下一代肿瘤不可知靶点即将出现
Next-generation tumor-agnostic targets on the horizon.
肿瘤不可知药物开发将肿瘤学重新聚焦于共享的分子依赖性而非组织来源,从而能够针对跨肿瘤的罕见可操作驱动因素进行高效开发。
英文原题:Chimeric Antigen Receptor-Engineered Cell Membrane-Coated Nanoparticles Promote Dual-Targeted mRNA-Based Cancer Gene Therapy.
Chimeric Antigen Receptor-Engineered Cell Membrane-Coated Nanoparticles Promote Dual-Targeted mRNA-Based Cancer Gene Therapy.
我们的数据表明,CARM@LNP 是基于 mRNA 的基因治疗的一种可行选择。
使用 mRNA 的基因治疗促进了癌症治疗的进展。然而,其应用受到有限的肿瘤靶向递送方法的阻碍,导致脱靶效应和安全性问题。嵌合抗原受体 (CAR) 分子使 T 细胞能够以主要组织相容性复合体非限制性方式识别特定抗原。CAR 方法提供了一种“即用型”解决方案,为细胞膜引入额外的靶向功能。具有同型肿瘤靶向特性的癌细胞膜包被纳米颗粒为基因工程和膜提取提供了易于获取的平台。在此,我们展示了一种受 CAR 启发的癌细胞膜包被平台,通过双肿瘤靶向机制递送 mRNA 制剂。简化的人表皮生长因子受体 2 (HER2) 特异性 CAR 分子(包含胞外 HER2 结合结构域、铰链和跨膜结构域)被工程化到癌细胞膜上,以建立 CAR-CT26 细胞。随后将提取的 CAR-CT26 膜 (CARM) 包被到脂质纳米颗粒 (LNP)-mRNA 表面,形成 CARM@LNP-mRNA 复合物。在体外,CARM 包被的纳米颗粒对过表达靶 HER2 抗原的 CT26 细胞表现出增强的 mRNA 转染效率。与观察到的 CT26 细胞膜包被版本相比,全身给予 CARM@LNP-mRNA 制剂在 HER2+ CT26 皮下肿瘤和腹腔转移模型中产生了更强的肿瘤靶向能力和肿瘤抑制作用。我们的数据表明,CARM@LNP 是基于 mRNA 的基因治疗的可行选择。这些结果为全身给予 CARM@LNP-mRNA 作为一种有前景的肿瘤靶向治疗策略提供了证据。
Gene therapy using mRNA has facilitated progress in cancer therapy. However, its application is hindered by a limited tumor-targeted delivery approach, leading to off-target effects and safety concerns. Chimeric antigen receptor (CAR) molecules enable T cells to recognize specific antigens in a major histocompatibility complex-unrestricted manner. CAR approaches provide an "off-the-shelf" solution for introducing additional targeting functionality to a cell membrane. Cancer cell membrane-coated nanoparticles with homotypic tumor-targeted properties provide a readily accessible platform for gene engineering and membrane extraction. Herein, we demonstrate a CAR-inspired cancer cell membrane-coated platform for delivering an mRNA formulation through a dual tumor-targeted mechanism. The simplified human epidermal growth factor receptor 2 (HER2)-specific CAR molecule (comprising an extracellular HER2-binding domain, a hinge, and a transmembrane domain) was engineered on the cell membrane of cancer cells to establish CAR-CT26 cells. The extracted CAR-CT26 membrane (CARM) was subsequently coated onto the lipid nanoparticle (LNP)-mRNA surface to form a CARM@LNP-mRNA complex. In vitro , the CARM-coated nanoparticles exhibited enhanced mRNA transfection efficiency toward CT26 cells overexpressing target HER2 antigens. Systemic administration of the CARM@LNP-mRNA formulation resulted in stronger tumor-targeting ability and tumor suppression in HER2+ CT26 subcutaneous tumors and peritoneal cavity metastasis models than that observed with the CT26 cell membrane-coated version. Our data suggest that CARM@LNP is a feasible choice for mRNA-based gene therapy. These results provide evidence for the systemic administration of CARM@LNP-mRNA as a promising tumor-targeted therapeutic strategy.
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