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:Comparison of the Cytotoxicity, Internalization and Anti-Cancer Drug Delivery Efficacy of Nature Killer Cell Derived Nanovesicles and Extracellular Vesicles.
Comparison of the Cytotoxicity, Internalization and Anti-Cancer Drug Delivery Efficacy of Nature Killer Cell Derived Nanovesicles and Extracellular Vesicles.
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挤出法衍生的 NK-NVs 提供了一种低成本、快速、高产量的制备方法,同时可选择性诱导癌细胞产生细胞毒性。
自然杀伤(NK)细胞来源的细胞外囊泡(NK-EV)在肿瘤免疫治疗领域受到广泛关注。然而,NK-EV的大规模生产仍是重大挑战,限制了其临床应用。本研究旨在开发一种简单高效的NK细胞来源纳米囊泡(NK-NV)制备方法,并评估其细胞毒性和药物递送潜力。
本研究通过挤出NK细胞高效制备大量NK-NV。对NK细胞、NK-EV和NK-NV进行全面表征和蛋白质谱分析。评估NK-NV的细胞毒性和细胞摄取,并探究其内化机制。为评估药物递送能力,采用共孵育、超声处理、挤出和电穿孔等多种方法将多柔比星(DOX)装载至NK-NV(NK-NV-DOX)。全面评估NK-NV-DOX的药物装载效率、粒径、稳定性和细胞毒性。
与超速离心分离的NK-EV相比,挤出制备的NK-NV颗粒产量提高402.18倍、蛋白产量提高325.76倍,同时保持相近形态及EV特异性标志物(Alix、TSG101、CD9)。功能上,NK-NV通过小窝蛋白介导的内吞,对癌细胞产生延迟性细胞毒作用,同时选择性保护正常细胞。蛋白质组分析显示,NK-NV与NK细胞共有7,366种蛋白,高于NK-EV的5,326种。此外,挤出优化的NK-NV-DOX表现出pH敏感性药物释放(pH 5.5时释放量高30%),在4种癌细胞系中显著增强抗癌效果,并可在4°C条件下稳定保留药物长达28天,凸显了其治疗潜力。
挤出制备NK-NV成本低、速度快、产量高,且可选择性地杀伤癌细胞。其pH敏感性药物释放提高了药物装载稳定性。这些优势使NK-NV成为肿瘤免疫治疗和药物递送的有前景、可规模化平台,具有显著临床潜力。
Natural killer (NK) cell-derived extracellular vesicles (NK-EVs) have garnered significant research interest in the field of tumor immunotherapy. However, the large-scale production of NK-EVs remains a major challenge, limiting their clinical application. This study aims to develop a simple and efficient method for the preparation of NK cell-derived nanovesicles (NK-NVs) and to evaluate their cytotoxicity and drug delivery potential.
In this study, we efficiently produced large quantities of NK-NVs by extruding NK cells. We conducted comprehensive characterization and protein profiling analyses of NK cells, NK-EVs, and NK-NVs. The cytotoxicity and cellular uptake of NK-NVs were evaluated, and the internalization mechanism was explored. To assess the drug delivery capability, doxorubicin (DOX) was loaded into NK-NVs (NK-NVs-DOX) using various loading strategies, including co-incubation, sonication, extrusion, and electroporation. We thoroughly evaluated the drug loading efficiency, particle size, stability, and cytotoxicity of NK-NVs-DOX.
Extrusion-derived NK-NVs exhibited a remarkable 402.18-fold increase in particle yield and a 325.76-fold enhancement in protein yield compared to ultracentrifugation-isolated NK-EVs, while maintaining comparable morphology and EV-specific markers (Alix, TSG101, CD9). Functionally, NK-NVs induced delayed cytotoxicity against cancer cells via caveolin-mediated endocytosis, selectively sparing normal cells. Proteomic analysis revealed that NK-NVs shared 7,366 proteins with NK cells, surpassing the 5,326 proteins found in NK-EVs. Furthermore, extrusion-optimized NK-NVs-DOX demonstrated pH-sensitive drug release (30% higher at pH 5.5), significantly enhanced anti-cancer effects across four cancer cell lines, and stable drug retention for up to 28 days at 4 C, highlighting their promising therapeutic potential.
Extrusion-derived NK-NVs offer a low-cost, rapid, and high-yield production method while selectively inducing cytotoxicity in cancer cells. Their pH-sensitive drug release enhances drug loading stability. These advantages establish NK-NVs as a promising and scalable platform for tumor immunotherapy and drug delivery with significant clinical potential.
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