为肝细胞癌武装 GPC3 CAR T 细胞:多少才足够,下一步是什么?
Armouring GPC3 CAR T cells for hepatocellular carcinoma: how much is enough and what comes next?
英文原题:Metabolic Dysfunction-associated Steatotic Liver Disease Diminishes the Efficacy of miR-125b-5p-engineered MSC Therapy for Hepatocellular Carcinoma via HK2 Upregulation: A Multimodal Theranostic Study.
多基因修饰的 MSC 可实现有效的、经 MRI 监测的 HCC 治疗。
背景与目的:肝细胞癌(HCC)仍是癌症相关死亡的主要原因之一,亟需有效治疗。miR-125b-5p虽显示治疗潜力,但其治疗代谢功能障碍相关脂肪性肝病(MASLD)相关HCC的效果及机制尚不清楚。本研究旨在开发可通过磁共振成像(MRI)追踪的miR-125b-5p工程化间充质干细胞(MSC)平台用于HCC治疗,并确定MASLD是否通过代谢重编程削弱其抗肿瘤疗效。 方法:对骨髓MSC进行基因工程改造,使其共表达治疗基因miR-125b-5p及MRI报告基因铁蛋白重链(Fth),实现持续递送和实时追踪。建立合并或不合并MASLD的原位HCC模型以评估治疗结局,并通过体内MRI、组织学分析和生物信息学方法评估疗效与机制。 结果:移植miR-125b-5p-Fth-MSC可在较长时间内显著抑制体内HCC生长,但MASLD会减弱这一疗效。机制方面,miR-125b-5p直接靶向己糖激酶2(HK2),通过抑制PI3K/AKT/mTOR通路降低HCC细胞增殖和迁移。脂肪酸诱导的脂毒性会上调HK2表达,从而抵消miR-125b-5p的抗肿瘤作用。 结论:多基因修饰MSC可用于有效且由MRI监测的HCC治疗。MASLD通过上调HK2降低miR-125b-5p疗效。这些发现为HCC建立了多模态诊疗框架,并揭示了MASLD相关治疗耐药的机制。
BACKGROUND AND AIMS: Hepatocellular carcinoma (HCC) remains a leading cause of cancer-related mortality, underscoring the need for effective therapies. Although miR-125b-5p shows therapeutic potential, its efficacy in metabolic dysfunction-associated steatotic liver disease (MASLD)-related HCC and the underlying mechanisms remain unclear. In this study, we aimed to develop a magnetic resonance imaging (MRI)-trackable miR-125b-5p-engineered MSC platform for HCC therapy and to determine whether MASLD attenuates its antitumor efficacy through metabolic reprogramming. METHODS: Bone marrow mesenchymal stem cells (MSCs) were genetically engineered to coexpress miR-125b-5p (a therapeutic gene) and ferritin heavy chain (Fth; a MRI reporter gene), enabling sustained delivery and real-time tracking. Orthotopic HCC models with or without MASLD were established to evaluate therapeutic outcomes. In vivo MRI, histological analyses, and bioinformatics approaches were used to assess efficacy and mechanisms. RESULTS: Transplantation of miR-125b-5p-Fth-MSCs significantly suppressed HCC growth in vivo over an extended period. However, MASLD attenuated this therapeutic effect. Mechanistically, miR-125b-5p directly targeted hexokinase 2 (HK2), inhibiting HCC proliferation and migration through suppression of the PI3K/AKT/mTOR pathway. Fatty acid-induced lipotoxicity upregulated HK2 expression and counteracted the antitumor effects of miR-125b-5p. CONCLUSIONS: Multigene-modified MSCs enable effective, MRI-monitored HCC therapy. MASLD diminishes the efficacy of miR-125b-5p through HK2 upregulation. These findings establish a multimodal theranostic framework for HCC and provide mechanistic insights into MASLD-associated therapeutic resistance.
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