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Iwata, K.

Publications and source records attributed to Iwata, K..

4 recordsLinked to original sources

SV40 Large T antigen inhibits the host serine protease FAM111A through a zinc-dependent, cleavage-avoiding mechanism

SV40 Large T antigen (LT) is essential for viral replication and a key determinant of host range. This host-range function is mediated by the C-terminal domain (LT-C) through binding to the host serine protease FAM111A, but the underlying mechanism has remained unclear. Here, we report the X-ray crystal structure of the FAM111A serine protease domain in complex with LT-C, revealing the structural basis for direct inhibition of FAM111A. LT-C uses a previously unrecognized zinc-binding motif and a P1-like phenylalanine residue to engage the FAM111A active site through a substrate-mimicking mechanism while avoiding proteolytic cleavage and covalent complex formation. Mutations disrupting either feature abolish FAM111A inhibition and impair SV40 propagation in cells. Consistent with this mechanism, SV40 host restriction requires FAM111A protease activity, which must be antagonized by LT-C for productive infection. Together, these findings define a zinc-dependent, cleavage-avoiding mechanism of protease inhibition that highlights an evolutionary arms race between SV40 and host antiviral proteases.

biochemistry↗

Acquisition of Stickland-metabolizing bacteria during infancy prevents Clostridium botulinum infection

Infant botulism is caused by intestinal colonization with Clostridium botulinum, whereas healthy adults are resistant. Although the gut microbiota has long been implicated in protection against C. botulinum, its bacterial basis has remained unknown. Here, we show that specific amino acid-metabolizing bacteria confer resistance to C. botulinum colonization through nutrient competition. Longitudinally collected human infant microbiotas exhibited a transition from susceptibility to resistance after transplantation into germ-free mice. 5-Aminovalerate marked the resistant microbiota, implicating Stickland metabolism. Resistant microbiotas were enriched in Stickland-metabolizing Clostridia, including Clostridioides difficile. Metabolomics revealed overlapping amino acid utilization, and C. difficile suppressed C. botulinum expansion through amino acid competition. These findings demonstrate that acquisition of Stickland-metabolizing Clostridia during infancy prevents C. botulinum infection through competition for shared amino-acid-dependent nutritional niches.

microbiology↗

An Antibiotic-Treated Mouse Model Reveals the Progression of Intestinal Botulism

Intestinal botulism, including infant botulism and adult intestinal toxemia botulism, is a life-threatening disease caused by intestinal infection with Clostridium botulinum (Cb) spores. Infants are particularly susceptible to Cb infection because of their immature gut microbiota, whereas healthy adults are generally protected by gut microbiota-mediated colonization resistance. Thus, immature gut microbiota or gut dysbiosis is thought to permit Cb colonization. However, the mechanisms underlying colonization resistance and disease progression remain poorly characterized. Here, using adult mice with antibiotic-induced dysbiosis, we established a model for studying Cb infection and characterized intestinal colonization, bacterial expansion, BoNT accumulation, and disease progression during intestinal botulism. Intestinal botulism developed in antibiotic-treated mice after intragastric administration of strain 62A spores, whereas untreated adult mice showed no symptoms. In antibiotic-treated mice, Cb expanded over time in fecal samples, followed by accumulation of BoNT/A, which correlated with the progression of botulism symptoms. Cb growth and BoNT/A accumulation occurred mainly in the cecum and colon, but not in the small intestine. Furthermore, this mouse model was applicable to the analysis of intestinal botulism caused by other Cb strains, including 7I03-H, Okra, and Osaka05. Taken together, this mouse model provides a useful platform for elucidating the pathogenesis of intestinal botulism and developing novel therapeutic strategies.

microbiology↗

A multimodal dataset for reconstructing common marmoset body-environment interactions in a 3D digital-twin framework

The common marmoset (Callithrix jacchus) is an important non-human primate model in neuroscience and biomedical research. However, existing 3D resources for this species have mainly focused on brain atlases or keypoint-based pose estimation, and reusable data resources that jointly describe the body surface, fur, articulated structure, and experimental environment remain limited. Here, we present a multimodal dataset designed to reconstruct body- environment interactions of common marmosets in three dimensions. The dataset includes a whole-body surface mesh derived from computed tomography (CT) images, fur representations based on photographic references, a rigged 3D model for pose-driven animation, synchronized behavioral videos from three individuals recorded for approximately 90 hours from eight view-points, 2D and 3D keypoint estimation data, 3D models of the experimental environment constructed from blueprint information, and rendered pseudo-egocentric views generated by integrating pose estimation results with the 3D body and environment models. Technical validation assessed the geometric agreement between the CT-derived mesh and the surface model, the accuracy of 2D and 3D keypoint estimation, the dimensional accuracy of the environment model, and the structural similarity between real and rendered images. This dataset provides a foundation for treating marmoset natural behavior not only as point trajectories but also as a three-dimensional phenomenon involving body shape and its spatial relationship with the environment, thereby enabling applications in behavioral analysis, visualization, synthetic-data generation, and future digital-twin studies.

animal behavior and cognition↗