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Sasaki, D.

Publications and source records attributed to Sasaki, D..

4 recordsLinked to original sources

Anaerobic Bacteria in the Gut Microbiota Confer Colonization Resistance Against ESBL-Producing Escherichia coli in Mice

Antimicrobial resistance (AMR) is a growing health concern worldwide, and gut microbiota play a significant role in its spread. This study aimed to investigate the impact of antibiotic-induced alterations in gut microbiota on the colonization of extended-spectrum {beta}-lactamase (ESBL)-producing Escherichia coli in a mouse model. C57BL/6J mice were treated with various antibiotics (ampicillin, vancomycin, neomycin, metronidazole, or a cocktail of all four) prior to oral inoculation with ESBL-producing E. coli. 16S rRNA metagenomics analysis revealed significant alterations in gut microbiota composition and diversity following antibiotic treatment. Notably, ampicillin, vancomycin, and the antibiotic cocktail dramatically increased colonization by ESBL-producing E. coli, whereas metronidazole and neomycin treatments had minimal effects. Linear discriminant analysis highlighted that specific anaerobic bacterial groups, namely Bacteroidales, Lachnospiraceae, and Ruminococcaceae, were inversely correlated with colonization by ESBL-producing E. coli. Collectively, these findings suggest that diverse anaerobic bacteria play a crucial role in resistance against AMR bacteria colonization. This study provides insights into the complex interactions between gut microbiota and AMR colonization that could aid in the development of future strategies for risk assessment and eradication of drug-resistant bacteria.

microbiology↗

Delineating JunB's Crucial Function in Mature Th17 Cells through Inducible Targeted Protein Degradation

The AP-1 transcription factor JunB is essential for the differentiation of pathogenic T helper 17 (Th17) cells, which are key mediators of autoimmune diseases such as multiple sclerosis and colitis. While the importance of JunB during Th17 polarization is known, its role in mature Th17 cells--critical therapeutic targets in these diseases--remains unclear. In this study, we employed the dTAG system, a targeted protein degradation approach, to deplete JunB in Th17 cells generated both in vitro and in vivo. During pathogenic Th17 cell differentiation, JunB degradation replicated known effects of JunB deficiency, including reduced expression of interleukin (IL)-17A and the genes encoding ROR{gamma}t (Rorc) and the IL-23 receptor (Il23r). In contrast, in mature pathogenic Th17 cells, JunB degradation downregulated Il23r without affecting IL-17A or Rorc expression. Furthermore, JunB degradation compromised the viability of mature pathogenic Th17 cells. Transcriptomic analyses revealed that JunB regulates distinct gene sets during Th17 polarization compared to mature Th17 cells. The gene Inhba, which encodes activin A, was identified as a JunB target in both stages. Supplementation with activin A restored IL-17A and Rorc expression during pathogenic Th17 cell differentiation. These findings demonstrate that JunB maintains mature pathogenic Th17 cell phenotypes, including IL-23 receptor expression, and supports pathogenic Th17 cell survival. As IL-23 signaling is crucial for sustaining pathogenic Th17 cells, targeting JunB may offer a therapeutic strategy to limit Th17-driven autoimmune inflammation.

immunology↗

Endoplasmic reticulum stress signaling actively contributes to therapy resistance in colorectal cancer

