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iPSC 衍生多价疫苗作为具个体发育学信息依据的免疫原以克服微卫星稳定型结直肠癌的免疫难治性:癌症免疫治疗的新兴前沿

英文原题:iPSC-derived polyvalent vaccines as ontogenetically informed immunogens toward overcoming immune refractoriness in microsatellite-stable colorectal cancer: An emerging frontier in cancer immunotherapy.

PubMed 2026/08/13(内容时间) Mol Immunol Q2 · IF 3.7(JCR 2025)

研究概要

转化优先级包括 CRISPR 工程化的低免疫原性 iPSC 平台、符合 GMP 的非整合重编程,以及与 STING 激动剂、ICB、CAR-NK 细胞和 LNP-mRNA 构建体的组合整合,以在微小残留病灶 CRC 中实现生物标志物引导的临床部署。

研究思路结论见上方概要

结直肠癌(CRC)在全球范围内的疾病负担日益加重,其中微卫星稳定/错配修复功能完整(MSS/pMMR)肿瘤由于肿瘤突变负荷低、新抗原性有限,以及由调节性T细胞(Tregs)和髓源性抑制细胞(MDSCs)主导的免疫抑制性肿瘤微环境(TME),对免疫检查点阻断(ICB)表现出内在的难治性。范围:本综述综合了关于诱导多能干细胞(iPSC)来源的多价疫苗作为个体发育重演性免疫原的证据,评估其机制基础、在多种癌症模型中的临床前疗效,以及在MSS CRC中的转化前景。

重编程诱导癌胚肿瘤相关抗原重新表达,包括癌-睾丸抗原(NY-ESO-1、MAGE-A3)以及 CEA 和 MUC1 的异常糖型,这些抗原天然共享于 iPSCs 与 CRC 细胞之间。临床上可干预的新抗原表位如 KRAS^G12D/V 并非重编程本身的结果,但可通过有意的基因工程导入 iPSCs(新抗原增强型 iPSCs),补充这一天然癌胚抗原谱,并拓宽在疫苗诱导的肿瘤细胞死亡后可用于表位扩展的抗原载荷。经辐照的自体或同基因 iPSCs 与 TLR9 激动剂一起递送,可驱动 CD8 细胞毒性 T 细胞活化、Th1 极化、穿孔素/颗粒酶介导的细胞溶解以及有利的效应细胞与抑制细胞比值。黑色素瘤、胰腺导管腺癌和 MSS CRC 的临床前模型显示出预防性和治疗性疗效,其中新抗原增强型 iPSCs 与放疗诱导的 DAMPs 协同,实现持久消退和记忆 T 细胞形成。

展开英文摘要原文

BACKGROUND: Colorectal carcinoma (CRC) exerts a growing global disease burden, with microsatellite-stable/proficient mismatch repair (MSS/pMMR) tumors exhibiting intrinsic refractoriness to immune-checkpoint blockade (ICB) owing to low tumor mutational burden, limited neoantigenicity, and an immunosuppressive tumor microenvironment (TME) dominated by regulatory T cells (Tregs) and myeloid-derived suppressor cells (MDSCs). SCOPE: This review synthesizes evidence on induced pluripotent stem cell (iPSC)-derived polyvalent vaccines as ontogenetically recapitulative immunogens, evaluating their mechanistic basis, preclinical efficacy across cancer models, and translational prospects in MSS CRC. KEY FINDINGS: Reprogramming induces re-expression of oncofetal tumor-associated antigens, including cancer-testis antigens (NY-ESO-1, MAGE-A3) and aberrant glycoforms of CEA and MUC1, that are natively shared between iPSCs and CRC cells. Clinically actionable neoepitopes such as KRAS^G12D/V are not a consequence of reprogramming itself but can be introduced into iPSCs by deliberate genetic engineering (neoantigen-augmented iPSCs), complementing this native oncofetal repertoire and broadening the antigenic payload available for epitope spreading following vaccine-induced tumor cell death. Irradiated autologous or syngeneic iPSCs, delivered with TLR9 agonists, drive CD8 cytotoxic T-cell activation, Th1 polarization, perforin/granzyme-mediated cytolysis, and favorable effector-to-suppressor ratios. Preclinical models of melanoma, pancreatic ductal adenocarcinoma, and MSS CRC demonstrate prophylactic and therapeutic efficacy, with neoantigen-enhanced iPSCs synergizing with radiotherapy-induced DAMPs to achieve durable regressions and memory T-cell formation. CONCLUSIONS: Translational priorities include CRISPR-engineered hypoimmunogenic iPSC platforms, GMP-compatible non-integrating reprogramming, and combinatorial integration with STING agonists, ICB, CAR-NK cells, and LNP-mRNA constructs to enable biomarker-guided clinical deployment in minimal-residual-disease CRC.

论文信息

作者
Kumar A、Dwivedi D、Ghosh N、Gopalakrishnan K、Rahamathulla M、Ahmed MM、Nair C、Singh D
第一作者单位
Department of Pharmaceutical Chemistry, NGSM Institute of Pharmaceutical Sciences (NGSMIPS), Nitte (Deemed to be University), Mangalore, Karnataka 575018, India. Electronic address: abhi12bunty@nitte.edu.in.India
通讯作者单位
School of Biotechnology (SBT), Jawaharlal Nehru University (JNU), New Delhi 110067, India; Developmental Biology and Genetics (DBG), Division of Biological Sciences, Indian Institute of Science (IISc), Bengaluru, Karnataka 560012, India. Electronic address: Uddalak_2025@jnu.ac.in.India
文献类型
综述
期刊
Molecular immunology2026 Oct
原文标识
PubMed 42594762 · DOI 10.1016/j.molimm.2026.08.008