Endosomal Escapable Cryo-Treatment Driven Membrane Encapsulated Ga Liquid-Metal Transformer to Facilitate Intracellular Therapy

Xuelin Wang, Xuedong Li, M. Duan, Shaobo Shan, Xiyu Zhu, Yi Wen Chai, Hongzhang Wang, Xuyang Sun, Lei Sheng, Wei Rao, Liang Hu, Junge Chen, Jing Liu
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引用次数: 3

Abstract

Metallic/nonmetallic shape transformable materials hold big promise for improved intracellular therapy with efficient endosomal escape in tumor treatments. However, until now, there are still rather limited biomedical practices for such materials which are mainly attributed to their inherent uncontrolled morphological transformation, difficult metabolization, accumulated toxicity, non-selective destruction and difficult real-time imaging. In this study, Ga-based liquid metal, with distinct properties of high thermal conductivity, excellent phase transition, injectability, targetability, easy-preparation and biosafety, is found to exhibit remarkable transformation from sphere shape to cactus-like structure in micro-scale under freezing. Particularly, it is revealed that only cell membrane-encapsulated Ga particles (Ga/MPs) display dramatic shape variation in cooling under Cryo-TEM contrasting to pure Ga particles (GaPs). Following that, the cryo-triggered Ga/MPs transformers are designed for effective endosomal escape via physical-mechanical strategy to disrupt endosomal membrane which lead to highly efficient cancer cell killing. Moreover, under in vivo antitumor treatments settings, Ga/MPs exhibit significant tumor growth inhibition and prolonged survival time to evaluate the collaborative efficacy of cryoablation and endosomal escape mechanism, as well high-resolution in vivo CT imaging is achieved. This study opens a favorable and versatile strategy based on Ga particle transformer to assist high-performance precise intracellular therapy in future tumor therapeutics.
内体可逃逸低温处理驱动的膜封装镓液体-金属变压器促进细胞内治疗
金属/非金属形状可转换材料在肿瘤治疗中具有有效的内体逃逸改善细胞内治疗的巨大希望。然而,迄今为止,由于其固有的形态转化不受控制、代谢困难、毒性积累、非选择性破坏和难以实时成像等原因,此类材料的生物医学实践仍然相当有限。本研究发现,ga基液态金属具有高导热性、优异的相变、注射性、靶向性、易制备性和生物安全性等特点,在冷冻条件下,在微观尺度下呈现出由球形向仙人掌状结构的显著转变。特别是,在低温透射电镜下,与纯Ga粒子(gap)相比,只有细胞膜包裹的Ga/MPs在冷却时表现出明显的形状变化。随后,设计了低温触发的Ga/MPs变压器,通过物理-机械策略破坏内体膜,有效地逃离内体,从而高效地杀死癌细胞。此外,在体内抗肿瘤治疗环境下,Ga/MPs表现出明显的肿瘤生长抑制和延长的生存时间,以评估冷冻消融和内体逃逸机制的协同效果,并实现高分辨率的体内CT成像。本研究开辟了一种基于Ga粒子转换器的有利且通用的策略,以协助未来肿瘤治疗中的高性能精确细胞内治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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