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Miyazawa, H.

Publications and source records attributed to Miyazawa, H..

4 recordsLinked to original sources

Bioinformatic evaluation of the potential oral-gut translocation of periodontal pathogens in patients with colorectal polyps

ObjectiveThis study aimed to characterize the profiles of the oral and gut microbiota of patients with colorectal polyps using 16S rRNA gene sequencing and bioinformatic approaches. BackgroundPrevious studies have shown microbial translocation from the oral cavity to the gut, implying pathogenic impacts on gastroesophageal disease, including colorectal cancer (CRC). However, its details remain unclear. MethodsTwenty patients scheduled for endoscopic colorectal polypectomy were enrolled in this study. Oral samples (saliva and subgingival dental plaque) and intestinal samples (feces and swab of intestinal mucosa) were collected during preoperative and 6-month-postoperative reassessment periods. After sequencing the V3-V4 region of the bacterial 16S rRNA gene, several bioinformatic analyses (bacterial composition, diversity, core microbiome, and shared ASV) were performed on pre- and postoperative samples for each subject. ResultsThe bacterial composition was dominated by Bacteroides, Streptococcus, Fusobacterium, Veillonella, and Prevotella_7 in all four samples. Beta diversity analysis using weighted UniFrac distance distinctly segregated the samples between oral and intestinal environments in the principal coordinate analysis plot. Core microbiome analysis revealed that Streptococcus and Porphyromonas were dominantly shared in intra-oral environments. Additionally, alongside Streptococcus, periodontitis-related bacteria, such as Veillonella, Fusobacterium, Porphyromonas, Prevotella_7, Haemophilus, and Prevotella, were identified as shared genera between oral and intestinal environments. Finally, shared ASV analysis demonstrated that Streptococcus was shared in the oral and intestinal environments of most patients, while periodontal pathogens were shared in some patients. ConclusionsThe core microbiome and shared ASV analyses revealed that several genes are shared between oral and intestinal environments in patients with colorectal polyps, indicating the oral-gut translocation of periodontitis-related bacteria. Further large-scale studies are needed to elucidate their involvement in CRC.

bioinformatics↗

Glycolysis-Wnt signaling axis tunes developmental timing of embryo segmentation

The question of how metabolism impacts development is seeing a renaissance [1, 2]. How metabolism exerts instructive signaling functions is one of the central issues that need to be resolved. We tackled this question in the context of mouse embryonic axis segmentation. Previous studies have shown that changes in central carbon metabolism impact Wnt signaling [3-6] and the period of the segmentation clock [7], which controls the timing of axis segmentation. Here, we reveal that glycolysis tunes the segmentation clock period in an anti-correlated manner: higher glycolytic flux slows down the clock, and vice versa. Transcriptome and gene regulatory network analyses identified Wnt signaling and specifically the transcription factor Tcf7l2, previously associated with increased risk for diabetes [8, 9], as potential mechanisms underlying flux-dependent control of the clock period. Critically, we show that deletion of the Wnt antagonist Dkk1 rescued the slow segmentation clock phenotype caused by increased glycolysis, demonstrating that glycolysis instructs Wnt signaling to control the clock period. In addition, we demonstrate metabolic entrainment of the segmentation clock: periodic changes in the levels of glucose or glycolytic sentinel metabolite fructose 1,6-bisphosphate (FBP) synchronize signaling oscillations. Notably, periodic FBP pulses first entrained Wnt signaling oscillations and subsequently Notch signaling oscillations. We hence conclude that metabolic entrainment has an immediate, specific effect on Wnt signaling. Combined, our work identifies a glycolysis-FBP-Wnt signaling axis that tunes developmental timing, highlighting the instructive signaling role of metabolism in embryonic development.

developmental biology↗

In vivo long-term voltage imaging by genetically encoded voltage indicator reveals spatiotemporal dynamics of spinal cord neuronal populations during development

One of the central questions in neural development is how individual neurons assemble functional networks. To address this, it is essential to elucidate how coordinated activity emerges during development. However, tracking the functional maturation of neuronal populations over time remains challenging, as it requires long-term, non-invasive monitoring of membrane potential dynamics. Here, we developed a voltage imaging approach for zebrafish embryos using genetically encoded voltage indicators (GEVIs), enabling fast, direct and cell-type-specific measurements of membrane potentials from defined neuronal populations in a non-invasive manner. Using this approach, we detected coordinated voltage changes in spinal motor neurons with high spatiotemporal resolution. Depolarization and hyperpolarization events were observed at the population, single-cell, and subcellular levels. Notably, long-term voltage imaging revealed the early emergence and progressive maturation of membrane potential dynamics, characterized by increased firing rate, coupling strength and axonal outgrowth. This optical approach constitutes a significant advancement in the study of neural development, providing a powerful tool for investigating the spatiotemporal dynamics of neuronal populations in vivo.

neuroscience↗

Glycolytic flux-signaling controls mouse embryo mesoderm development

How cellular metabolic state impacts cellular programs is a fundamental, unresolved question. Here we investigated how glycolytic flux impacts embryonic development, using presomitic mesoderm (PSM) patterning as the experimental model. First, we identified fructose 1,6-bisphosphate (FBP) as an in vivo sentinel metabolite that mirrors glycolytic flux within PSM cells of post-implantation mouse embryos. We found that medium-supplementation with FBP, but not with other glycolytic metabolites, such as fructose 6-phosphate and 3-phosphoglycerate, impaired mesoderm segmentation. To genetically manipulate glycolytic flux and FBP levels, we generated a mouse model enabling the conditional overexpression of dominant active, cytoplasmic Pfkfb3 (cytoPfkfb3). Overexpression of cytoPfkfb3 indeed led to increased glycolytic flux/FBP levels and caused an impairment of mesoderm segmentation, paralleled by the downregulation of Wnt-signaling, reminiscent of the effects seen upon FBP-supplementation. To probe for mechanisms underlying glycolytic flux-signaling, we performed subcellular proteome analysis and revealed that cytoPfkfb3 overexpression altered subcellular localization of certain proteins, including glycolytic enzymes, in PSM cells. Specifically, we revealed that FBP supplementation caused depletion of Pfkl and Aldoa from the nuclear-soluble fraction. Combined, we propose that FBP functions as a flux-signaling metabolite connecting glycolysis and PSM patterning, potentially through modulating subcellular protein localization.

developmental biology↗