PO.ET04.01 · 实验与分子治疗
通过DNA-LNP递送平台利用癌症激活的基因表达和cGAS-STING激活实现高效肿瘤杀伤
Leveraging cancer-activated gene expression and cGAS-STING activation for efficient tumor killing via a DNA-LNP delivery platform
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:尽管免疫疗法进展迅速,但强效免疫调节剂的临床应用仍受到全身毒性的制约。Earli正在开发一种基于DNA的免疫疗法平台,该平台使用合成的癌症激活启动子(CAP)驱动治疗性载荷在恶性细胞中的选择性表达,同时在正常组织和良性病变中保持沉默。DNA通过脂质纳米颗粒(LNP)全身递送至肿瘤细胞。该平台还通过DNA的免疫刺激特性激活先天免疫。本研究凸显了以下双重机制的结合:1)CAP驱动的强效免疫刺激载荷(如IL-12)表达,与2)cGAS-STING诱导的先天免疫激活。
方法:用包裹以下两种DNA的LNP处理初始或荷瘤小鼠:一种是在癌症激活启动子下编码IL-12的DNA纳米质粒(CAP-IL-12),另一种是含三个终止密码子的匹配构建体(对照DNA)。评估小鼠的肿瘤生长抑制、细胞因子(IL-6、IL-1beta、TNF-alpha)以及肿瘤和血清中的IL-12水平。
结果:包裹对照DNA的LNP提高了STING下游靶点的转录水平,并触发了促炎细胞因子的短暂升高。这种先天免疫反应在多个同系肿瘤模型中导致了肿瘤生长的部分(即非持久性)抑制,并在与PD-1检查点阻断联合使用时显示出增强的疗效。重要的是,在STING敲除小鼠中,对配制的对照DNA的抗肿瘤反应完全丧失。相比之下,用包裹CAP-IL-12 DNA的LNP进行静脉治疗导致了完全且持久的肿瘤消退。令人惊讶的是,尽管在肿瘤中可检测到少量IL-12蛋白,但血清中未测到显著的IL-12水平,这证明了该平台能够将高效治疗剂浓集于肿瘤部位同时避免全身暴露。此外,免疫谱分析显示IL-12和STING均诱导了变化,包括T细胞和NK细胞增殖增加、颗粒酶B上调,以及髓系激活和抗原呈递增强。重要的是,CAP-IL-12的抗肿瘤疗效在STING敲除小鼠的同系肿瘤中得以保留,表明即使在缺乏佐剂性STING激动作用的情况下,癌症特异性载荷表达也足以驱动疗效。我们目前的工作聚焦于通过LNP工程方法调节STING激动作用,以微调其在肿瘤中的活性,从而实现平衡的治疗反应。
结论:总之,我们的发现凸显了Earli的DNA-LNP平台的双功能特性:一种可编程的、肿瘤选择性的基因治疗系统,通过STING激动作用内置先天免疫激活。该方法支持了一类将精准性和强效性融合于单一遗传模态中的新型免疫疗法。
查看英文原文 English abstract
Background: Despite rapid advances in immunotherapy, the clinical use of potent immune-modulating agents remains constrained by systemic toxicities. Earli is developing a DNA-based immunotherapy platform that uses synthetic cancer-activated promoters (CAPs) to drive selective expression of therapeutic payloads in malignant cells, while remaining silent in normal tissues and benign lesions. DNA is delivered systemically to the tumor cells by lipid nanoparticles (LNPs). The platform also engages innate immunity via the immunostimulatory nature of DNA. This study highlights the dual mechanism of combining 1) CAP-driven expression of a potent immunostimulatory payload such as IL-12 with 2) cGAS-STING-induced innate immune activation.
Methods: Naïve or tumor-bearing mice were treated with LNPs encapsulating either a DNA nanoplasmid encoding IL-12 under a cancer-activated promoter (CAP-IL-12) or a matched construct with three stop codons (Control-DNA). Mice were assessed for tumor growth inhibition, cytokines (IL-6, IL-1beta, TNF-alpha), and IL-12 levels in tumor and serum.
Results: LNP encapsulating Control-DNA increased transcript levels of STING downstream targets and triggered a transient rise in pro-inflammatory cytokines. This innate immune response resulted in a partial (i.e. non-durable) inhibition of tumor growth across multiple syngeneic tumor models and showed enhanced efficacy when combined with PD-1 checkpoint blockade. Importantly, in STING knockout mice, the anti-tumor response to the formulated Control-DNA was completely lost. In contrast, IV treatment with an LNP encapsulating CAP-IL-12 DNA led to complete and durable tumor regression. Surprisingly, although modest IL-12 protein was detectable in tumors, there were no substantial IL-12 levels measured in serum, demonstrating the platform's ability to concentrate a highly potent therapeutic at the tumor site while avoiding systemic exposure. Further, immune profiling showed both IL-12 and STING induced changes including increases in T cell and NK cell proliferation, granzyme B upregulation, and enhanced myeloid activation and antigen presentation. Importantly, the anti-tumor efficacy of CAP-IL-12 was retained in syngeneic tumors in STING knockout mice, demonstrating that cancer-specific payload expression is sufficient to drive efficacy even in the absence of adjuvant STING agonism. Our current work focuses on modulating STING agonism through LNP engineering approaches to fine-tune its activity in the tumor for a balanced therapeutic response.
Conclusions: Overall, our findings highlight the dual-function nature of Earli's DNA-LNP platform: a programmable, tumor-selective gene therapy system with built-in innate immune activation through STING agonism. The approach supports a new class of immunotherapies that combine precision and potency in a single genetic modality.
利益披露 Disclosure
M. Reda, None..
E. Bishop, None..
P. Balasubrahmanyam, None..
B. McCarthy, None..
S. Lathwal, None..
R. Chandra, None..
A. Smith, None..
X. Wu, None..
J. Simons, None..
K. Tran, None..
A. Rojc, None..
J. Ramani, None..
S. Shaha, None..
D. Dang, None..
D. Rosen, None..
B. Ananthanarayanan, None..
N. Morisot, None..
D. Suhy, None.