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诱饵增强的脂质纳米粒外渗,用于在白血病治疗中向骨髓微环境靶向共递送地西他滨和 siTNF-α

英文原题:Baiting-enhanced extravasation of lipid nanoparticles for targeted co-delivery of decitabine and siTNF-α to the bone marrow niche in leukemia therapy.

PubMed 2026/03/27(内容时间) J Control Release Q1 · IF 12.4(JCR 2025)

研究概要

急性髓系白血病(AML)仍然是一种致命性恶性肿瘤,由于药物生物利用度有限以及保护性骨髓微环境内的治疗耐药性,其预后较差。

中文摘要

急性髓系白血病(AML)仍是一种致命性恶性肿瘤,由于药物生物利用度有限以及保护性骨髓微环境内的治疗耐药,其预后较差。在此,我们提出一种采用“诱饵与外渗”策略的骨髓靶向脂质纳米颗粒,用于共递送缺氧/ROS响应型地西他滨前药和TNF-α siRNA(BIS-LNPs@DCA-siTNF)。BIS-LNPs@DCA-siTNF被设计为具有缺氧可裂解的CXCR4模拟肽以实现CXCL12引导的趋化作用,以及CLL-1靶向配体以实现对白血病细胞的选择性摄取和紧密连接破坏。经优化的制剂具有脂质体包裹的泡状内部结构,表现出高siRNA负载、胶体稳定性以及在缺氧和富ROS条件下的刺激响应性释放,有效模拟了AML微环境。在机制上,TNF-α沉默与地西他滨诱导的细胞毒性协同作用,破坏白血病-脂肪细胞代谢串扰,损害脂肪酸代谢,并促进凋亡和细胞周期阻滞。在原位AML模型中,BIS-LNPs@DCA-siTNF优先蓄积于骨髓,显著降低白血病负荷,并重编程微环境以激发抗白血病免疫,导致骨髓部位CD8+ T、自然杀伤(NK)和自然杀伤T(NKT)细胞浸润增强。此外,BIS-LNPs@DCA-siTNF减弱破骨细胞生成,恢复骨完整性,并改善运动表现。这些结果确立了BIS-LNPs@DCA-siTNF作为一种可编程纳米平台,能够克服药理学和微环境双重屏障,为增强AML治疗提供了一种有前景的方法。

展开英文摘要原文

Acute myeloid leukemia (AML) remains a fatal malignancy with poor prognosis due to limited drug bioavailability and therapeutic resistance within the protective bone marrow niche. Here, we present a bone marrow-targeted lipid nanoparticle employing a "Bait and Extravasation" approach for the co-delivery of a hypoxia/ROS-responsive decitabine prodrug and TNF-α siRNA (BIS-LNPs@DCA-siTNF). BIS-LNPs@DCA-siTNF are engineered with a hypoxia-cleavable CXCR4-mimetic peptide for CXCL12-guided chemotaxis and a CLL-1-targeting ligand for selective leukemia cell uptake and tight junction disruption. Optimized formulations with liposomal-encapsulated bleb-like internal structures exhibited high siRNA loading, colloidal stability, and stimuli-responsive release under hypoxic and ROS-rich conditions, effectively mimicking the AML microenvironment. Mechanistically, TNF-α silencing synergized with decitabine-induced cytotoxicity to disrupt leukemia-adipocyte metabolic crosstalk, impair fatty acid metabolism, and promote apoptosis and cell cycle arrest. In an orthotopic AML model, BIS-LNPs@DCA-siTNF preferentially accumulated in bone marrow, significantly reduced leukemia burden, and reprogrammed the microenvironment to elicit anti-leukemic immunity, leading to enhanced CD8 + T, natural killer (NK), and natural killer T (NKT) cell infiltration in the bone marrow site. Furthermore, BIS-LNPs@DCA-siTNF attenuated osteoclastogenesis, restored bone integrity, and improved locomotor performance. These results establish BIS-LNPs@DCA-siTNF as a programmable nanoplatform that overcomes both pharmacological and microenvironmental barriers, offering a promising approach for enhanced AML therapy.

论文信息

作者
Zhu Y、Li Q、Zhou Y、Wu D、Qin H、Dai J、Lyu Y、Yang L
第一作者单位
Department of Pharmaceutics, China Pharmaceutical University, Nanjing 210009, China.China
通讯作者单位
Department of Pharmaceutics, China Pharmaceutical University, Nanjing 210009, China; NMPA Key Laboratory for Research and Evaluation of Pharmaceutical Preparations and Excipients, China Pharmaceutical University, Nanjing 210009, China; Key Laboratory of Drug Quality Control and Pharmacovigilance, China Pharmaceutical University, Nanjing 210009, China; State Key Laboratory of Natural Medicine, China Pharmaceutical University, Nanjing 210009, China. Electronic address: lifangyin@cpu.edu.cn.China
文献类型
非美国政府资助研究
期刊
Journal of controlled release : official journal of the Controlled Release Society2026 Jun 10
原文标识
PubMed 41905408 · DOI 10.1016/j.jconrel.2026.114874