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Fukunaka, A.

Publications and source records attributed to Fukunaka, A..

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↗

Glucagon dysfunction in the liver induces hyperplasia of PP cells and the production of glucagon and pancreatic polypeptide double-positive cells

Understanding the mechanisms that regulate cellular identity and proliferation is crucial for elucidating cellular functions. Under normal conditions, pancreatic endocrine cells express only a single hormone, and their numbers are tightly regulated. Contrary to this general principle, our study revealed a significant increase in glucagon (GCG) and pancreatic polypeptide (PP) double-positive cells (GCG+ PP+ double-positive cells), along with hyperplasia of both PP and cells in proglucagon-deficient mice. Similarly, systemic glucagon receptor-deficient mice exhibited PP-cell hyperplasia and an increase in GCG+ PP+ double-positive cells, with enhanced PP-cell self-replication observed at 4 weeks and the appearance of GCG+ PP+ double-positive cells at 10 weeks. Liver-specific glucagon receptor-deficient mice induced similar effects, which were linked to hyperaminoacidemia. Elevated glutamine levels were found to promote GCG+ PP+ double-positive cell formation via mTOR signaling, suggesting a molecular mechanism driving pancreatic endocrine cell plasticity. Collectively, these findings indicate that increased plasma amino acid levels caused by impaired glucagon action in the liver promotes the proliferation of cells and PP cells, and disturbs their cellular identity maintenance.

cell biology↗

ZIP13 regulates lipid metabolism by changing intracellular iron and zinc balance

Metabolic diseases are caused by a prolonged energy imbalance, and adipose tissue is known to be the main contributor. We previously reported that ZIP13, an Slc39a transporter whose deficiency causes Ehlers-Danlos syndrome spondylocheirodysplastic type 3 associated with lipoatrophy, inhibits the adipocyte browning pathway by modulating intracellular zinc status. The precise mechanisms of how ZIP13 regulates the homeostasis of adipose tissue remain unclear and therefore, we investigated the role of ZIP13 in mature adipocytes using adipocyte-specific Zip13-deficient mice. We herein demonstrate that these mice show accelerated lipolysis and reduced respiratory exchange ratio. In addition, abundance of iron and zinc balance were altered during differentiation in normal adipocytes, whereas iron distribution was substantially affected in Zip13-deficient adipocytes, which downregulated PDE activity and enhanced {beta}-adrenergic receptor signaling pathways. Importantly, we confirmed that ZIP13 could transport both zinc and iron, using the Xenopus oocyte transport system and in silico structural dynamics simulations, and that the defect in iron distribution perturbs proper lipolysis. Together, these results illustrate that ZIP13 acts as a key regulator for lipolysis in adipocytes via the proper use of metals, and that the ZIP13-iron axis plays an important role in regulation of lipid metabolism.

cell biology↗