CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Advancing Breast Cancer Treatment: The Role of Immunotherapy and Cancer Vaccines in Overcoming Therapeutic Challenges.
Advancing Breast Cancer Treatment: The Role of Immunotherapy and Cancer Vaccines in Overcoming Therapeutic Challenges.
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乳腺癌(BC)生物学复杂,使诊断和治疗均面临困难,因此仍是全球重大健康挑战。免疫疗法和癌症疫苗利用机体免疫系统精准靶向并清除癌细胞,已成为有前景的替代治疗方法。
然而,选择和实施这些治疗的效果受多种关键因素影响,包括BC亚型、肿瘤突变负荷(TMB)、TIL(肿瘤浸润淋巴细胞)、PD-L1表达、HER2耐药及肿瘤微环境(TME)。BC亚型对治疗应答有重要影响:三阴性乳腺癌(TNBC)对免疫治疗最敏感;HER2阳性及激素受体阳性(HR+)亚型则常需联合治疗以获得最佳结局。高TMB通过产生新抗原增强免疫应答,使肿瘤更易对免疫检查点抑制剂(ICI)产生应答;低TMB则可能提示耐药。同样,TIL水平升高与免疫治疗疗效较好相关,而PD-L1表达是预测检查点抑制剂疗效的重要指标。与此同时,HER2耐药及免疫抑制性TME会促进免疫逃逸,提示需要多层面的治疗策略。目前乳腺癌免疫治疗包括多种靶向疗法。曲妥珠单抗和帕妥珠单抗等HER2靶向疗法通过阻断HER2二聚化并增强抗体依赖性细胞介导的细胞毒作用(ADCC)发挥作用;拉帕替尼和图卡替尼等小分子抑制剂则抑制HER2信号以遏制肿瘤生长。
抗体药物偶联物(ADC)将单克隆抗体与细胞毒性药物偶联,提高肿瘤靶向性并尽量减少靶外作用。帕博利珠单抗等ICI可恢复T细胞功能;CAR-巨噬细胞(CAR-M)疗法则利用巨噬细胞重塑TME并克服免疫治疗耐药。免疫疗法,尤其是用于TNBC时,虽可诱导持久免疫应答并显示前景,但疗效因亚型而异。免疫相关不良事件、耐药机制、高成本和应答延迟仍阻碍其广泛成功。乳腺癌疫苗包括蛋白质疫苗、全细胞疫苗、mRNA疫苗、树突状细胞疫苗和表位疫苗,旨在激发肿瘤特异性免疫。尽管目前临床成功有限,研究仍在优化疫苗配方、整合联合疗法并寻找生物标志物,以改进患者分层。未来乳腺癌治疗的进步取决于采用生物标志物指导策略优化免疫治疗、应对肿瘤异质性,以及开发创新联合疗法以克服耐药。借助这些策略,研究者希望提高治疗疗效并最终改善患者结局。
Breast cancer (BC) remains a significant global health challenge due to its complex biology, which complicates both diagnosis and treatment. Immunotherapy and cancer vaccines have emerged as promising alternatives, harnessing the body's immune system to precisely target and eliminate cancer cells.
However, several key factors influence the selection and effectiveness of these therapies, including BC subtype, tumor mutational burden (TMB), tumor-infiltrating lymphocytes (TILs), PD-L1 expression, HER2 resistance, and the tumor microenvironment (TME). BC subtypes play a critical role in shaping treatment responses. Triple-negative breast cancer (TNBC) exhibits the highest sensitivity to immunotherapy, while HER2-positive and hormone receptor-positive (HR+) subtypes often require combination strategies for optimal outcomes. High TMB enhances immune responses by generating neoantigens, making tumors more susceptible to immune checkpoint inhibitors (ICIs); whereas, low TMB may indicate resistance. Similarly, elevated TIL levels are associated with better immunotherapy efficacy, while PD-L1 expression serves as a key predictor of checkpoint inhibitor success. Meanwhile, HER2 resistance and an immunosuppressive TME contribute to immune evasion, highlighting the need for multi-faceted treatment approaches. Current breast cancer immunotherapies encompass a range of targeted treatments. HER2-directed therapies, such as trastuzumab and pertuzumab, block HER2 dimerization and enhance antibody-dependent cellular cytotoxicity (ADCC), while small-molecule inhibitors, like lapatinib and tucatinib, suppress HER2 signaling to curb tumor growth.
Antibody-drug conjugates (ADCs) improve tumor targeting by coupling monoclonal antibodies with cytotoxic agents, minimizing off-target effects. Meanwhile, ICIs, including pembrolizumab, restore T-cell function, and CAR-macrophage (CAR-M) therapy leverages macrophages to reshape the TME and overcome immunotherapy resistance. While immunotherapy, particularly in TNBC, has demonstrated promise by eliciting durable immune responses, its efficacy varies across subtypes. Challenges such as immune-related adverse events, resistance mechanisms, high costs, and delayed responses remain barriers to widespread success.
Breast cancer vaccines-including protein-based, whole-cell, mRNA, dendritic cell, and epitope-based vaccines-aim to stimulate tumor-specific immunity. Though clinical success has been limited, ongoing research is refining vaccine formulations, integrating combination therapies, and identifying biomarkers for improved patient stratification.
Future advancements in BC treatment will depend on optimizing immunotherapy through biomarker-driven approaches, addressing tumor heterogeneity, and developing innovative combination therapies to overcome resistance. By leveraging these strategies, researchers aim to enhance treatment efficacy and ultimately improve patient outcomes.
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