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Oshima, R.

Publications and source records attributed to Oshima, R..

2 recordsLinked to original sources

Importin α4 deficiency induces psychiatric disorder-related behavioral deficits and neuroinflammation in mice.

Importin 4, which is encoded by the Kpna4 gene, is a well characterized nuclear-cytoplasmic transport factor known to mediate transport of transcription factors including NF-{kappa}B. Here, we report that Kpna4 knock-out (KO) mice exhibit psychiatric disorder-related behavioral abnormalities such as anxiety-related behaviors, deceased social interaction and sensorimotor gating deficits. Contrary to a previous study predicting attenuated NF-{kappa}B activity as a result of Kpna4 deficiency, we observed a significant increase in expression levels of NF-{kappa}B genes and pro-inflammatory cytokines such as TNF, Il1{beta} or Il-6 in the Prefrontal Cortex or Basolateral Amygdala of the KO mice. Moreover, examination of inflammatory responses in primary cells revealed that Kpna4 deficient cells have an increased inflammatory response, which was rescued by addition of not only full-length, but also a nuclear transport deficient truncation mutant of importin 4, suggesting contribution of its non-transport functions. Furthermore, RNAseq of sorted adult Microglia and Astrocytes and subsequent transcription factor analysis suggested increases in Polycomb repressor complex 2 (PRC2) activity in Kpna4 KO cells. Taken together, importin 4 deficiency induces psychiatric disorder-related behavioral deficits in mice, along with an increased inflammatory response and possible alteration of PRC2 activity in glial cells.

neuroscience↗

Importin α as a molecular marker for investigating the microenvironment of micronuclei

Micronuclei (MN) are membrane-enclosed chromatin bodies and hallmarks of genome instability. Here, we report that importin , a key nuclear transport factor, is highly concentrated in a distinct subset of MN in cultured human cancer cells. This selective localization is not governed by classical nuclear transport pathways. Live-cell photobleaching revealed remarkably reduced mobility of importin between MN and cytoplasm. In addition, the subset of importin -positive MN exhibited collapsed nuclear envelopes and compromised barrier functions. Importin was also enriched in euchromatin regions, where it colocalized with chromatin-regulating molecules. Importantly, importin and DNA repair/sensing molecules such as RAD51, RPA2, and cGAS showed mutually exclusive localization in MN, indicating that MN comprise distinct internal environments. These findings identify importin as a molecular marker of the restricted MN state, representing a previously unrecognized microenvironment distinct from subsets characterized by conventional molecular markers of disrupted MN. This framework provides new insights into how MN heterogeneity underlies genome instability and immune evasion during cancer progression. Summary statementAccumulation of importin in micronuclei, followed by modulation of the microenvironment of the micronuclei, suggests a non-canonical function of importin in genomic instability and cancer development.

cell biology↗