macaque cell line immortalized by Herpesvirus saimiri, to infection with various primate immunodeficiency viruses were monitored. While NL432 clone of human immunodeficiency virus type 1 (HIV-1) did not grow at all in HSC-F cells, GH123 and GL-AN clones of HIV-2, and MA239 clone of simian immunodeficiency virus isolated from macaque monkeys (SIVMAC) did grow in these cells. In addition, NM-3 clone of a chimeric simian and human immunodeficiency virus (SHIV) grew fairly well in HSC-F cells. Mutational analyses of accessory genes of GL-AN were successfully performed in the HSC-F cells. These results have thus demonstrated the importance of this cell line for molecular biological studies on HIV/SIV.

Animals↗

[HIV-1, 2].

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Acquired Immunodeficiency Syndrome↗

Association between interleukin-6 gene polymorphism and human T-cell leukemia virus type I associated myelopathy.

We studied cytokine gene polymorphisms in the promoter region, including interleukin (IL)-6, IL-1beta, and IL-10, in Japanese patients with human T-cell leukemia virus type I (HTLV-I) associated myelopathy (HAM) (n = 65), asymptomatic HTLV-I carriers (n = 143), and HTLV-I seronegative, normal controls (n = 160). There was a significant difference between HAM patients and HTLV-I carriers in the distribution of IL-6 promoter polymorphism at position -634 (chi(2) = 9.90, p = 0.0071). The IL-6 genotype was also significantly different between HAM patients and normal controls (chi(2) = 11.53, p = 0.0033), while a similar distribution was observed in IL-1beta and IL-10 polymorphisms among HAM patients, carriers, and normal controls. The results suggest that IL-6 gene region may contribute to susceptibility to HAM, and that aberrant cytokine productions could be involved in the development of HAM.

Carrier State↗

Subtle mutations in the cysteine region of HIV-1 Vif drastically alter the viral replication phenotype.

Mutations were introduced into the region encoding the two cysteine and nearby amino acid residues of human immunodeficiency virus type 1 (HIV-1) Vif protein and, 12 single-amino-acid viral mutants were constructed. Determination of their growth characteristics in two lymphocytic cell lines revealed that only a single amino acid change in the cysteine region greatly altered the replication phenotype. In particular, the four mutants of amino acid 132 of Vif were grouped into three categories on the basis of their growth potentials. These results indicate that the cysteine region of Vif is critical for the cell-dependent replication efficiency of HIV-1.

Cells, Cultured↗

Apparent lack of trans-dominant negative effects of various vif mutants on the replication of HIV-1.

The vif gene of human immunodeficiency virus type 1 (HIV-1) is essential for virus growth in non-permissive cells such as H9. To elucidate the mechanism of action of the Vif protein, vif mutants, which show trans-dominant negative effects on the replication of HIV-1, would be useful tools. In this study, a new assay system to identify the mutants of this category was established. For this new system, various reporter clones carrying both mutant and authentic vif sequences were generated. By determining the growth ability of the viruses derived from the reporter constructs, the potential negative effect of the mutant vif sequence was readily and sensitively monitored. Ten vif mutant sequences tested were found not to exert the trans-dominant negative effect on the replication of HIV-1.

Biological Assay↗

Different effects of Nef-mediated HLA class I down-regulation on human immunodeficiency virus type 1-specific CD8(+) T-cell cytolytic activity and cytokine production.

