CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Biomimetic Nanodrug Prepared by Cell Exocytosis Induces Cancer Stem Cell Differentiation by Attenuating Wnt Signaling Pathway.
Biomimetic Nanodrug Prepared by Cell Exocytosis Induces Cancer Stem Cell Differentiation by Attenuating Wnt Signaling Pathway.
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癌症干细胞(CSC)参与化疗耐药和肿瘤复发,因此是重要的治疗靶点。依据CSC独特的分化能力对其进行靶向,是一种有前景的癌症治疗策略。尽管已有少数基于小分子和纳米材料的分化诱导剂报道,但其特异性有限,引发了对脱靶效应的担忧,尤其是意外诱导正常干细胞分化。近期,间充质干细胞来源的外泌体(MSC-exo)作为药物载体受到关注,因为其保留了亲本细胞特性,可改变不同类型CSC的功能并促使其形成成熟肿瘤细胞。本文通过将MSC与负载顺铂的介孔二氧化硅纳米颗粒共同孵育,开发了一种原位生物合成的MSC-exo纳米药物(E-DDP@MSNs),随后通过超速离心从细胞培养液中分离。在与电穿孔方法相比时,E-DDP@MSNs更完整地保留外泌体内容物,且未发生明显泄漏;该药物可促使CSC分化为更易受化疗作用的成熟肿瘤细胞。
从机制上看,E-DDP@MSN通过将外泌体DKK-1递送至CSC,促进其分化,进而减弱对维持CSC干性、自我更新和致瘤性至关重要的Wnt通路。
总之,E-DDP@MSNs为靶向CSC的分化治疗提供了一种有前景的方法,具有高效且低毒的特点。
Cancer stem cells (CSCs) represent a critical therapeutic target due to their role in chemoresistance and tumor recurrence. Targeting CSCs based on their distinct differentiation ability is a brilliant cancer therapeutic strategy.
Although a few small-molecule and nanomaterial-based differentiation inducers have been reported, their limited specificity raises concerns about off-target effects, particularly the unintended differentiation of normal stem cells. Recently, mesenchymal stem cell-derived exosomes (MSC-exos) have come into focus as drug carriers as they retain parental properties that can alter functionality of CSCs types and produce mature tumor cells.
Herein, an in situ biosynthetic MSC-exos-based nanodrug (E-DDP@MSNs) have been developed by incubating MSCs with cisplatin-loaded mesoporous silica nanoparticles, which are then isolated from the cell culture medium by ultracentrifugation. In contrast to the electroporation, E-DDP@MSNs retain the exosomal contents more completely without significant leakage that can promote the CSCs to differentiate into mature tumor cells, which are more susceptible to chemotherapy.
Mechanistically, E-DDP@MSN promotes the differentiation of CSCs by transporting exosomal DKK-1 into CSCs, thereby causing attenuation of the Wnt pathway that is essential in maintaining stemness, self-renewal, and tumorigenicity of CSCs. In summary, E-DDP@MSNs represent a promising approach for CSC-targeted differentiation therapy, offering high efficacy with minimal toxicity.
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