PO.CL05.13 · 临床研究
自佐剂α-螺旋多肽同时递送新抗原mRNA并激活树突状细胞以根除肿瘤
Self-adjuvanting alpha-helical polypeptide simultaneously delivers neoantigen mRNAs and activates dendritic cells to eradicate tumors
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
基于mRNA的疫苗在COVID-19时代取得了巨大成功,但其在治疗癌症(尤其是免疫原性差的实体瘤)方面的治疗潜力仍未充分实现。本文报道了一类自佐剂α-螺旋多肽,能够显著改善肿瘤新抗原编码mRNA的抗肿瘤疗效。抗原编码mRNA的理想载体不仅应促进抗原在DC中的表达,还应激活DC并诱导对所表达抗原的有效加工和呈递。本文报道了阳离子α-螺旋多肽作为抗原编码mRNA的自佐剂递送载体的开发。
α-螺旋多肽通过短暂的膜破坏促进mRNA向树突状细胞(DC)的胞内递送,同时通过调节NF-κB和IRF通路激活DC,并提高DC加工和呈递mRNA编码新抗原的能力。该阳离子多肽凝聚并稳定mRNA,通过其细胞穿透特性促进内化,并通过上调NF-κB、IRF和STING通路增加DC上活化标志物(CD86、MHCII、CD40和CCR7)的表达。分子对接和模拟证实了mRNA与α-螺旋多肽之间的稳定复合。
皮下给药后,多聚复合物迁移至引流淋巴结,在此转染并激活DC,在体内引发强烈的新抗原特异性细胞毒性T淋巴细胞(CTL)应答。与mRNA-SM102脂质纳米颗粒或Lipofectamine 3000脂质复合物相比,该多聚复合物增强了DC的抗原表达和呈递,从而在体外和体内显著改善了抗原特异性CD8⁺ T细胞的启动。该多聚复合物在E.G7-OVA淋巴瘤和4T1三阴性乳腺癌(TNBC)中分别实现了83.3%和33.3%的无瘤生存率,远超传统制剂0%的无瘤生存率。由α-螺旋L-PPOB50-G和编码4T1 TNBC新抗原的mRNA组成的多聚复合物引发了强效的新抗原特异性CD8⁺ T细胞应答,同时在主要器官中未显示可检测到的毒性。
该多聚复合物还通过在肿瘤中富集DC、M1表型CD86⁺巨噬细胞和CD8⁺ T细胞,重编程免疫抑制性肿瘤微环境。我们还观察到,多聚复合物治疗后,肿瘤内CD8⁺ T细胞上的PD-1表达和4T1肿瘤细胞上的PD-L1表达增加,并证明了多聚复合物疫苗与抗PD-1治疗之间的协同效应。我们的多聚复合物系统为开发稳健的基于mRNA的癌症疫苗提供了一种简便且可推广的方法。
查看英文原文 English abstract
mRNA-based vaccines have demonstrated tremendous success during the era of COVID-19, but their therapeutic potential for treating cancer, especially poorly immunogenic solid tumors, remains under-achieved. Herein we report a class of self-adjuvanting alpha-helical polypeptides that can markedly improve the antitumor efficacy of tumor neoantigen-encoding mRNAs. Ideal carriers for antigen-encoding mRNAs should not only facilitate antigen expression in DCs but also activate DCs and induce effective processing and presentation of expressed antigens. Herein we report the development of cationic alpha-helical polypeptides as a self-adjuvanting delivery vehicle for antigen-encoding mRNAs.
The alpha-helical polypeptides facilitate intracellular delivery of mRNAs into dendritic cells (DCs) via temporary membrane disruption, simultaneously activate DCs by regulating NF-κB and IRF pathways, and improve the ability of DCs to process and present mRNA-encoded neoantigens. The cationic polypeptide condenses and stabilizes mRNAs, promotes internalization via its cell-penetrating property, and increases the expression of activation markers (CD86, MHCII, CD40, and CCR7) on DCs by upregulating NF-κB, IRF, and STING pathways. Molecular docking and simulation confirm the stable complexation between mRNA and alpha-helical polypeptides.
Upon subcutaneous administration, the polyplex migrates to draining lymph nodes, where it transfects and activates DCs, eliciting a strong neoantigen-specific cytotoxic T lymphocyte (CTL) response in vivo. Compared to mRNA-SM102 lipid nanoparticles or Lipofectamine 3000 lipoplexes, the polyplex enhances antigen expression and presentation by DCs, leading to significantly improved priming of antigen-specific CD8⁺ T cells in vitro and in vivo. The polyplex achieves 83.3% and 33.3% tumor-free survival in E.G7-OVA lymphoma and 4T1 triple-negative breast cancer (TNBC), respectively. This is far exceeding the 0% tumor-free survival of conventional formulations. Polyplexes composed of alpha-helical L-PPOB50-G and mRNAs encoding 4T1 TNBC neoantigens elicit potent neoantigen-specific CD8⁺ T cell responses while showing no detectable toxicity in major organs.
The polyplex also reprograms the immunosuppressive tumor microenvironment by enriching DCs, M1-phenotype CD86⁺ macrophages, and CD8⁺ T cells in tumors. We also observed increased PD-1 expression on intratumoral CD8⁺ T cells and PD-L1 on 4T1 tumor cells after polyplex treatment and demonstrated synergistic effects between the polyplex vaccine and anti-PD-1 therapy. Our polyplex system provides a facile and generalizable approach to developing robust mRNA-based cancer vaccines.
利益披露 Disclosure
J. Zhou, None.