A previous study using a Nef-defective human immunodeficiency virus type 1 (HIV-1) mutant suggested that Nef-mediated down-regulation of HLA class I on the infected cell surface affects the cytolytic activity of HIV-1-specific cytotoxic T-lymphocyte (CTL) clones for HIV-1-infected primary CD4(+) T cells. We confirmed this effect by using a nef-mutant HIV-1 strain (NL-M20A) that expresses a Nef protein which does not induce down-regulation of HLA class I molecules but is otherwise functional. HIV-1-specific CTL clones were not able to kill primary CD4(+) T cells infected with a Nef-positive HIV-1 strain (NL-432) but efficiently lysed CD4(+) T cells infected with NL-M20A. Interestingly, CTL clones stimulated with NL-432-infected CD4(+) T cells were able to produce cytokines, albeit at a lower level than when stimulated with NL-M20A-infected CD4(+) T cells. This indicates that Nef-mediated HLA class I down-regulation affects CTL cytokine production to a lesser extent than cytolytic activity. Replication of NL-432 was partially suppressed in a coculture of HIV-1-infected CD4(+) T cells and HIV-1-specific CTL clones, while replication of NL-M20A was completely suppressed. These results suggest that HIV-1-specific CD8(+) T cells are able to partially suppress the replication of HIV-1 through production of soluble HIV-1-suppressive factors such as chemokines and gamma interferon. These findings may account for the mechanism whereby HIV-1-specific CD8(+) T cells are able to partially but not completely control HIV-1 replication in vivo.

CD4-Positive T-Lymphocytes↗

Suppression of apoptotic and necrotic cell death by poliovirus.

To determine an antiapoptotic activity of poliovirus type 1 (PV-1), we examined the effect of PV-1 infection on apoptosis that was induced in HEp-2 cells by the treatment with 1 M sorbitol. The virus did not induce apoptosis in the infected cells and could suppress both the fragmentation of chromosomal DNA and morphological cell and cell nuclei changes in the sorbitol-treated cells, indicating that PV-1 induces an antiapoptotic state. Comparison of the kinetics showed that this ability of the virus appeared in the infected cells at the time of progeny virus formation (maturation step of virus multiplication). Simultaneously with this antiapoptotic activity, PV-1 infection also suppressed non-apoptotic cell death induced by sodium chloride. Electron microscopic observation revealed that the cells killed by the sodium chloride treatment had undergone liquefactive necrosis, indicating that PV-1 can inhibit both apoptosis and necrosis. In addition, PV-1 can grow in the apoptotic cells, although the virus yield was reduced to a quarter of the yield in normal cells.

Apoptosis↗

Pseudotyping human immunodeficiency virus type 1 by vesicular stomatitis virus G protein does not reduce the cell-dependent requirement of vif for optimal infectivity: functional difference between Vif and Nef.

The functions of Vif and Nef in human immunodeficiency virus type 1 (HIV-1) infection have some similarities: Vif- and Nef-dependent enhancement of HIV-1 replication is cell type-specific, and defective mutations in these genes result in restricted proviral DNA synthesis in infected cells. It has recently been shown that pseudotyping HIV-1 by the envelope glycoprotein of vesicular stomatitis virus (VSV-G) targets HIV-1 entry to an endocytic pathway and suppresses the requirement of Nef for virus infectivity. In this study, we examined whether VSV-G pseudotyping suppresses the requirement of Vif for HIV-1 infectivity. It was found that pseudotyping HIV-1 by VSV-G did not compensate for the Vif function. Together with the findings that Vif does not influence virus binding/entry and virion incorporation of Env, it is concluded that Vif enhances HIV-1 infectivity at the post-entry step(s) independently of the Env function by a different mechanism to that of Nef.

Gene Products, nef↗

Physiological significance of apoptosis during animal virus infection.

Apoptosis has been considered to be a host defense mechanism against viral infection in multicellular organisms. This is based on the findings that apoptogenic mutants of insect viruses cannot grow because infected host cells die by apoptosis. This suggests that the apoptotic response of host cells has a deleterious effect on virus infection. Thus, apoptosis is an important host defense mechanism that is capable of inhibiting viral replication during infection. However, in vitro studies indicated that apoptosis alone does not provide the same protection against viral infection in animal cells as it does in the insect cells. Still, most animal viruses have acquired a strategy to overcome host cell apoptosis. In addition, a varying degree of necrosis usually accompanies apoptosis, suggesting a possible contribution of necrosis to the host reactions against virus. To understand the physiological significance of apoptosis during animal virus infection, we have characterized viral growth and the cellular responses against virus infection in a wide variety of virus-cell interaction systems. Mainly based on our own works, we discuss the nature of apoptosis in the animal virus infection and verify its role as a host defense mechanism against virus infection.

Animals↗