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酸响应型 H 释放 Fe 纳米颗粒用于安全有效的癌症治疗。

Acid-responsive H-releasing Fe nanoparticles for safe and effective cancer therapy.

机构信息

Laboratory of Living Materials, The State Key Laboratory of Advanced Technology for Marterials Synthesis and Processing, Wuhan University of Technology, 122 Luoshi Road, 430070, Wuhan, China.

出版信息

J Mater Chem B. 2019 May 7;7(17):2759-2765. doi: 10.1039/c9tb00338j. Epub 2019 Apr 1.

Abstract

Hydrogen therapy is an emerging and promising strategy for treatment of inflammation-related diseases owing to the excellent bio-safety of hydrogen molecules (H), but is facing a challenge that the H concentration at the local disease site is hardly accumulated because of its high diffusibility and low solubility, limiting the efficacy of hydrogen therapy. Herein, we propose a nanomedicine strategy of imaging-guided tumour-targeted delivery and tumour microenvironment-triggered release of H to address this issue, and develop a kind of biocompatible carboxymethyl cellulose (CMC)-coated/stabilized Fe (Fe@CMC) nanoparticle with photoacoustic imaging (PAI), tumour targeting and acid responsive hydrogen release properties for cancer therapy. The Fe@CMC nanoparticles have demonstrated high intratumoural accumulation capability, high acid responsiveness, excellent PAI performance, selective cancer-killing effect and high bio-safety in vitro and in vivo. Effective inhibition of tumour growth is achieved by intravenous injection of the Fe@CMC nanoparticles, and the selective anti-cancer mechanism of Fe@CMC is discovered to be originated from the energy metabolism homeostasis regulatory function of the released H. The proposed nanomedicine-mediated hydrogen therapy strategy will open a new window for precise, high-efficacy and safe cancer treatment.

摘要

氢气治疗作为一种新兴且有前途的炎症相关疾病治疗策略,由于氢分子(H)具有优异的生物安全性,但面临着一个挑战,即由于其高扩散性和低溶解度,局部疾病部位的 H 浓度很难积累,限制了氢气治疗的效果。在这里,我们提出了一种成像引导的肿瘤靶向递药和肿瘤微环境触发释放 H 的纳米医学策略,以解决这个问题,并开发了一种具有声动力学成像(PAI)、肿瘤靶向和酸响应性 H 释放性能的生物相容性羧甲基纤维素(CMC)包覆/稳定的 Fe(Fe@CMC)纳米颗粒,用于癌症治疗。Fe@CMC 纳米颗粒在体内外均表现出高的肿瘤内积累能力、高的酸响应性、优异的 PAI 性能、选择性的杀伤癌细胞效果和高的生物安全性。通过静脉注射 Fe@CMC 纳米颗粒实现了有效的肿瘤生长抑制,并且发现 Fe@CMC 的选择性抗癌机制源于释放的 H 的能量代谢稳态调节功能。所提出的纳米医学介导的氢气治疗策略将为精确、高效和安全的癌症治疗开辟新的窗口。

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