PO.ET02.04 · 实验与分子治疗
一种首创的光响应型EGFR-ADC在临床前模型中驱动ROS介导的、能量依赖性的肿瘤根除
A first-in-class photo-responsive EGFR-ADC drives ROS-mediated, energy-dependent tumor eradication in preclinical models
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
光激活抗体偶联药物(ADC)代表了一类新兴的精准治疗药物,能够实现对细胞毒性的空间和时间控制。通过将载荷激活限制在被照射的肿瘤部位,该模式可增强局部效力,同时限制全身毒性。我们开发了Cetuximab-I21-2,这是一种新一代靶向EGFR的ADC,纳入了一种源自Heloporfin的光敏剂,经工程改造具有高单线态氧产率、血清稳定性以及在暴露于约650 nm红光时的快速光化学激活能力。该架构将受体介导的肿瘤定位与外部可编程激活相结合,实现了精确的、按需的细胞毒性。
体外研究在EGFR高、中、低表达的肿瘤细胞系中开展,包括A431、HCC827、Huh7、NCI-N87和MIA-PaCa-2。Cetuximab-I21-2在浓度高达每毫升数微克时表现出极小的暗毒性,证实载荷在无光照的情况下保持无活性。经照射后,该ADC产生了强效的、能量依赖性的细胞毒性,与单线态氧驱动的膜损伤和线粒体功能障碍一致。在5 J/cm²下,IC50值在A431中为0.05 µg/mL,在HCC827中为0.14 µg/mL,而在EGFR低表达细胞中效力大幅降低,证明了抗原依赖性递送和光照触发的激活。荧光ROS探针显示,照射后数分钟内细胞内单线态氧和继发性活性氧立即爆发,伴随线粒体膜电位和质膜完整性的快速丧失,证实了靶向-激活双重机制。
体内抗肿瘤活性在荷A431异种移植的B-NDG小鼠中评价,小鼠接受单次35.3 mg/kg静脉给药,随后进行100或200 J的局部照射。Cetuximab-I21-2产生了明显的、能量依赖性的肿瘤抑制,在200 J时达到22.2%的抑制率。组织病理学显示局灶性坏死和光动力血管破坏,与ROS介导的组织损伤一致。接受治疗的动物维持了稳定的临床状态,短暂的(<10%)体重下降在无支持治疗的情况下自发缓解,未见全身毒性证据。
总之,这些发现表明,Cetuximab-I21-2通过整合EGFR靶向递送、载荷稳定性和外部控制的光化学激活,提供了强效、选择性的肿瘤消融。这一首创的光响应型ADC平台提供了一种可编程的治疗策略,可能改善治疗指数、实现节省剂量的治疗,并拓展针对EGFR表达实体瘤的精准肿瘤学方法。
查看英文原文 English abstract
Light-activated antibody-drug conjugates (ADCs) represent an emerging class of precision therapeutics that enable spatial and temporal control of cytotoxicity. By restricting payload activation to illuminated tumor sites, this modality can enhance local potency while limiting systemic toxicity. We developed Cetuximab-I21-2, a next-generation EGFR-targeted ADC incorporating a Heloporfin-derived photosensitizer engineered for high singlet-oxygen yield, serum stability, and rapid photochemical activation upon exposure to red light near 650 nm. This architecture integrates receptor-mediated tumor localization with externally programmable activation, enabling precise, on-demand cytotoxicity.
In vitro studies were conducted across tumor cell lines with high, intermediate, and low EGFR expression, including A431, HCC827, Huh7, NCI-N87, and MIA-PaCa-2. Cetuximab-I21-2 exhibited minimal dark toxicity at concentrations up to several micrograms per milliliter, confirming that the payload remains inactive without illumination. Upon irradiation, the ADC produced potent, energy-dependent cytotoxicity consistent with singlet-oxygen-driven membrane injury and mitochondrial dysfunction. IC50 values were 0.05 µg/mL in A431 and 0.14 µg/mL in HCC827 at 5 J/cm², with substantially reduced potency in EGFR-low cells, demonstrating both antigen-dependent delivery and illumination-triggered activation. Fluorescent ROS probes showed an immediate burst of intracellular singlet oxygen and secondary reactive oxygen species within minutes of irradiation, accompanied by rapid loss of mitochondrial membrane potential and plasma membrane integrity, confirming the dual targeting-activation mechanism.
In vivo antitumor activity was evaluated in A431 xenograft-bearing B-NDG mice treated with a single 35.3 mg/kg intravenous dose followed by localized irradiation at 100 or 200 J. Cetuximab-I21-2 produced distinct, energy-dependent tumor suppression, achieving 22.2% inhibition at 200 J. Histopathology revealed focal necrosis and photodynamic vascular disruption, consistent with ROS-mediated tissue injury. Treated animals maintained stable clinical condition, and transient (<10%) weight loss resolved spontaneously without supportive care, with no evidence of systemic toxicity.
Collectively, these findings demonstrate that Cetuximab-I21-2 provides potent, selective tumor ablation through the integration of EGFR-targeted delivery, payload stability, and externally controlled photochemical activation. This first-in-class photo-responsive ADC platform offers a programmable therapeutic strategy that may improve therapeutic index, enable dose-sparing treatment, and expand precision oncology approaches for EGFR-expressing solid tumors.
利益披露 Disclosure
W. Shang, None..
H. Shang, None..
J. Cai, None..
V. Qin, None..
L. Chen, None..
X. Zhang, None.