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:How Deeply Can mRNA Vaccines Affect the Responsiveness to Immune Checkpoint Inhibitors Through Changes in the Tumor Microenvironment? Evidence from Melanoma.
How Deeply Can mRNA Vaccines Affect the Responsiveness to Immune Checkpoint Inhibitors Through Changes in the Tumor Microenvironment? Evidence from Melanoma.
这些进展表明,将 mRNA 疫苗与 ICIs 联合使用,并辅以计算工具支持,可能改善黑色素瘤的临床结局,并有可能改善具有有利免疫学特征的特定肿瘤类型的结局,尽管重要的生物学限制因素制约了向免疫原性较低的恶性肿瘤的直接外推。
信使RNA(mRNA)疫苗正成为有前景的工具,能够重塑癌症与免疫系统的相互作用以及对免疫治疗的反应。这些疫苗不仅作为抗原递送平台,还能影响肿瘤微环境(TME),促进从免疫学“冷”状态向“更热”且对治疗有反应的状态转变。在黑色素瘤中,已发现这种能力可增强免疫检查点抑制剂(ICIs)的疗效,因为基于mRNA的启动可提供更有效检查点阻断所需的强效抗肿瘤激活。使用个性化或现货型疫苗的早期临床研究在高危切除后黑色素瘤或对PD-1抑制难治的患者中显示出获益。将mRNA疫苗与ICIs以及其他免疫调节策略联合使用,可能有助于克服由TME引起的耐药并获得更持久的临床获益。除这些进展外,计算和计算机模拟建模正在为mRNA疫苗如何调节TME提供新见解,有助于识别可能预测治疗成功并指导个性化策略的因素,如抗原呈递细胞(APC)密度、CD8 + T细胞浸润和巨噬细胞极化。总之,这些进展表明,将mRNA疫苗接种与ICIs联合,并辅以计算工具,可能改善黑色素瘤以及可能具有有利免疫特征的特定肿瘤类型的临床结局,尽管重要的生物学限制制约了向免疫原性较低的恶性肿瘤的直接外推。
Messenger RNA (mRNA) vaccines are emerging as promising tools capable of reshaping how cancer interacts with the immune system and responds to immunotherapy. These vaccines not only act as platforms for antigen delivery but can also influence the tumor microenvironment (TME), fostering a shift from immunologically "cold'' conditions toward "hotter'' and treatment-responsive states. In melanoma, this capability has been found to enhance the efficacy of the immune checkpoint inhibitors (ICIs), as mRNA-based priming can provide the robust antitumor activation needed for more effective checkpoint blockade. Early clinical studies with personalized or off-the-shelf vaccines showed benefits in patients with high-risk resected melanoma or refractory to PD-1 inhibition. Combining mRNA vaccines with ICIs, along with other immunomodulatory strategies, may be helpful to overcome resistance arising from the TME and achieve more durable clinical benefits. Besides these advances, computational and in silico modeling are providing new insights into how mRNA vaccines modulate the TME, helping to identify factors such as antigen-presenting cell (APC) density, CD8 + T-cell infiltration, and macrophage polarization that may predict treatment success and guide personalized strategies. Together, these developments indicate that combining mRNA vaccination with ICIs, supported by computational tools, may improve clinical outcomes in melanoma and, potentially, in selected tumor types with favorable immunological features, although important biological constraints limit direct extrapolation to less immunogenic malignancies.
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