본문으로 건너뛰기
← 뒤로

Cuproptosis and Disulfidptosis Converge to Empower PD-L1 Checkpoint Therapy via Cadict-Induced PD-L1 Translation.

1/5 보강
Advanced science (Weinheim, Baden-Wurttemberg, Germany) 📖 저널 OA 90.1% 2023: 1/1 OA 2024: 12/12 OA 2025: 148/154 OA 2026: 265/306 OA 2023~2026 2026 p. e15367 OA
Retraction 확인
출처

Huang S, Song S, Zhang X, Gao J, Pu R, Dai J

📝 환자 설명용 한 줄

Immune checkpoint blockade (ICB) has emerged as a cornerstone of cancer therapy, yet its effectiveness remains restricted in PD-L1-low malignancies due to insufficient target expression.

이 논문을 인용하기

↓ .bib ↓ .ris
APA Huang S, Song S, et al. (2026). Cuproptosis and Disulfidptosis Converge to Empower PD-L1 Checkpoint Therapy via Cadict-Induced PD-L1 Translation.. Advanced science (Weinheim, Baden-Wurttemberg, Germany), e15367. https://doi.org/10.1002/advs.202515367
MLA Huang S, et al.. "Cuproptosis and Disulfidptosis Converge to Empower PD-L1 Checkpoint Therapy via Cadict-Induced PD-L1 Translation.." Advanced science (Weinheim, Baden-Wurttemberg, Germany), 2026, pp. e15367.
PMID 41722054 ↗

Abstract

Immune checkpoint blockade (ICB) has emerged as a cornerstone of cancer therapy, yet its effectiveness remains restricted in PD-L1-low malignancies due to insufficient target expression. We herein develop the cuproptosis and disulfidptosis co-delivery targeted (Cadict) nanodrug, an epidermal growth factor receptor (EGFR)-targeted nanoplatform designed to co-induce cuproptosis and disulfidptosis, thereby synergistically augmenting tumor cytotoxicity and sensitizing cancers to anti-PD-L1 therapy. Cadict exploits copper-sulfur (Cu-S) coordination chemistry to co-deliver copper ions and cystine, while integrating glucose oxidase (GOx) to create a hypoglycemic milieu essential for disulfidptosis execution. This dual cytotoxic mechanism not only triggers immunogenic cell death-like phenotype but also unexpectedly activates the integrated stress response (ISR), promoting PD-L1 upregulation through Eif5b-dependent translation. The resulting synergy between redox-driven cytotoxicity and immune modulation potentiates anti-PD-L1 efficacy, leading to robust tumor regression and durable immunological memory. Our work presents a seminal strategy that leverages tumor redox vulnerabilities to advance cancer immunotherapy, providing a new paradigm for overcoming ICB resistance via targeted tumor sensitization.

🏷️ 키워드 / MeSH 📖 같은 키워드 OA만

같은 제1저자의 인용 많은 논문 (5)

🏷️ 같은 키워드 · 무료전문 — 이 논문 MeSH/keyword 기반

🔓 OA PDF 열기