CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Oncolytic Viruses in Cancer Immunotherapy: From Molecular Engineering to Clinical Translation.
Oncolytic Viruses in Cancer Immunotherapy: From Molecular Engineering to Clinical Translation.
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癌症免疫治疗已经改变了现代肿瘤学,但由于免疫排斥、适应性耐药和肿瘤异质性,许多患者仍难以获得持久缓解。溶瘤病毒(OVs)作为一种新型免疫治疗药物出现,将直接的肿瘤细胞裂解与抗肿瘤免疫刺激统一起来。通过诱导免疫原性细胞死亡(ICD)并释放肿瘤相关抗原(TAAs),OVs 将肿瘤微环境(TME)重塑为炎症性和免疫允许的生态位,从而能够实现系统性免疫激活。病毒工程的快速进展通过肿瘤选择性基因缺失、肿瘤特异性启动子、基于 microRNA 的脱靶消除以及受体重靶向策略,增强了 OVs 的转化潜力,这些策略共同提高了安全性、特异性和瘤内传播能力。下一代 OVs 越来越多地被“武装”以免疫刺激性载荷——包括细胞因子、趋化因子、检查点抑制剂、双特异性 T 细胞衔接器和自杀基因系统——从而允许局部免疫调节并降低全身毒性。
这些创新推动了显著的临床进展,例如 talimogene laherparepvec(T-VEC)、G47Δ 和 H101 的获批,并推动了将 OVs 与免疫检查点阻断、过继细胞治疗、放疗和靶向治疗相结合的大量联合试验,以克服多层肿瘤免疫抵抗。尽管势头强劲,临床实施仍面临抗病毒免疫、病毒分布异质性、基质屏障以及 TME 中动态干扰素(IFN)信号传导的挑战。新兴的递送方法,包括载体细胞系统、纳米技术赋能的病毒屏蔽以及合成病毒学平台,为这些局限性提供了有前景的解决方案。溶瘤病毒疗法正迅速发展为一种多功能的免疫治疗平台,能够在局部和全身层面重塑抗肿瘤反应。通过将先进的病毒工程与合理的联合策略及创新递送技术相结合,OVs 具有巨大潜力来克服当前癌症免疫治疗中的障碍并推动精准肿瘤学发展。持续转化的研究对于充分发挥其治疗作用并拓宽其临床适用性至关重要。
Cancer immunotherapy has transformed modern oncology, yet durable responses remain limited for many patients due to immune exclusion, adaptive resistance, and tumor heterogeneity. Oncolytic viruses (OVs) have emerged as a novel class of immunotherapeutics that unify direct tumor cytolysis with stimulation of antitumor immunity. By inducing immunogenic cell death (ICD) and releasing tumor-associated antigens (TAAs), OVs remodel the tumor microenvironment (TME) into an inflamed and immune-permissive niche capable of enabling systemic immune activation. Rapid advances in viral engineering have strengthened the translational potential of OVs through tumor-selective gene deletions, tumor-specific promoters, microRNA-based detargeting, and receptor-retargeting strategies that collectively enhance safety, specificity, and intratumoral propagation. Next-generation OVs are increasingly "armed" with immunostimulatory payloads-including cytokines, chemokines, checkpoint inhibitors, bispecific T-cell engagers, and suicide gene systems-allowing localized immune modulation with reduced systemic toxicity.
These innovations have propelled significant clinical progress, exemplified by the approvals of talimogene laherparepvec (T-VEC), G47Δ, and H101, and have driven a surge of combination trials integrating OVs with immune checkpoint blockade, adoptive cell therapies, radiotherapy, and targeted therapies to overcome multilayered tumor immune resistance. Despite this momentum, clinical implementation remains challenged by antiviral immunity, heterogeneous viral distribution, stromal barriers, and dynamic interferon (IFN) signaling in the TME.
Emerging delivery approaches, including carrier cell systems, nanotechnology-enabled viral shielding, and synthetic virology platforms, offer promising solutions to these limitations. Oncolytic virotherapy is rapidly evolving into a multifunctional immunotherapeutic platform capable of reshaping antitumor responses at both local and systemic levels.
By integrating advanced viral engineering with rational combination strategies and innovative delivery technologies, OVs hold substantial potential to overcome current barriers in cancer immunotherapy and advance precision oncology. Continued translational research will be essential to fully harness their therapeutic impact and broaden their clinical applicability.
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