CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:The Potential Function of Toxoplasma gondii in Tumour Immunotherapy.
The Potential Function of Toxoplasma gondii in Tumour Immunotherapy.
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免疫疗法已经彻底改变了多种癌症的临床治疗,包括免疫检查点抑制剂、过继性细胞疗法和肿瘤疫苗,这些疗法能够为部分患者提供长期的临床获益。
然而,高度的肿瘤免疫异质性和持续存在的免疫抑制性肿瘤微环境(TME)仍然是治疗结局的限制因素,因此需要替代方法来刺激抗肿瘤免疫。鉴于这些局限性,近年来的研究者开始关注刚地弓形虫及其衍生物可作为癌症免疫治疗中非常规的寄生虫来源免疫调节载体这一事实。刚地弓形虫感染可触发由白细胞介素-12(IL-12)和干扰素-γ(IFN-γ)介导的强效Th1免疫,促进树突状细胞成熟,并激活细胞毒性T细胞,从而将TME重编程为更具免疫刺激性的状态。减毒株或代谢缺陷株已在多种小鼠肿瘤模型中显示出强大的抗肿瘤疗效,可减轻肿瘤负荷并延长宿主生存期。
同时,该寄生虫的效应蛋白,如GRA15、GRA16和ROP18,可调节免疫细胞功能以诱导肿瘤细胞凋亡、抑制血管生成并抑制转移。刚地弓形虫感染细胞来源的外泌体和刚地弓形虫裂解物抗原也具有免疫原性,代表了更安全、非感染性的治疗替代方案。
在此,我们总结了刚地弓形虫及其衍生物抗肿瘤效应的最新进展,重点关注免疫激活、信号调控、直接抗肿瘤效应、协同免疫治疗、药物开发潜力以及未来临床转化面临的挑战。T.弓形虫及其衍生物已显示出在小鼠癌症模型中重塑TME并将“冷”肿瘤转化为“热”肿瘤的潜力。
我们相信,随着该领域的进一步研究,癌症免疫治疗的未来将迎来突破性进展。
Immunotherapy has revolutionised the clinical treatment of many types of cancer, including immune checkpoint inhibitors, adoptive cell therapies, and tumour vaccines, which are capable of providing long-term clinical benefit in some patients. Nevertheless, a high degree of tumour immune heterogeneity and an ongoing immunosuppressive the tumour microenvironment (TME) remain as limitations to therapeutic outcomes, and alternative methods to stimulate antitumor immunity are necessary. Given these limitations, recent researchers has been attracted to the fact that Toxoplasma gondii and its derivatives can be considered as unconventional parasite-derived immunomodulatory vectors in cancer immunotherapy. T.
gondii infection triggers strong Th1 immunity mediated on interleukin-12 (IL-12) and interferon-γ (IFN-γ), promotes dendritic cell maturation, and activates cytotoxic T cells, thus reprogramming the TME to a more immunostimulatory condition. Attenuated or metabolic-deficient strains have shown strong antitumor efficacy in various murine tumour models by reducing tumour burden and prolonging host survival.
Meanwhile, the effector proteins of the parasite, such as GRA15, GRA16, and ROP18, regulate immune cell function to induce tumour cell apoptosis, inhibit angiogenesis, and suppress metastasis. The T. gondii-infected cell-derived exosomes and T. gondii lysate antigens are also immunogenic and represent safer, non-infectious therapeutic alternatives.
Here, we summarise the latest advances in the antitumor effects of T. gondii and its derivatives, focusing on immune activation, signalling regulation, direct antitumor effects, synergistic immunotherapy, potential for drug development, and challenges in future clinical translation. T. gondii and its derivatives have shown the potential to reshape TME and convert 'cold' tumours into 'hot' ones in murine cancer models.
We believe that with further research in this field, the future of cancer immunotherapy will see breakthrough advancements.
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