PO.ET02.05 · 实验与分子治疗
抗体包封药物:用于多种癌症靶向治疗的Tr-ACT2
Antibody encapsulated drug: Tr-ACT2 for targeted treatments of various cancers
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摘要 Abstract
中文摘要
目的:HER2在15%-20%的乳腺癌及某些其他癌症中过表达,过去20年间HER2靶向疗法的开发彻底改变了癌症治疗格局。曲妥珠单抗(Trastuzumab,Tr)在治疗HER2+乳腺癌和晚期胃癌方面已展现出疗效。近期,基于Tr的抗体药物偶联物(ADC)Kadcyla和Enhertu通过连接子将靶向抗体与细胞毒性药物结合,成为抗HER2疗法的一个新类别。然而,ADC方法面临着巨大挑战,如体内稳定性差、生产工艺复杂、抗肿瘤有效载荷选择有限以及有效载荷释放不理想。因此,迫切需要更智能、更高效的设计。
方法:我们拥有专利的单蛋白包封(single protein encapsulation,SPE)平台,能够用单个蛋白(白蛋白或球蛋白)包封小分子药物,无需人工纳米颗粒,也无需对药物和蛋白进行化学修饰,该平台已成功开发出2个药物产品:正在进行人体临床试验的SPEDOX-6(NCT0764018)和基于白蛋白、处于IND申报支持研究阶段的SPESN38-8(IND编号:164346)。这促使我们利用抗体(如Tr)来包封细胞毒性有效载荷放线菌素D(actinomycin D,ACT,一种RNA聚合酶抑制剂),从而形成抗体包封药物(antibody encapsulated drugs,AED)。我们开发了Tr-ACT2作为首创(first-in-class)的AED药物,其特点是每个Tr分子在无连接子的情况下包封两个ACT分子。我们通过紫外光谱、荧光、膜透析、粒径分布和分子对接对Tr-ACT2进行了充分表征。并评估了Tr-ACT2针对多种HER2+和HER2-癌症的体外和体内抗癌疗效。
结果:对Tr-ACT2进行了如下研究。评估了Tr-ACT2对乳腺癌(HER2+:SKBR3、JIMT1;HER2-:BT549、MDA-MB-231)和A549(NSCLC,HER2-)的体外细胞毒性,结果显示其可导致细胞活力呈时间依赖性的显著降低、诱导凋亡以及减少Akt激活。Tr-ACT2的细胞毒活性似乎与HER2表达水平无关。Tr-ACT2的内化研究表明,Tr-ACT2的早期内化依赖于HER2,但其晚期内化速率不受HER2表达水平的限制,证实Tr-ACT2能够有效内化进入HER2+和HER2-癌细胞。使用A549小鼠模型评估了1 mg/kg剂量的Tr-ACT2与50 mg/kg剂量的伊立替康(irinotecan)的体内抗癌疗效,结果显示Tr-ACT2在抑制A549生长方面显著优于伊立替康。
结论:我们开发了首创的AED纳米复合物Tr-ACT2,作为一种强效抗癌药物,证明了SPE技术可应用于抗体以包封小分子药物而无需共价偶联,标志着基于抗体的治疗学取得了重大进展。
查看英文原文 English abstract
Purpose: HER2 is overexpressed in 15-20% of breast cancers and some other cancers, and the development of HER2-targeted therapies has revolutionized cancer treatment in past 20 years. Trastuzumab (Tr) has demonstrated efficacy in treatment of HER2+ breast cancer and advanced gastric cancer. Recently, Tr-based antibody drug conjugates (ADCs), Kadecyla and Enhertu, have emerged as a new class of anti-HER2 therapies by combining targeted antibodies with cytotoxic agents via linkers. However, ADC approach faces great challenges, such as in vivo instability, manufacturing processes, limited availability of antitumor payloads and suboptimal payload release. Therefore, smarter and more efficient designs are urgently needed.
Methods: Our patented single protein encapsulation (SPE) platform, allowing encapsulation of small-molecule drugs by a single protein (albumins or globulins) without artificial nanoparticles and chemical modifications to drugs and proteins, has achieved great success in development of 2 drug products, SPEDOX-6 under human clinical trial (NCT0764018) and SPESN38-8 (IND #: 164346) under IND-enabling study based on albumin, which have prompted us to utilize antibody, such as Tr to encapsulate cytotoxic payload, actinomycin D (ACT, RNA polymerase inhibitor), forming antibody encapsulated drugs (AEDs). We developed Tr-ACT2 as a first-in-class AED drug, featuring each Tr molecule to encapsulate two ACT molecules without linkers. Tr-ACT2 was well characterized by UV, fluorescence, membrane dialysis, particle size distribution and molecular docking. In vitro and in vivo anticancer efficacy of Tr-ACT2 against various HER2+ & HER2- cancers were evaluated.
Results: Tr-ACT2 has been investigated in following. In vitro cytotoxicity of Tr-ACT2 against breast cancers, HER2+ (SKBR3, JIMT1) and HER2- (BT549, MDA-MB-231) and A549 (NSCLC, HER2-) was evaluated, leading to a time-dependent and significant reduction in cell viability, induction of apoptosis and reduction of Akt activation. Tr-ACT2's cytotoxic activity appeared to be independent of HER2 expression levels. The internalization study on Tr-ACT2 demonstrated that early-stage internalization of Tr-ACT2 is HER2 dependent, but the rate of late-stage internalization of Tr-ACT2 is not limited by HER2 expression level, confirming that Tr-ACT2 could be effectively internalized into both HER2+ and HER2- cancer cells. In vivo anticancer efficacy of Tr-ACT2 at 1 mg/kg vs irinotecan at 50 mg/kg using A549 mouse model has been evaluated, showing that Tr-ACT2 was significantly more effective in suppressing growth of A549 than irinotecan.
Conclusions: We have developed the first-in-class AED nanocomplex, Tr-ACT2, as a potent anticancer agent, demonstrating that the SPE technology can be applied to antibody for encapsulating small-molecule drugs without covalent conjugation and marking a significant advancement in antibody-based therapeutics.
利益披露 Disclosure
C. Yu,
Sunstate Biosciences, LLC Employment, Patent.
L. Li,
Cedars Sinai Medical Center Employment.