Moro Sean, Omrani Mohammed, Erbek Sule, Jourdan Muriel, Vandekerckhove Catharina I, Nogier Cyril, Vanwonterghem Laetitia, Molina Marie-Carmen, Bernadó Pau, Thureau Aurélien, Coll Jean-Luc, Renaudet Olivier, Le Guével Xavier, Faure Virginie
Institute for Advanced Biosciences University Grenoble Alpes INSERM U1209 CNRS UMR 5309 38000 Grenoble France.
Department of Molecular Chemistry (DCM) University Grenoble Alpes CNRS DCM UMR 5250 F-38000 Grenoble France.
Small Sci. 2024 Dec 16;5(2):2400156. doi: 10.1002/smsc.202400156. eCollection 2025 Feb.
Lung cancer cells resistant to radiotherapy present a significant clinical challenge. Stable telomeric structures, maintained by the TRF2 protein, play a critical role in protecting cells from ionizing radiation. Reduced TRF2 expression increases DNA damage and radiosensitivity. We designed a self-assembling system utilizing ultra-small luminescent gold nanoclusters (AuNCs) with radiosensitizing properties, combined with siRNA targeting TRF2. The system forms ≈100 nm non-spherical structures with AuNCs enriched in the outer layer, exhibiting a 17.6-fold enhancement in red photoluminescence due to aggregation-induced effects. This nanoplatform efficiently penetrates lung cancer cells, reducing TRF2 expression by 50%. Under 5 Gy radiotherapy, cells treated with this system show a 1.5-fold radiosensitivity increase from AuNCs and a 2.3-fold reduction in clonogenic survival due to telomere deprotection. The AuNC-siRNATRF2 system combines enhanced optical properties with biological functionality, offering a promising approach to augment radiotherapy efficacy by disrupting telomeric protective mechanisms in cancer cells.
对放疗具有抗性的肺癌细胞带来了重大的临床挑战。由TRF2蛋白维持的稳定端粒结构在保护细胞免受电离辐射方面起着关键作用。TRF2表达降低会增加DNA损伤和放射敏感性。我们设计了一种自组装系统,该系统利用具有放射增敏特性的超小发光金纳米团簇(AuNCs),并结合靶向TRF2的小干扰RNA(siRNA)。该系统形成约100纳米的非球形结构,AuNCs富集在外层,由于聚集诱导效应,红色光致发光增强了17.6倍。这种纳米平台能有效穿透肺癌细胞,使TRF2表达降低50%。在5 Gy放疗条件下,用该系统处理的细胞因AuNCs而使放射敏感性提高了1.5倍,并且由于端粒去保护作用,克隆形成存活率降低了2.3倍。AuNC-siRNATRF2系统将增强的光学特性与生物学功能相结合,通过破坏癌细胞中的端粒保护机制,为提高放疗疗效提供了一种有前景的方法。