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推进人工纳米细胞器设计以靶向细胞清除活性氧。

Advancing the Design of Artificial Nano-organelles for Targeted Cellular Detoxification of Reactive Oxygen Species.

机构信息

Department of Chemistry, University of Basel, Mattenstrasse 22, 4002 Basel, Switzerland.

NCCR-Molecular Systems Engineering, 4002 Basel, Switzerland.

出版信息

Nano Lett. 2024 Mar 6;24(9):2698-2704. doi: 10.1021/acs.nanolett.3c03888. Epub 2024 Feb 26.

Abstract

Artificial organelles (AnOs) are in the spotlight as systems to supplement biochemical pathways in cells. While polymersome-based artificial organelles containing enzymes to reduce reactive oxygen species (ROS) are known, applications requiring control of their enzymatic activity and cell-targeting to promote intracellular ROS detoxification are underexplored. Here, we introduce advanced AnOs where the chemical composition of the membrane supports the insertion of pore-forming melittin, enabling molecular exchange between the AnO cavity and the environment, while the encapsulated lactoperoxidase (LPO) maintains its catalytic function. We show that HO outside AnOs penetrates through the melittin pores and is rapidly degraded by the encapsulated enzyme. As surface attachment of cell-penetrating peptides facilitates AnOs uptake by cells, electron spin resonance revealed a remarkable enhancement in intracellular ROS detoxification by these cell-targeted AnOs compared to nontargeted AnOs, thereby opening new avenues for a significant reduction of oxidative stress in cells.

摘要

人工细胞器(AnOs)作为补充细胞内生化途径的系统备受关注。虽然已经有基于聚合物囊泡的人工细胞器包含酶来减少活性氧(ROS),但需要控制其酶活性和细胞靶向以促进细胞内 ROS 解毒的应用仍未得到充分探索。在这里,我们介绍了先进的 AnOs,其膜的化学组成支持孔形成蜂毒素的插入,从而使 AnO 腔与环境之间能够进行分子交换,而包封的乳过氧化物酶(LPO)则保持其催化功能。我们表明,HO 在 AnOs 之外穿透蜂毒素孔,并被包封的酶迅速降解。由于细胞穿透肽的表面附着促进了 AnOs 被细胞摄取,电子自旋共振显示这些靶向 AnOs 与非靶向 AnOs 相比,显著增强了细胞内 ROS 的解毒作用,从而为显著降低细胞内的氧化应激开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3596/10921454/ed82136d807f/nl3c03888_0001.jpg

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