PO.CL08.01 · 临床研究

Triad-SL:一种结合两种不同DNA损伤反应通路抑制剂与粒子放疗的新型合成致死范式

Triad-SL: A new synthetic lethality paradigm combining two distinct DNA damage response pathway inhibitors and particle radiotherapy

海报缩略图:Triad-SL:一种结合两种不同DNA损伤反应通路抑制剂与粒子放疗的新型合成致死范式
编号 6600 展板 1 时间 4/21 02:00–05:00 区域 Section 46 主讲 Neele Sophie Haxel, BS;MS
分会场 Radiation and Photodynamic Therapy Response Modifiers
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作者与单位 Authors & Affiliations

Neele Haxel, Ivana Dokic, Mahmoud Moustafa, Carmen Klein, Juergen Debus, Amir Abdollahi

Translational Radiation Oncology, National Center for Tumor Diseases (NCT), Heidelberg University Hospital (UKHD) and German Cancer Research Center (DKFZ), Heidelberg, Germany

摘要 Abstract

中文摘要
当前癌症治疗中的合成致死(SL)策略利用肿瘤特异性的DNA损伤反应(DDR)缺陷——例如BRCA1/2突变导致的同源重组缺陷(HRD)——通过抑制备用修复通路(最著名的是使用PARP抑制剂)来选择性地根除恶性细胞。然而,这些脆弱性仅出现在一小部分患者中,因为许多肿瘤表现出复杂或嵌合的突变谱,仅部分类似于经典的BRCA样特征(BRCAness)。为克服这一局限,我们提出可以通过使用高精度粒子放疗(RT)诱导空间和时间可控的DNA损伤,并结合对不同DDR通路的双重靶向,来实现工程化合成致死。为此,我们系统评估了RT与靶向ATM、ATR、DNA-PK和PARP的强效小分子抑制剂组合矩阵的效应,将Triad-SL范式确立为下一代癌症治疗的框架。通过滴定实验确定单药和双药单独使用时引起最小或无毒性的浓度,以确保有效的细胞杀伤仅在RT和协同双重DDR抑制存在时发生。有趣的是,我们发现常规活力检测低估了DDR依赖性效应,尤其是在与RT联合时。当使用克隆形成存活检测评估时,相同的Triad-SL组合表现出高达1000倍的更高敏感性。在各自的通路类别内,DDR抑制剂展现出可比的疗效,并分别与光子或碳离子照射有效协同。值得注意的是,PARP和ATM抑制剂的联合治疗产生了强烈的、细胞系特异性的细胞毒性,即使在无照射的情况下也显著降低存活分数,表明具有联合细胞毒性潜力。在所有测试的组合中,ATM、DNA-PK和PARP抑制剂产生了最有前景的结果,在多种DDR抑制剂配对中产生强烈的放射增敏效应。通过利用具有不同生物分布、药代动力学和靶点选择性的DDR抑制剂,可能在降低剂量下实现强效协同效应——尤其是在与聚焦照射联合时。总之,整合选择性DDR抑制与定制放射质量的多模式Triad-SL策略,代表了一种增强治疗疗效并拓宽合成致死在癌症治疗中适用性的有前景方法。
查看英文原文 English abstract
Current synthetic lethality (SL) strategies in cancer therapy utilize tumor-specific deficiencies in the DNA damage response (DDR)-such as homologous recombination deficiency (HRD) from BRCA1/2 mutations-to selectively eradicate malignant cells by inhibiting backup repair pathways, most notably using PARP inhibitors. However, these vulnerabilities occur in only a small subset of patients, as many tumors exhibit complex or mosaic mutational profiles that only partially resemble classical BRCAness. To overcome this limitation, we propose that engineered synthetic lethality can be achieved by inducing spatially and temporally controlled DNA damage with high-precision particle radiotherapy (RT), combined with dual targeting of distinct DDR pathways. To this end, we systematically evaluated the effect of RT with a combinatorial matrix of potent small-molecule inhibitors targeting ATM, ATR, DNA-PK, and PARP, establishing the Triad-SL paradigm as a framework for next-generation cancer treatment. Single and dual drug concentrations causing minimal or no toxicity when used alone were established by titration experiments to ensure effective cell killing occurs only in the presence of RT and synergistic dual DDR inhibition. Interestingly, we found that conventional viability assays underestimated DDR-dependent effects, especially when combined with RT. When assessed using clonogenic survival assays, the same Triad-SL combinations exhibited up to 1000-fold greater sensitivity. Within their respective pathway classes, DDR inhibitors demonstrated comparable efficacy and synergized effectively with photon- or carbon ion irradiation, respectively. Of note, combined treatment with PARP- and ATM inhibitors produced strong, cell line-specific cytotoxicity, substantially reducing survival fractions even in the absence of irradiation, indicating combined cytotoxic potential. Among all combinations tested, ATM, DNA-PK, and PARP inhibitors yielded the most promising outcomes, producing strong radiosensitizing effects across multiple DDR inhibitor pairings. By leveraging DDR inhibitors with differing biodistribution, pharmacokinetics, and target selectivity, potent synergistic effects may be achieved at reduced doses-particularly when combined with focused irradiation. In conclusion, the multimodal Triad-SL strategy, integrating selective DDR inhibition with tailored radiation quality, represents a promising approach to enhance therapeutic efficacy and broaden the applicability of synthetic lethality in cancer treatment.
利益披露 Disclosure
N. Haxel, None.. I. Dokic, None.. M. Moustafa, None.. C. Klein, None.. J. Debus, None.. A. Abdollahi, None.

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