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Biology subjects

Asada, S.

Publications and source records attributed to Asada, S..

3 recordsLinked to original sources

Disruption of Microhomology-mediated End-joining in Ewing Sarcoma

Ewing sarcoma (EwS) is a group of bone and soft tissue cancers in children and young adults. Since EwS cells have pronounced sensitivity to radiation and chemotherapy-induced DNA damage, the role of the oncoprotein, EWS-FLI1, in DNA repair is likely. Here, we demonstrate that EWS-FLI1 causes a defect in microhomology-mediated end-joining (MMEJ) repair. EWSR1 is a splicing factor that promotes the faithful splicing of the POLQ pre-mRNA, required for the expression of POL{Theta}, a critical protein in the MMEJ pathway. Expression of EWS-FLI1, or loss of EWSR1, causes exon 25 skipping of the POLQ transcript, decreased POL{Theta} expression, impaired MMEJ, and cellular sensitivity to inhibitors of the Fanconi Anemia (FA), NHEJ, or HR pathways, through the mechanism of synthetic lethality. Knockdown of EWS-FLI1 expression restores POL0 mitotic foci and increases MMEJ activity. Inhibitors of the FA, NHEJ, or HR therefore may provide a targeted therapy for patients with EwS. Highlights- Ewing sarcoma tumors have a deficiency in POL{theta} expression and a corresponding loss of MMEJ activity - EWSR1 is a splicing factor that interacts with other splicing factors such as FUBP1 and KHSRP/FUBP2 to accurately splice the POLQ mRNA. - The EWS-FLI1 fusion oncoprotein, or loss of EWSR1, causes a splicing defect, leading to exon25 skipping of the POLQ pre-mRNA and loss of POL{theta} expression - The MMEJ deficiency of EwS cells results in cellular sensitivity to inhibitors of Fanconi Anemia, Homologous Recombination or Non-Homologous End-Joining - Exon 25 skipping of POLQ mRNA is a predictive biomarker for HR inhibitors in human cancers

cancer biology↗

CH-related Mutant ASXL1 Promotes Atherosclerosis in Mice via Dysregulated Innate Immunity

Certain somatic mutations confer a fitness advantage in hematopoietic stem and progenitor cells (HSPCs) over normal HSPCs, resulting in the clonal expansion of mutant blood cells1, otherwise known as clonal haematopoiesis (CH). CH is frequently observed among healthy elderly people and is closely associated with the risk of cardiovascular diseases (CVDs). The most frequently mutated genes of CH include DNMT3A, TET2, and ASXL12. Among them, even though ASXL1 mutations are clinically associated with the highest risk for developing CVDs, little is known whether and how the mutations contribute to CVDs. Here we show accelerated development of atherosclerosis and increased inflammatory monocytes in mice transplanted with the bone marrow cells (BMCs) from the mice expressing mutant ASXL1 (ASXL1-MT) selectively in hematopoietic cells. RNA sequencing analysis of the plaque-macrophages derived from BMCs expressing ASXL1-MT showed more inflammatory signatures than those from control BMCs. Mechanistically, wild-type ASXL1 inhibited innate immune signalling through direct interactions with IRAK1/TRAF6/TAK1 in the cytoplasm, while ASXL1-MT, which only interacted with TAK1, lost this regulatory function, leading to NF-{kappa}B activation. This mechanism is unique and distinct from those of CH with Tet2 or Dnmt3a mutations, where overactivation of the IL-1{beta}/NLRP3 inflammasome plays critical roles3-5. Intriguingly, IRAK1/4 inhibition decreased the number of inflammatory monocytes and attenuated the development of atherosclerosis driven by ASXL1-MT. The present work connects the mutations of an epigenetic factor, ASXL1, with inflammation and CVDs and gives an indication for the prevention of CVDs in CH.

cell biology↗

MECOM promotes leukemia progression and inhibits mast cell differentiation through functional competition with GATA2

MECOM is a nuclear transcription factor essential for the proliferation of hematopoietic stem cells (HSCs) and myeloid leukemia cells. MECOM contains N- and C-terminal zinc finger domains (ZFDs) and binding motifs for the corepressor CtBP to regulate gene expression. Recent studies have shown that germline MECOM variants are associated with thrombocytopenia, radioulnar synostosis, and bone marrow failure, collectively termed MECOM-associated syndromes. Although the mutations are clustered in the C-terminal ZFD, how these mutations affect MECOM function has remained unclear. In addition, the individual genes and pathways regulated by MECOM are less well understood. In this study, we showed that the C-terminal ZFD is a major DNA-binding domain of MECOM and that the disease-associated mutations abolish the DNA-binding ability. We also found that MECOM functionally antagonizes GATA2 through the C-terminal ZFD-mediated DNA binding and CtBP interaction, thereby promoting myeloid leukemogenesis while inhibiting mast cell differentiation. Furthermore, we generated mutant MECOM knockin mice harboring a C-terminal ZFD mutation that recapitulate several features of MECOM-associated syndromes, including HSC and B-cell reduction. Our study demonstrates that C-terminal ZFD mutations are loss-of-function mutations with reduced DNA-binding ability, reveals the critical role of MECOM in inhibiting GATA2, and provides a novel mouse model for MECOM-associated syndromes.

molecular biology↗