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Shibahara, T.

Publications and source records attributed to Shibahara, T..

2 recordsLinked to original sources

Deep learning generates custom-made logistic regression models for explaining how breast cancer subtypes are classified

Differentiating the intrinsic subtypes of breast cancer is crucial for deciding the best treatment strategy. Deep learning can predict the subtypes from genetic information more accurately than conventional statistical methods, but to date, deep learning has not been directly utilized to examine which genes are associated with which subtypes. To clarify the mechanisms embedded in the intrinsic subtypes, we developed an explainable deep learning model called a point-wise linear (PWL) model that generates a custom-made logistic regression for each patient. Logistic regression, which is familiar to both physicians and medical informatics researchers, allows us to analyze the importance of the feature variables, and the PWL model harnesses these practical abilities of logistic regression. In this study, we show that analyzing breast cancer subtypes is clinically beneficial for patients and one of the best ways to validate the capability of the PWL model. First, we trained the PWL model with RNA-seq data to predict PAM50 intrinsic subtypes and applied it to the 41/50 genes of PAM50 through the subtype prediction task. Second, we developed a deep enrichment analysis method to reveal the relationships between the PAM50 subtypes and the copy numbers of breast cancer. Our findings showed that the PWL model utilized genes relevant to the cell cycle-related pathways. These preliminary successes in breast cancer subtype analysis demonstrate the potential of our analysis strategy to clarify the mechanisms underlying breast cancer and improve overall clinical outcomes.

cancer biology

Capsular polysaccharide switching in Streptococcus suis modulates host cell interactions and virulence

Streptococcus suis serotype 2 strains can cause severe infections in both swine and humans. The capsular polysaccharide (CPS) of S. suis defines various serotypes based on its composition and structure. Though serotype switching from serotype 2 has been suggested to occur between S. suis strains, its impact on pathogenicity and virulence remains unknown. Herein, we experimentally generated S. suis serotype-switched mutants from a serotype 2 strain (SS2) that express the serotype 3, 4, 7, 8, 9, or 14 CPS (SS2to3, SS2to4, SS2to7, SS2to8, SS2to9, and SS2to14, respectively). The effects of serotype switching were then investigated with regards to classical properties conferred by presence of the serotype 2 CPS, including adhesion to/invasion of porcine tracheal epithelial cells, resistance to phagocytosis by murine macrophages, killing by murine and porcine whole blood, and dendritic cell-derived pro-inflammatory mediator production. Results demonstrated that these properties on host cell interactions were differentially modulated depending on the switched serotypes. Using a mouse model of systemic infection, SS2to8 was demonstrated to be hyper-virulent, with animals rapidly succumbing to septic shock, whereas SS2to3 and SS2to4 were less virulent than SS2 because of a reduced systemic inflammatory host response. By contrast, switching to serotype 7, 9, or 14 CPSs had little to no effect. Finally, development of clinical signs in a porcine model of infection was only observed following infection with SS2, SS2to7, and SS2to8. Taken together, these findings suggest that serotype switching can differentially modulate S. suis host cell interactions and virulence depending on the CPS type expressed. ImportanceStreptococcus suis serotype 2 is the most frequently type associated with swine and zoonotic infections. While the serotype 2 CPS is required for virulence and pathogenesis, little information is available regarding that of other serotypes and how differences in serotype can directly affect host cell interactions and virulence. Herein, we constructed serotype-switched mutants from a serotype 2 strain and demonstrated that serotype switching can shift and modulate the S. suis host cell interactions and virulence in vivo. Among the serotype-switched mutants, the mutant expressing the serotype 8 CPS, whose composition and structure are identical to that of the human pathogen Streptococcus pneumoniae serotype 19F, was hyper-virulent, whereas mutants expressing the serotype 3 or 4 CPSs had reduced virulence. These results demonstrate that serotype switching can drastically alter S. suis phenotype. Consequently, further importance and attention should be given to the phenomenon of serotype switching and the possible emergence of hyper-virulent isolates.

microbiology