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TOMA-FUKAI, S.

Publications and source records attributed to TOMA-FUKAI, S..

2 recordsLinked to original sources

Inhibition of microtubule polymerization and dynein impairs the nuclear localization of the ependymoma-associated ZFTA-RELA fusion protein and NF-κB activation

Ependymomas are rare and chemotherapy-resistant gliomas. One subclass of supratentorial ependymomas, ST-EPN-ZFTA, expresses a fusion protein consisting of a nuclear protein, zinc finger translocation associated (ZFTA), and v-rel reticuloendotheliosis viral oncogene homolog A (RELA), an effector transcription factor of the nuclear factor-{kappa}B (NF-{kappa}B) pathway (ZFTA-RELA). Constitutive localization of ZFTA-RELA to the nucleus hyperactivates the oncogenic NF-{kappa}B signaling pathway, thereby contributing to the pathogenesis of ST-EPN-ZFTA. To identify compounds that inhibit NF-{kappa}B activity induced by ZFTA-RELA, we established a high-throughput screening system using the NF-{kappa}B-responsive luciferase reporter cell line 6E8, which expresses ZFTA-RELA in a doxycycline-dependent manner. A chemical library of 9600 compounds selected for their structural diversity was screened, and a colchicine derivative was identified. Among colchicine and six of its derivatives, the IC50 on ZFTA-RELA-dependent NF-{kappa}B-responsive luciferase activity in 6E8 cells was found to be the lowest for colchicine at 90 nM. Interestingly, microtubule polymerization inhibitors (colchicine and vinblastine) and dynein inhibitors (ciliobrevin D and dynarrestin) impaired ZFTA-RELAs nuclear localization and NF-{kappa}B activity in 6E8 cells. These findings indicate that microtubule polymerization and dynein play pivotal roles in activating the NF-{kappa}B pathway in ST-EPN-ZFTA by promoting the nuclear localization of ZFTA-RELA. Consequently, inhibition of microtubule polymerization may be a therapeutic strategy for ST-EPN-ZFTA.

cell biology↗

Structural insight into the nuclear transportation mechanism of PPARg by Transportin-1

The spatial and temporal control of protein is essential for normal cellular function. Proteins working in the nucleus have nuclear localization signal (NLS) sequences and are escorted into the nucleus by cognate nuclear transport receptors. A wealth of experimental data about NLS has been accumulated, and nuclear transportation mechanisms are established at the biochemical and structural levels. The peroxisome proliferator-activated receptors (PPARs) are ligand-dependent transcription factors that control various biological responses. We recently reported that the transportation of PPAR{gamma} is mediated by Transportin-1, but PPAR{gamma} lacks a typical NLS sequence recognized by Transportin-1. Moreover, the recognition mechanism remains largely unknown. In this study, we determined the Cryo-EM structure of PPAR{gamma} in complex with Transportin-1 and revealed that Transportin-1 gripped the folded DNA binding domain and the Hinge region of PPAR{gamma}, indicating that PPAR{gamma} recognizes a folded domain with an extended region as a nuclear localization signal, not a canonical unstructured signal sequence, confirmed by the mutation analyses in vitro and in cultured cells. Our study is the first snapshot structure working in nuclear transportation, not in transcription, of PPAR{gamma}.

molecular biology↗