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.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:From cold to hot tumors: feasibility of applying therapeutic insights to TNBC.
From cold to hot tumors: feasibility of applying therapeutic insights to TNBC.
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三阴性乳腺癌(TNBC)是一种侵袭性乳腺癌亚型,其特点是缺乏雌激素受体(ER)、孕激素受体(PR)和人表皮生长因子受体2(HER2)。由于其肿瘤微环境(TME)具有免疫抑制性且免疫细胞浸润较少,TNBC通常对免疫治疗应答不佳。近期研究重点关注将“冷”肿瘤转变为“热”肿瘤,以提高肿瘤免疫原性并改善治疗效果。本综述旨在总结冷、热肿瘤的生物学特征,并探讨两者转变的机制。关键策略包括调节TME、增强免疫细胞浸润和调控炎症反应。文章还讨论免疫检查点抑制剂(ICI)、细胞因子治疗、CAR-T 细胞疗法及癌症疫苗在TME重编程中的作用。
此外,研究还评估了ICI联合化疗、放疗和靶向治疗等新兴组合策略提高TNBC免疫原性的潜力。现有临床前和临床证据表明,通过靶向干预重编程TME,可显著增加免疫细胞浸润及抗原呈递,从而提高TNBC免疫治疗效果。ICI联合化疗或放疗有望使TME转变为更易产生免疫应答的状态。CAR-T 细胞疗法、细胞因子治疗和癌症疫苗的进展,也为克服TNBC免疫耐受提供了新方法。
总之,将冷肿瘤转变为热肿瘤是TNBC一种有前景的治疗策略。未来研究应着重优化联合方案、明确治疗时机和剂量,并整合精准医疗方法,以最大化临床获益。深入理解TME调节和免疫耐受机制,将有助于开发新型免疫治疗策略,改善TNBC患者的生存结局和生活质量。
Triple-negative breast cancer (TNBC) is an aggressive subtype of breast cancer that is characterized by the absence of estrogen receptors (ERs), progesterone receptors (PRs), and human epidermal growth factor receptor 2 (HER2). Due to its immunosuppressive tumour microenvironment (TME) and low immune cell infiltration, TNBC typically exhibits poor responsiveness to immunotherapy.
Recent relevant research has focused on using strategies to convert cold tumors into hot tumors to increase tumor immunogenicity and improve treatment efficacy. This review aims to summarize the biological characteristics of both cold and hot tumors and explore the mechanisms underlying the transformation from cold to hot tumors. Key strategies include modulation of the TME, enhancement of immune cell infiltration, and regulation of the inflammatory responses.
Additionally, the roles of immune checkpoint inhibitors (ICIs), cytokine therapy, chimeric antigen receptor T-cell (CAR-T) therapy, and cancer vaccines in reprogramming the TME are discussed.
Further, the emerging combination strategies, such as the integration of ICIs with chemotherapy, radiotherapy, and targeted therapies, have been evaluated for their potential to increase TNBC immunogenicity.
Current preclinical and clinical evidence suggests that reprogramming the TME through targeted interventions significantly increases immune cell infiltration and antigen presentation, thereby improving the immunotherapy efficacy in TNBC. The combinations of ICIs with chemotherapy and radiotherapy have shown promise in shifting the TME toward an immunoresponsive state.
Moreover, advances in the CAR-T-cell therapy, cytokine therapy, and cancer vaccines have offered novel approaches for overcoming immune resistance in TNBC.
In conclusion, transforming cold tumors into hot tumors represents a promising therapeutic strategy for TNBC. Future research should focus on optimizing the treatment combinations, refining therapeutic timing and dosage, and integrating precision medicine approaches to achieve maximized clinical benefits. A deeper understanding of TME modulation and immune resistance mechanisms would facilitate the development of novel immunotherapeutic strategies to improve the survival outcomes and quality of life in TNBC patients.
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