CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Immune Resistance in Glioblastoma: Understanding the Barriers to ICI and CAR-T Cell Therapy.
Immune Resistance in Glioblastoma: Understanding the Barriers to ICI and CAR-T Cell Therapy.
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将这些疗法转化为治疗人类胶质母细胞瘤的有效方法仍然是一项重大挑战。GBM 及其肿瘤微环境的高度免疫抑制性质继续阻碍这些创新免疫治疗方法的成功。靶向髓源性隔室可能带来更强健和持久的免疫反应。
胶质母细胞瘤(GBM)是最常见的原发性恶性脑肿瘤,诊断后五年生存率不足5%。免疫检查点抑制剂(ICIs)以及随后的嵌合抗原受体(CAR)T细胞疗法的引入,标志着肿瘤学的重大进展。尽管这些疗法在其他血液和实体癌中显示出疗效,但在新诊断和复发性GBM的临床试验中取得的成功有限。深入理解GBM对免疫治疗的耐药机制,对于提高治疗反应以及将其他癌症模型中的结果转化应用至关重要。
在这篇综述中,我们考察了涉及ICIs和CAR-T 用于GBM患者的临床试验结果,并探讨了GBM的逃逸机制及肿瘤微环境。发现与讨论:多项研究ICIs在GBM中应用的临床试验显示了不佳的结果,无进展生存期(PFS)或总生存期(OS)均未见显著改善。CAR-T 疗法的较小案例研究结果值得进一步探究。然而,尚无大规模试验或稳健研究将这些免疫治疗策略确立为决定性治疗方法。未来的研究应转变焦点,从解决功能性T细胞稀缺的问题转向利用肿瘤微环境中丰富的髓系衍生细胞。
Glioblastoma (GBM) is the most common primary malignant brain tumor, with fewer than 5% of patients surviving five years after diagnosis. The introduction of immune checkpoint inhibitors (ICIs), followed by chimeric antigen receptor (CAR) T-cell therapy, marked major advancements in oncology. Despite demonstrating efficacy in other blood and solid cancers, these therapies have yielded limited success in clinical trials for both newly diagnosed and recurrent GBM. A deeper understanding of GBM's resistance to immunotherapy is essential for enhancing treatment responses and translating results seen in other cancer models.
In this review, we examine clinical trial outcomes involving ICIs and CAR-T for GBM patients and explore the evasive mechanisms of GBM and the tumor microenvironment. FINDINGS AND DISCUSSION: Multiple clinical trials investigating ICIs in GBM have shown poor outcomes, with no significant improvement in progression-free survival (PFS) or overall survival (OS). Results from smaller case studies with CAR-T therapy have warranted further investigation. However, no large-scale trials or robust studies have yet established these immunotherapeutic approaches as definitive treatment strategies. Future research should shift focus from addressing the scarcity of functional T cells to exploiting the abundant myeloid-derived cells within the tumor microenvironment.
Translating these therapies into effective treatments for glioblastoma in humans remains a significant challenge. The highly immunosuppressive nature of GBM and its tumor microenvironment continue to hinder the success of these innovative immunotherapeutic approaches. Targeting the myeloid-derived compartment may lead to more robust and sustained immune responses.
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