RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Advancements in nanomedicines for cancer therapy: targeting molecular signaling pathways, activating immune cells, and using photothermal immunomodulation.
Advancements in nanomedicines for cancer therapy: targeting molecular signaling pathways, activating immune cells, and using photothermal immunomodulation.
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纳米颗粒以其独特的物理化学特性和大表面积而闻名。当这些纳米颗粒被生物活性分子或蛋白质功能化后,它们能够在癌症治疗中实现高效且靶向的应用。纳米技术在癌症治疗中的早期应用主要集中于各种纳米材料的特性,包括有机、无机和生物纳米颗粒。例如,稳定性、大规模合成以及潜在毒性是纳米技术在癌症治疗中应用的关键决定因素。在特定干预方面,纳米技术主要聚焦于靶向失调的癌症信号通路。与此同时,重编程肿瘤相关巨噬细胞、激活T细胞和NK 细胞以及调节细胞因子谱已成为纳米免疫疗法对抗肿瘤生长的关键组成部分。仿生纳米技术,特别是被癌细胞膜包裹的纳米颗粒以及基于二维(2D)纳米材料的光热免疫疗法,已显示出作为癌症免疫治疗新方法的潜力。
然而,联合治疗中的具体空白,如剂量优化和安全性考量,仍有待于在转化研究中加以解决。本综述重点阐述了纳米颗粒调节细胞信号通路和激活免疫细胞的机制性见解,强调基于2D材料的纳米免疫递送系统作为有前景的下一代癌症治疗方法,并特别强调光热疗法有望从临床前推进至临床环境。
Nanoparticles are known for their unique physicochemical characteristics and large surface area. When these nanoparticles are functionalized with bioactive molecules or proteins, they enable highly efficient and targeted applications in cancer therapy. Early applications of nanotechnology in cancer treatment have centered on the properties of various nanomaterials, including organic, inorganic, and biological nanoparticles. For instance, stability, large-scale synthesis, and potential toxicity are crucial determinants of the use of nanotechnology in cancer treatment. For specific intervention, nanotechnology has focused on targeting dysregulated cancer signaling pathways. Concurrently, reprogramming tumor-associated macrophages, activating T and natural killer cells, and modulating cytokine profiles have become key components of nano-immunotherapy in combating tumor growth.
Biomimetic nanotechnology, particularly nanoparticles wrapped in cancer cell membranes and photothermal immunotherapy based on two-dimensional (2D) nanomaterials, has shown potential as a new approach for cancer immunotherapy. Nevertheless, specific gaps in combination therapy, such as dose optimization and safety considerations, remain to be addressed in translational research.
This review highlights mechanistic insights into nanoparticles that modulate cellular signaling pathways and activate immune cells, emphasizing 2D material-based nano-immune delivery systems as promising next-generation cancer treatments, with particular emphasis on photothermal therapy that could advance from preclinical to clinical settings.
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