PurposeWe investigated the involvement of endoplasmic reticulum (ER) stress signaling in cancer cell responses to chemo- and radiotherapy, focusing on three main ER stress mediators, the transcription factors ATF4, XBP1 and ATF6. MethodsPublic cancer genome datasets were assessed for alterations in ER stress mediators. Surgically resected colorectal cancer tissues were tested by flow cytometry and used to generate patient-derived organoids. Human cell lines and organoids were characterized under oxaliplatin treatment, alone or combined with pharmacological inhibitors of the three ER stress branches, or X-ray irradiation, for cytotoxicity, activation of ER stress and proteome changes. To monitor ER stress in real time, stable HEK293 kidney epithelial cell lines were established expressing ATF4, XBP1, or ATF6, fused with a fluorophore. ResultsGenomic amplification of ATF6, but not ATF4 or XBP1, was frequent in solid tumor entities like breast, lung and colorectal cancer and significantly associated with reduced disease-free survival. In colorectal cancer, increased ATF6 was associated with genetic instability. Basal ER stress mediator expression was correlated to chemoresistance in colorectal cancer cell lines, and generally high in cancer cells compared to HEK293 cells. With proteomics and live HEK293-based reporter lines, we noted that oxaliplatin treatment induced ER stress in a remarkably different way from the canonical ER stress inducer thapsigargin. Moreover, modulation of ER stress signaling by exogenous expression of the stress mediators positively affects chemoresistance, and pharmacological inhibition of ATF6 sensitizes ER-stressed HCT116 colorectal cancer cells to chemotherapy. Of note, cellular stress responses was strongly dependent on the individual transcription factor: XBP1-driven response appeared multi-functional, involved in ribosome biogenesis stress and associated with oxaliplatin resistance. ATF6-dependent stress signaling was involved in DNA damage repair, and was essential for radioresistance. Moreover, chemoresistance in HCT116 cancer cells was impaired by pharmacological ATF6 inhibition. ConclusionActivation of the ER stress signaling may be critically involved in acquired chemo- and radioresistance. Due to their apparent cytoprotective roles, ATF6 and XBP1 could be attractive predictive biomarkers and putative therapeutic targets. SUMMARYTo address their roles in the clinical context, genomic alterations of ATF4, XBP1 and/or ATF6 in human solid tumors were assessed with respect to prognosis and genomic instability. Moreover, surgically resected CRC patient tissues were tested for expression of ER stress markers by flow cytometry and associated with clinical characteristics. In addition, a panel of human cell lines and patient-derived colon organoids were characterized under therapeutic conditions for expression and activation of ER stress proteins, and resulting cytotoxicity was determined. To monitor and modulate ER stress activation in live cells with subcellular resolution, stable reporter cell lines expressing ATF4, sXBP1 or ATF6 proteins fused with a fluorophore were established. These lines were tested for gene or protein expression and cytotoxicity assays to analyze how activation or inhibition of ER stress proteins affects the cellular responses to oxaliplatin treatment or X-ray irradiation. Finally, mass spectrometric proteome analysis was performed to obtain an unbiased readout on the cellular responses to chemotherapy driven by the activation of the ER stress proteins.

cancer biology↗

Plastic vasomotion entrainment

The presence of global synchronization of vasomotion induced by oscillating visual stimuli was identified in the mouse brain. Endogenous autofluorescence was used and the vessel "shadow" was quantified to evaluate the magnitude of the frequency-locked vasomotion. This method allows vasomotion to be easily quantified in non-transgenic wild-type mice using either the wide-field macro-zoom microscopy or the deep-brain fiber photometry methods. Vertical stripes horizontally oscillating at a low temporal frequency (0.25 Hz) were presented to the awake mouse and oscillatory vasomotion locked to the temporal frequency of the visual stimulation was induced not only in the primary visual cortex but across a wide surface area of the cortex and the cerebellum. The visually induced vasomotion adapted to a wide range of stimulation parameters. Repeated trials of the visual stimulus presentations resulted in the entrainment of the amplitude of the vasomotion. Horizontally oscillating visual stimulus is known to induce horizontal optokinetic response (HOKR). The amplitude of the eye movement is known to increase with repeated training sessions and the flocculus region of the cerebellum is known to be essential for this learning to occur. Here, we show a strong correlation between the average HOKR performance gain and the vasomotion entrainment magnitude in the cerebellar flocculus. Therefore, the plasticity of vasomotion and neuronal circuits appeared to occur in parallel. Efficient energy delivery by the entrained vasomotion may contribute to meeting the energy demand for increased coordinated neuronal activity and the subsequent neuronal circuit reorganization.

neuroscience↗