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A novel synthetic melanin as a potential anticancer agent that induces apoptosis and cyclin D downregulation through distinct pathways

  • Yoshiyuki Kawamoto
  • , Yui Furuhashi
  • , Silvi Zakiyatul Ilmiyah
  • , Seiji Yamaguchi
  • , Nozomi Nishimura
  • , Riko Iwata
  • , Arisa Imoto
  • , Takashi Murate
  • , Yuhsuke Ohmi
  • , Sofy Permana
  • , Agustina Tri Endharti
  • , Yuki Ueno
  • , Machiko Iida
  • , Ichiro Yajima
  • , Nobutaka Ohgami
  • , Masashi Kato
  • , Kozue Takeda

研究成果: ジャーナルへの寄稿学術論文査読

抄録

Despite extensive development of anticancer agents, there remains a critical need for therapeutics with novel mechanisms of action. This study reports the potent anticancer activity and mechanistic analysis of highly water-soluble dopa-melanin (DM) prepared through a unique synthetic process. DM exhibits distinctive structural and chemical properties that contribute to its exceptional aqueous solubility (≥50 mg/ml) and may underlie its enhanced biological activity. DM reduced cell viability in multiple cancer cell lines. Using HeLa cells as a representative model, DM suppressed cell migration and three-dimensional growth. Fractionation revealed that activity was associated with polymers larger than 30 kDa, suggesting a critical role for high-molecular-weight species. Mechanistic studies showed that DM induced S/G2/M arrest followed by cell death with minimal apoptotic body formation. DM rapidly decreased cyclin D1 and D3 protein and mRNA levels. A pan-caspase inhibitor significantly suppressed DM's inhibitory effect on cell viability but did not prevent cyclin D degradation. Cyclin D degradation was mediated through calcium-dependent calpain activation triggered by endoplasmic reticulum Ca2+ release via IP3 receptors, and inhibition of this pathway attenuated DM's activity. In a mouse syngeneic tumor model, oral administration of DM significantly inhibited tumor growth without apparent toxicity. These results demonstrate that both caspase-dependent apoptosis and a caspase-independent cyclin D degradation pathway contribute to DM-induced cell death. Its high solubility, oral efficacy, and unique mechanism of action make DM a promising candidate for therapeutic development.

本文言語英語
論文番号113065
ジャーナルJournal of Biological Chemistry
302
6
DOI
出版ステータス出版済み - 06-2026
外部発表はい

UN SDG

この成果は、次の持続可能な開発目標に貢献しています

  1. SDG 3 - すべての人に健康と福祉を
    SDG 3 すべての人に健康と福祉を

All Science Journal Classification (ASJC) codes

  • 生化学
  • 分子生物学
  • 細胞生物学

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