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Imai, H.

Publications and source records attributed to Imai, H..

3 recordsLinked to original sources

High-level expression of STING restricts susceptibility to HBV by mediating type III IFN induction

Hepatitis B virus (HBV) is a hepatotropic DNA virus causing hepatic diseases such as chronic hepatitis, liver cirrhosis, and hepatocellular carcinoma. To study HBV, human hepatoma HepG2 cells are currently used as an HBV infectious cell culture model worldwide. HepG2 cells exhibit susceptibility to HBV by exogenously expressing sodium taurocholate cotransporting polypeptide (NTCP). We herein demonstrated that human immortalized hepatocyte NKNT-3 cells exhibited susceptibility to HBV by exogenously expressing NTCP (NKNT-3/NTCP cells). By comparing the cGAS-STING signaling pathway in several NKNT-3/NTCP cell-derived cell clones, we found that STING was highly expressed in cell clones exhibiting resistance but not susceptibility to HBV. High-level expression of STING was implicated in HBV-triggered induction of type III IFN and a pro-inflammatory cytokine, IL-6. In contrast, RNAi-mediated knockdown of STING inhibited type III IFN induction and restored the levels of HBV total transcript in an HBV-infected cell clone exhibiting resistance to HBV. These results suggest that STING regulates susceptibility to HBV by its expression levels.\n\nSTING may thus be a novel target for anti-HBV strategies.

microbiology

Microglia-triggered hyperexcitability in the cerebellum depresses animal behaviors

Clinical studies have suggested that cerebellar dysfunction is involved in various psychiatric disorders, including autism spectrum disorders, dyslexia, and depressive disorders. However, the physiological aspect is less-advanced. Here, we comprehensively investigated the immune-triggered excitability plasticity in the cerebellum. Activated microglia (MG) via exposure to bacterial endotoxin lipopolysaccharide or heat-killed Gram-negative bacteria induced a potentiation of the excitability of Purkinje neurons, which was suppressed by MG-activity inhibitor and MG-depletion. An inflammatory cytokine, tumor necrosis factor- (TNF-) released from MG triggered this plasticity. While our new two-photon FRET ATP-imaging showed an increase in ATP concentration following endotoxin exposure, both TNF- and ATP secretion facilitated synaptic transmission. Inflammation in the cerebellar anterior vermis in vivo immobilized animals, and reduced sociability. Such abulia-like behavioral impairments were reverted by TNF--inhibition and MG-depletion. Resting-state functional MRI revealed overconnectivity between the inflamed cerebellum and prefrontal neocortical regions, which may underlie the psychomotor depressiveness in animals.

neuroscience

Aggregation recovers developmental plasticity in mouse polyploid embryos

Polyploidy is comparatively prevalent in amphibians and fishes, but is infrequent in animals because of lethality after implantation. On the contrary, tetraploid embryos normally develop into blastocysts, and embryonic stem cells can be established from tetraploid blastocysts in mice. Thus, polyploidization does not seem to be so harmful during preimplantation development. However, the mechanisms by which early mammalian development accepts polyploidization are still poorly understood. In this study, we aimed to elucidate the effect of polyploidization on early mammalian development and to further comprehend its tolerability using hyperpolyploid embryos produced by artificial, repetitive whole genome duplication. Therefore, we successfully established several types of polyploid embryos (tetraploid, octaploid, and hexadecaploid), produced using repeated electrofusion of two-cell embryos in mice, and studied their developmental potential in vitro. We demonstrated that all types of these polyploid embryos maintained the ability to develop to the blastocyst stage, which implies that mammalian cells might have basic cellular functions in implanted embryos, despite polyploidization. However, the inner cell mass was absent in the hexadecaploid blastocysts. To complement the total cells in blastocysts, a fused hexadecaploid embryo was produced by aggregating a number of hexadecaploid embryos. The results indicated that the fused hexadecaploid embryo finally recovered pluripotent cells in blastocysts. Thus, our findings suggested that early mammalian embryos may have the tolerability and higher plasticity to adapt to hyperpolyploidization for blastocyst formation, despite intense alteration of the genome volume.

developmental biology