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Kasai, Y.

Publications and source records attributed to Kasai, Y..

3 recordsLinked to original sources

Discovery of a Selective Inhibitor of ZIP14 with Therapeutic Potential for Cancer-associated Cachexia

ZIP14/SLC39A14, a membrane-bound metal transporter, is essential for systemic metal homeostasis and has been implicated in inflammatory and metabolic disorders, including cancer-associated cachexia. Despite its biological and therapeutic significance, no selective inhibitors have been identified. Here, we identify 1-phenyl-8-(2-phenylethyl)-1,3,8-triazaspiro[4.5]decan-4-one (PPTD) as the first selective small-molecule inhibitor of ZIP14. PPTD efficiently blocks ZIP14-mediated uptake of zinc, iron, manganese, and cadmium, while sparing the closely related transporter ZIP8/SLC39A8. Mechanistically, PPTD binds specifically to a pocket formed at the dimer interface of ZIP14, as revealed by AlphaFold3 structural prediction, ligand-interaction profiling, structure-activity analyses, and site-directed mutagenesis, providing direct evidence for a targeted inhibition mechanism. ZIP14-driven metal influx promotes reactive oxygen species and lipid peroxidation, leading to cytotoxicity, which PPTD effectively reverses. In vivo, PPTD ameliorates major features of cancer cachexia in mice, including weight loss, reduced survival, muscle wasting, impaired locomotor activity, and disease progression. PPTD thus provides both a chemical probe to dissect ZIP14 function and a potential therapeutic candidate for cancer cachexia, establishing a foundation for the development of therapies targeting ZIP14-mediated metal dysregulation.

biochemistry↗

Cellulose Rich Food Leads Anxiety through Gut-Brain Axis-mediated Amygdalar Dopamine Upregulation.

It is widely said that healthy intestinal environment takes essential role for better mental condition. One of the known dietary nutrients which maintains intestinal environment is the dietary fiber. Recent study showed that maintaining intestinal environment by dietary fiber succeeded to alleviate the psychiatric disorder symptoms in animals. However, such effects have only been reported with soluble fiber, which is highly fermentable and promotes short-chain fatty acid (SCFA) production, and not with insoluble fiber. Therefore, we aimed to verify whether insoluble fiber, such as cellulose, can alter emotion via changes in the gut. We divided mice into two groups and fed either standard diet (SD, contains both insoluble and soluble dietary fibers) or cellulose rich diet (CRD, contains cellulose alone as the dietary fibers). The CRD-fed mice displayed 1) the increased the anxiety-like behavior accompanied with 2) the modified amygdalar dopamine signaling. We further found the decreased intestinal SCFA levels along with intestinal permeability, dysmotility and hypersensitivity in CRD-fed mice. These behavioral and physiological effect of CRD has been completely abolished in vagotomized mice, indicating the direct link between intestinal environment exacerbation to the emotion through gut-brain axis. Additionally, the opioid antagonist abolished the CRD-induced anxiety, suggesting the involvement of opioidergic system to the anxiety which may evoked by increased amygdalar dopamine levels. Altogether, our findings suggest that consumption of cellulose alone as the dietary fiber may evoke intestinal abnormalities which fires the vagus nerve then opiodergic system and amygdalar dopamine upregulation, resulting in the enhancement of anxiety. Graphical Abstract: Possible mechanism of CRD-induced anxiety unveiled by current studyOur study clarified that long-consumption of cellulose-rich food (CRD) will lead decrease of SCFAs which may cause the intestinal disability, including decreased motility and increased intestinal permeability as well as upregulation of TRPA1 and SGLT1. These physiological modifications resulted as the intestinal hypersensitivity, which possibly overstimulate the vagal transmission which may activate endogenous opioidergic systems such as enkephalin (Enk) at the nucleus tractus solitarii (NTS). The activation of opioidergic system may suppress the GABAergic neuron in ventral tegmental area (VTA), resulting in the excess release of dopamine and further receptor modification in amygdala (Amyg), which might in the end cause the characteristic anxiety. The figure was created with BioRender.com. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/593082v1_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@1a0c4aborg.highwire.dtl.DTLVardef@1cfefceorg.highwire.dtl.DTLVardef@88cfc0org.highwire.dtl.DTLVardef@1ff5b0a_HPS_FORMAT_FIGEXP M_FIG C_FIG

pharmacology and toxicology↗

IGSF3 is a homophilic cell adhesion molecule that drives lung metastasis of melanoma by promoting adhesion to vascular endothelium

The immunoglobulin superfamily (IgSF) is one of the largest families of cell-surface molecules involved in various cell-cell interactions, including cancer-stromal interactions. In this study, we conducted a comprehensive RT-PCR-based screening for IgSF molecules that promote experimental lung metastasis in mice. By comparing the expression of 325 genes encoding cell-surface IgSF molecules between mouse melanoma B16 cells and its highly metastatic subline, B16F10 cells, we found that expression of the Immunoglobulin superfamily member 3 (Igsf3) was significantly enhanced in B16F10 cells than in B16 cells. Knockdown of Igsf3 in B16F10 cells significantly reduced lung metastasis following intravenous injection into C57BL/6 mice. IGSF3 promoted adhesion of B16F10 cells to vascular endothelial cells and functioned as a homophilic cell adhesion molecule between B16F10 cells and vascular endothelial cells. Notably, the knockdown of IGSF3 in either B16F10 cells or vascular endothelial cells suppressed the transendothelial migration of B16F10 cells. Moreover, IGSF3 knockdown suppressed the extravasation of B16F10 cells into the lungs after intravenous injection. These results suggest that IGSF3 promotes the metastatic potential of B16F10 cells in the lungs by facilitating their adhesion to vascular endothelial cells.

cancer biology↗