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Ogasawara, K.

Publications and source records attributed to Ogasawara, K..

4 recordsLinked to original sources

Intact learning and memory in mice incapable of de novo myelination

Motor skill learning stimulates and requires generation of oligodendrocytes (OLs) from their precursors (OLPs) in the adult mouse brain, but the functional role(s) of the newly formed OLs is not known. We asked whether new compact myelin sheaths are required, by genetic block of myelin basic protein (MBP) synthesis in adult OLPs and their newly-differentiating OL progeny, using tamoxifen-inducible Cre-lox recombination. Newly-differentiating OLs in these Mbp-cKO mice are unable to assemble compact myelin or normal nodes of Ranvier. Despite this, Mbp-cKOs learned a motor skill just as well as their wild type littermates. They also demonstrated normal contextual fear conditioning. Therefore, neither motor nor fear learning depends on rapid saltatory conduction in newly-myelinated circuits. Mbp-cKOs also formed normal long-term motor and contextual fear memories. Moreover, OL lineage-specific knockout of Monocarboxylate transporter-1 (Mct1), believed to be responsible for transferring metabolic substrates from OLs into axons, did not affect learning or memory consolidation. Myelin regulatory factor (Myrf)-cKOs, in which newly-differentiating OLs die and are rapidly eliminated, confirmed that newly formed OLs are required for learning and memory. Together, the data suggest that learning and memory depends on a non-canonical property of pre-myelinating or myelinating OLs, distinct from myelins cardinal role in speeding action potentials.

neuroscience↗

Ventral striatal astrocytes contribute to reinforcement learning

Astrocytes influence synaptic plasticity and neuronal function through astrocytic calcium dynamics (ACD). However, astrocytes contribution to cognitive operations like reinforcement learning (RL) remains unclear. To examine this, we trained mice on a RL dependent probabilistic decision-making task. We attenuated ACD across distinct striatal regions, and found ACD attenuation specifically in ventral striatum (VS) increased decision noisiness and impaired reward-guided choice performance. This effect was largely due to a reduction in "win-stay" behavior. Using in-vivo calcium imaging, we found that VS ACD correlated with reward prediction errors (RPEs). Furthermore, these trial-by-trial ACD fluctuations predicted trial-by-trial choice variability. In-silico lesions of a biologically constrained circuit model suggest that astrocytes could regulate behavioral variability by sharing RPE signals across populations of striatal neurons. Together, these results suggest that VS astrocytes contribute to cortico-striatal functions to mediate decision noisiness.

neuroscience↗

A hemoperfusion column selectively adsorbs LAP+ lymphocytes to improve anti-tumor immunity and survival of tumor-bearing rats

A decrease of immune suppressive cells in blood is thought to be one of the means to activate anti-tumor immunity that works as a treatment for cancers. We have developed an adsorbent that selectively adsorbs lymphocytes expressing latency-associated peptide (LAP), which include regulatory T cells (Tregs). The adsorbent, diethylenetriamine-conjugated polysulfone coated on polyethylene terephthalate fibers, was packed in a column for direct hemoperfusion (DHP). The therapeutic efficacy of DHP with the column was examined in rats carrying KDH-V liver cancer cells, in which LAP+ cells were increased in blood. After DHP, LAP+ T cells were decreased in peripheral blood, and a cytotoxic T-lymphocyte response against KDH-V cells was increased in tumor-bearing rats that had been immunized with X ray-irradiated KDH-V cells. Furthermore, the survival time of the rats was longer than that of rats without DHP. Thus, the removal of LAP+ T cells can potentially be applied to the treatment of cancer regardless of the origin since an increase in the number of LAP+ cells has been observed in the peripheral blood of various cancer patients.

immunology↗

Oligodendrocyte dynamics dictate individual performance outcomes of working memory training in mice

Motor skill learning stimulates and requires generation of myelinating oligodendrocytes (OLs) from their precursors (OLPs). We asked whether OL production is also required for non-motor learning and cognition, using T-maze and radial arm maze tasks that tax spatial working memory. Maze training stimulated OL production in the medial prefrontal cortex (mPFC), anterior corpus callosum (genu), dorsal thalamus and hippocampal formation; myelin sheath formation was also stimulated in the genu. Genetic blockade of OL differentiation and neo-myelination in Myrf conditional-knockout mice strongly impaired training-induced improvements in maze performance. Remarkably, there was a strong positive correlation between working memory performance of individual mice and the scale of OLP proliferation and OL generation during training, but not with the number or intensity of c-Fos+ neurons in the mPFC, underscoring the key role of OL lineage cells in cognitive performance.

neuroscience↗