单细胞追踪揭示黑色素瘤 TIL 治疗过程中肿瘤反应性 T 细胞的可塑性
Single-cell tracking reveals tumor-reactive T cell plasticity during melanoma TIL therapy.
TIL(肿瘤浸润淋巴细胞)过继细胞治疗可在转移性黑色素瘤中诱导持久缓解,然而在体外扩增过程中及回输后,调控肿瘤反应性T细胞命运的克隆和转录动态仍知之甚少。
英文原题:Molecular reprogramming in cutaneous melanoma: the central role of G9a and EZH2 methyltransferase inhibitors in tumor plasticity, immune evasion, and therapeutic resistance.
皮肤黑色素瘤仍然是皮肤癌相关死亡的主要原因,尽管治疗取得了显著进展,但治疗耐药和免疫逃逸仍是主要的临床挑战。
尽管治疗取得了显著进展,皮肤黑色素瘤仍是皮肤癌相关死亡的主要原因,治疗耐药和免疫逃逸是主要的临床挑战。表观遗传失调,特别是通过组蛋白甲基转移酶 G9a(EHMT2)和 zeste 同源物增强子 2(EZH2),在黑色素瘤进展、治疗耐药和免疫逃逸中发挥关键作用。G9a 催化 H3K9me2 的沉积,而 EZH2 作为多梳抑制复合物 2(PRC2)的催化亚基,介导 H3K27me3 的沉积,从而建立抑制性染色质状态,沉默抑癌基因和免疫相关通路。这些酶在黑色素瘤中经常过表达,并协同维持以增强可塑性和降低免疫原性为特征的去分化和侵袭性肿瘤表型。肢端黑色素瘤是一种具有低紫外线(UV)突变负荷的独特亚型,似乎特别依赖表观遗传重编程,并表现出免疫学“冷”肿瘤微环境,这与当前治疗反应差相关。临床前研究表明,使用 UNC0642 等化合物对 G9a 进行药理抑制以及使用 tazemetostat 等药物对 EZH2 进行药理抑制,可以恢复被沉默基因的表达,增强抗原呈递,并改善肿瘤免疫原性。重要的是,G9a 和 EZH2 之间的功能性串扰产生了冗余的抑制机制,这可能限制单药治疗的疗效,支持开发靶向这两条通路的联合策略。双重抑制在临床前模型中已显示出前景,可将免疫排斥的“冷”肿瘤转化为免疫应答的“热”肿瘤,使其对检查点阻断和过继性细胞疗法更敏感。尽管 EZH2 抑制剂已在多种实体瘤中进入临床试验,但尽管具有强有力的生物学依据,黑色素瘤特异性研究仍然有限。本综述综合了目前对黑色素瘤中 G9a 和 EZH2 生物学的理解,评估了治疗靶向策略,并强调了表观遗传重编程在克服这种侵袭性恶性肿瘤的治疗耐药性和增强免疫治疗反应方面的潜力。
Cutaneous melanoma remains a leading cause of skin cancer-related mortality despite significant therapeutic advances, with treatment resistance and immune evasion representing major clinical challenges. Epigenetic dysregulation, particularly through the histone methyltransferases G9a (EHMT2) and Enhancer of Zeste Homolog 2 (EZH2), plays a pivotal role in melanoma progression, therapeutic resistance, and immune escape. G9a catalyzes the deposition of H3K9me2, whereas EZH2, the catalytic subunit of the Polycomb Repressive Complex 2 (PRC2), mediates H3K27me3 deposition, thereby establishing repressive chromatin states that silence tumor suppressor genes and immune-related pathways. These enzymes are frequently overexpressed in melanoma and cooperate to maintain dedifferentiated and invasive tumor phenotypes characterized by enhanced plasticity and reduced immunogenicity. Acral melanoma, a distinct subtype with a low ultraviolet (UV) mutational burden, appears to be particularly dependent on epigenetic reprogramming and exhibits an immunologically "cold" tumor microenvironment that is associated with poor responses to current therapies. Preclinical studies demonstrate that pharmacological inhibition of G9a with compounds such as UNC0642 and EZH2 with agents including tazemetostat can restore the expression of silenced genes, enhance antigen presentation, and improve tumor immunogenicity. Importantly, the functional crosstalk between G9a and EZH2 creates redundant repressive mechanisms that may limit the efficacy of single-agent therapies supporting the development of combination strategies targeting both pathways. Dual inhibition has shown promise in pre-clinical models by converting immune-excluded "cold" tumors into immune-responsive "hot" tumors that are more susceptible to checkpoint blockade and adoptive cell therapies. While EZH2 inhibitors have progressed to clinical trials in various solid tumors, melanoma-specific studies remain limited despite strong biological rationale. This review synthesizes the current understanding of G9a and EZH2 biology in melanoma, evaluates therapeutic targeting strategies, and highlights the potential for epigenetic reprogramming to overcome treatment resistance and enhance immunotherapy responses in this aggressive malignancy.
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