免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Polypyrrole/iron-glycol chitosan nanozymes mediate M1 macrophages to enhance the X-ray-triggered photodynamic therapy for bladder cancer by promoting antitumor immunity.
Polypyrrole/iron-glycol chitosan nanozymes mediate M1 macrophages to enhance the X-ray-triggered photodynamic therapy for bladder cancer by promoting antitumor immunity.
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X 射线光动力治疗(XPDT)是一种新兴的、穿透深度大且非侵入性的肿瘤治疗方法,能够激发强效的抗肿瘤免疫反应。然而,其疗效常受到治疗递送效率低和肿瘤微环境内免疫抑制的限制。这一问题有望通过利用 X 射线响应性铁-乙二醇壳聚糖-聚吡咯纳米酶(GCS-I-PPy NZs)来加以解决,该纳米酶可激活 M1 巨噬细胞。这些纳米酶可增加肿瘤浸润,并增强巨噬细胞的内在免疫反应及其刺激适应性免疫的能力。作者利用氧化/还原反应设计了具有生物相容性、含光敏剂的 GCS-I-PPy NZs。这些纳米酶被 M1 巨噬细胞内化,形成 RAW-GCS-I-PPy NZs。作者的结果表明,这些工程化巨噬细胞能够有效递送纳米酶,并具有潜在的高肿瘤蓄积能力。在肿瘤微环境中,蓄积的 GCS-I-PPy NZs 接受 X 射线照射,产生活性氧(ROS)。这种 ROS 的增强显著提高了 XPDT 的治疗效果,并协同促进了 T 细胞向肿瘤内的浸润。这些发现表明,纳米工程化 M1 巨噬细胞能够有效增强 XPDT 的免疫效应,为增强癌症免疫治疗提供了一种有前景的策略。GCS-I-PPy NZs 介导 M1 巨噬细胞活化并增加肿瘤浸润的能力,凸显了其在克服当前 XPDT 方法局限性以及改善黑色素瘤和其他癌症治疗结局方面的潜力。
X-ray Photodynamic Therapy (XPDT) is an emerging, deeply penetrating, and non-invasive tumor treatment that stimulates robust antitumor immune responses.
However, its efficacy is often limited by low therapeutic delivery and immunosuppressant within the tumor microenvironment. This challenge can potentially be addressed by utilizing X-ray responsive iron-glycol chitosan-polypyrrole nanozymes (GCS-I-PPy NZs), which activate M1 macrophages. These nanozymes increase tumor infiltration and enhance the macrophages' intrinsic immune response and their ability to stimulate adaptive immunity. Authors have designed biocompatible, photosensitizer-containing GCS-I-PPy NZs using oxidation/reduction reactions.
These nanozymes were internalized by M1 macrophages to form RAW-GCS-I-PPy NZs. Authors' results demonstrated that these engineered macrophages effectively delivered the nanozymes with potentially high tumor accumulation. Within the tumor microenvironment, the accumulated GCS-I-PPy NZs underwent X-ray irradiation, generating reactive oxygen species (ROS). This ROS augmentation significantly enhanced the therapeutic effect of XPDT and synergistically promoted T cell infiltration into the tumor.
These findings suggest that nano-engineered M1 macrophages can effectively boost the immune effects of XPDT, providing a promising strategy for enhancing cancer immunotherapy. The ability of GCS-I-PPy NZs to mediate M1 macrophage activation and increase tumor infiltration highlights their potential in overcoming the limitations of current XPDT approaches and improving therapeutic outcomes in melanoma and other cancers.
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