间皮素作为癌症免疫治疗的生物标志物和治疗靶点
Mesothelin as Biomarker and Therapeutic Target for Immunotherapy in Cancer.
癌症仍是一个关键的全球健康问题,原因在于发现晚、耐药和高死亡率。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Mesenchymal stem cell-derived lncRNAs NKILA contributes to stemness and chemoresistance by fatty acid oxidation in gastric cancer via miR-485-5p/STAT3.
Mesenchymal stem cell-derived lncRNAs NKILA contributes to stemness and chemoresistance by fatty acid oxidation in gastric cancer via miR-485-5p/STAT3.
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MSC 通过分泌 lncRNA NKILA 增强胃癌细胞的干性和化疗耐药性,而 lncRNA NKILA 通过激活 STAT3 促进脂肪酸氧化。
胃癌(GC)是癌症相关死亡率较高的肿瘤。晚期 GC 患者的主要治疗选择为手术和全身化疗,但 5 年总生存率仅约 30%。
探讨间充质干细胞(MSC)来源长链非编码 RNA(lncRNA)NKILA,是否通过 miR-485-5p/STAT3 通路影响 GC 细胞脂肪酸氧化和化疗耐药。
将 AGS 和 MKN45 GC 细胞系与人骨髓来源 MSC 共培养,并通过流式细胞术确认 MSC 身份(CD73、CD90、CD105 阳性率 >95%;CD34、CD45 阴性)。使用 Transwell 板共培养 72 小时,上室放 MSC,下室放 GC 细胞。转染采用 pcDNA-NKILA、shSTAT3 和 miR-485-5p 模拟物。通过克隆形成、Annexin V/PI 凋亡检测、成球实验和流式细胞术评估细胞增殖、干性及化疗耐药;qPCR 检测 Sox2、Oct4、CD133、LIN28 和 NKILA 表达,Western blot 检测干性标志物蛋白水平。使用荧光素酶报告实验确认 miR-485-5p/STAT3 相互作用,并以生物素标记 RNA pull-down 评估 RNA-蛋白结合。通过 CPT1 活性及 β-氧化速率检测评估脂肪酸氧化,测量 ATP 水平评估 GC 细胞能量状态,并收集本院临床 GC 组织样本进行验证。
MSC 可增强 GC 细胞干性和化疗耐药。MKN45 和 AGS 与 MSC 共培养后,成球能力及 SOX2、Oct4、LIN28、CD133 等癌症干细胞标志物表达显著增加,提示 MSC 促进干细胞样特征。流式细胞术证实,MSC 处理的 GC 细胞中 CD44⁺ 和 CD133⁺ 亚群富集。此外,MSC 共培养减少化疗诱导的凋亡并增强细胞增殖,提示其对化疗耐药具有保护作用。MSC 来源 lncRNA NKILA 进一步促进干性和化疗耐药,提高干细胞标志物表达,并保护细胞免受奥沙利铂和 5-FU 诱导的凋亡。MSC 共培养还诱导 GC 细胞脂肪酸氧化,表现为 CPT1 活性、β-氧化速率和 ATP 水平均升高。NKILA 通过上调 STAT3 介导这些作用;研究证实 STAT3 可调节脂肪酸氧化和化疗耐药。NKILA 与 miR-485-5p 相互作用进一步促进 STAT3 表达和脂肪酸氧化,强化其维持干性和增强化疗耐药的作用。
MSC 通过分泌 lncRNA NKILA 增强 GC 细胞干性和化疗耐药;NKILA 通过激活 STAT3 促进脂肪酸氧化,并调节 miR-485-5p/STAT3 轴,从而提高能量代谢并支持癌症干细胞特征。靶向 NKILA 或 miR-485-5p/STAT3 通路有望成为克服 GC 化疗耐药的治疗策略。
Gastric cancer (GC) is a type of cancer which causes high cancer-related mortality. Surgical operation and systematic chemical therapies are primary choices for the treatment of GC patients with advanced stages, however, the 5-year overall survival is only around 30%. AIM: To investigate the role of mesenchymal stem cell (MSC)-derived long non-coding RNAs (lncRNA) NKILA in fatty acid oxidation and chemoresistance in GC cells, mediated through the miR-485-5p/STAT3 pathway.
GC cell lines (AGS and MKN45) were co-cultured with human bone marrow-derived MSCs were cultured. The MSC identity was confirmed by flow cytometry (CD73, CD90, CD105 > 95% positive, CD34, CD45 negative). Co-culture of GC cells and MSCs was performed in Transwell plates, where MSCs were placed in the upper chamber and GC cells in the lower chamber for 72 hours. For transfections, pcDNA-NKILA vectors, shSTAT3, and miR-485-5p mimics were utilized. Colony formation, apoptosis assays (Annexin V/PI staining), sphere formation, and flow cytometry were performed to evaluate cell proliferation, stemness, and chemoresistance. qPCR was used to analyze gene expression (Sox2, Oct4, CD133, LIN28, NKILA), and Western blotting assessed protein levels of stemness markers. Luciferase reporter assays were conducted to confirm miR-485-5p/STAT3 interactions, and biotin-labeled RNA pulldown was used to assess RNA-protein binding. Fatty acid oxidation was evaluated using a CPT1 activity assay and -oxidation rate detection. ATP levels were measured to assess the energetic status of GC cells. Clinical GC tissue samples were collected from patients at our hospital for validation.
MSCs were found to enhance the stemness and chemoresistance of GC cells. Co-culturing MKN45 and AGS cells with MSCs significantly increased sphere-forming ability and the expression of key cancer stem cell markers (SOX2, Oct4, LIN28, CD133), indicating that MSCs promote stem-like properties. Flow cytometry confirmed an enrichment of CD44+ and CD133+ subpopulations in MSC-treated GC cells. Additionally, MSC co-culture reduced chemotherapy-induced apoptosis and enhanced cell proliferation, suggesting a protective role in chemotherapy resistance. MSC-derived lncRNA NKILA further promoted stemness and chemoresistance, enhancing expression of stem cell markers and protecting cells from oxaliplatin and 5-FU-induced apoptosis. MSC co-culture also induced fatty acid oxidation in GC cells, as shown by increased CPT1 activity, -oxidation rates, and ATP levels. NKILA mediated these effects by upregulating STAT3, which was confirmed to regulate fatty acid oxidation and chemoresistance. NKILA's interaction with miR-485-5p further promoted STAT3 expression and fatty acid oxidation, reinforcing its role in maintaining stemness and enhancing chemoresistance.
MSCs enhance the stemness and chemoresistance of GC cells by secreting lncRNA NKILA, which promotes fatty acid oxidation through STAT3 activation. NKILA modulates the miR-485-5p/STAT3 axis, thereby increasing energy metabolism and supporting cancer stem cell properties. Targeting NKILA or the miR-485-5p/STAT3 pathway offers potential therapeutic strategies to overcome chemoresistance in GC.
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