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:Unraveling the immune microenvironment in primary CNS lymphoma.
Unraveling the immune microenvironment in primary CNS lymphoma.
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原发性中枢神经系统淋巴瘤(PCNSL)是一种罕见的恶性淋巴组织疾病,发生于被认为具有免疫豁免特征的中枢神经系统。过去十年间,PCNSL患者结局已显著改善,主要得益于治疗强化。近年来日益明确的是,PCNSL的生物学特性不仅由肿瘤本身决定,还受其与免疫微环境密切且复杂的相互作用影响。TIL(肿瘤浸润淋巴细胞)、肿瘤相关巨噬细胞和树突状细胞尤其会重塑PCNSL的免疫环境。
值得注意的是,以M2样巨噬细胞浓度高、CD8+ T细胞浓度低及IL-10细胞因子高表达为特征的免疫抑制性微环境与生存不良相关。相反,T细胞免疫及其丰度对于获得良好治疗结局至关重要,凸显中枢神经系统内免疫能力的预后意义。目前标准诱导治疗以大剂量甲氨蝶呤为核心,符合条件患者随后接受大剂量化疗和自体干细胞移植巩固。IELSG32和PRECISE试验的长期随访数据显示,7年时仍有多达70%的患者存活,凸显这些策略具有治愈潜力。是否适合治疗主要取决于体能状态,而体能状态是标准风险分层中的关键预后因素。
不过,复发率仍较高,因此免疫治疗策略日益受到关注。包括免疫检查点抑制剂、T细胞衔接器和CAR-T 细胞在内的T细胞治疗方法已取得令人鼓舞的疗效。
然而,中枢神经系统的免疫豁免特性带来免疫学挑战,限制免疫监视并促进肿瘤细胞逃逸,从而造成PCNSL治疗障碍。全面理解致癌信号改变影响免疫逃逸策略的方式,有望改善未来PCNSL治疗。尽管有充分证据表明免疫微环境显著影响疾病进展,PCNSL现有预后模型尚未纳入炎症或免疫学生物标志物。鉴于免疫微环境具有重要预后和治疗意义,未来标准风险分层应体现并验证其影响。将已验证免疫标志物与新兴免疫疗法结合,不仅有望改善个体患者结局,也有望优化PCNSL整体照护模式。
Primary central nervous system lymphoma (PCNSL) is a rare malignant lymphoid condition that arises within the central nervous system, which is considered an immune-privileged site. Outcomes for patients with PCNSL have substantially improved over the past decade, largely due to treatment intensification.
In recent years, it has become increasingly evident that the biology of PCNSL is not solely determined by the tumor itself, but also by its close and complex interaction with the immune microenvironment. Tumor-infiltrating lymphocytes, tumor-associated macrophages, and dendritic cells, in particular, reshape the immune milieu in PCNSL.
Notably, an immunosuppressive microenvironment characterized by a high concentration of M2-like macrophages, a low concentration of CD8+ T-cells, and high expression of the cytokine IL-10 is associated with an unfavorable survival. Conversely, T-cell immunity and its abundance are pivotal for favorable treatment outcomes, highlighting the prognostic importance of immune competence within the central nervous system. The current standard of care for induction treatment is based on high-dose methotrexate as the central component, followed by consolidating high-dose chemotherapy and autologous stem cell transplantation in eligible patients.
Long-term follow-up data from the IELSG32 and PRECISE trials demonstrated that up to 70% of patients remained alive at seven years, underscoring the curative potential of these strategies. Eligibility mainly depends on performance status, which is recognized as a key prognostic factor in standard risk stratifications.
Nevertheless, relapse rates remain substantial, prompting growing interest in immunotherapeutic strategies. T-cell-based approaches, including among others checkpoint inhibitors, T-cell engagers, and CAR T-cells have achieved encouraging therapeutic success.
However, the immune-privileged nature of the central nervous system poses immunological challenges that limit immune surveillance and facilitate tumor cell evasion, creating therapeutic obstacles in PCNSL. A comprehensive understanding of the manner in which alterations in oncogenic signaling influence immune evasion strategies holds considerable potential for enhancing future therapeutic approaches in PCNSL.
Despite compelling evidence that the immune microenvironment significantly influences disease progression, established prognostic models for PCNSL do not yet consider inflammatory or immunological biomarkers. Given the significant prognostic and therapeutic implications of the immune microenvironment, its impact should be reflected and validated in future standard risk stratifications.
Integrating validated immune biomarkers with emerging immunotherapeutic strategies has the potential not only to improve individual patient outcomes but also to optimize the overall structure of care for patients with PCNSL.
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