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纳米结构掩蔽的细胞穿透肽的外部触发激活

Externally Triggered Activation of Nanostructure-Masked Cell-Penetrating Peptides.

作者信息

Shim Gayong

机构信息

School of Systems Biomedical Science, Soongsil University, Seoul 06978, Republic of Korea.

Integrative Institute of Basic Sciences, Soongsil University, Seoul 06978, Republic of Korea.

出版信息

Molecules. 2025 Jul 30;30(15):3205. doi: 10.3390/molecules30153205.

Abstract

Cell-penetrating peptides offer a promising strategy for intracellular delivery; however, non-specific uptake and off-target cytotoxicity limit their clinical utility. To address these limitations, a cold atmospheric plasma-responsive delivery platform was developed in which the membrane activity of a peptide was transiently suppressed upon complexation with a DNA-based nanostructure. Upon localized plasma exposure, DNA masking was disrupted, restoring the biological functions of the peptides. Transmission electron microscopy revealed that the synthesized DNA nanoflower structures were approximately 150-250 nm in size. Structural and functional analyses confirmed that the system remained inert under physiological conditions and was rapidly activated by plasma treatment. Fluorescence recovery, cellular uptake assays, and cytotoxicity measurements demonstrated that the peptide activity could be precisely controlled in both monolayer and three-dimensional spheroid models. This externally activatable nanomaterial-based system enables the spatial and temporal regulation of peptide function without requiring biochemical triggers or permanent chemical modifications. This platform provides a modular strategy for the development of potential peptide therapeutics that require precise control of activation in complex biological environments.

摘要

细胞穿透肽为细胞内递送提供了一种有前景的策略;然而,非特异性摄取和脱靶细胞毒性限制了它们的临床应用。为了解决这些限制,开发了一种冷大气等离子体响应递送平台,其中肽与基于DNA的纳米结构复合后,其膜活性被瞬时抑制。在局部等离子体暴露后,DNA掩蔽被破坏,肽的生物学功能得以恢复。透射电子显微镜显示,合成的DNA纳米花结构尺寸约为150-250nm。结构和功能分析证实,该系统在生理条件下保持惰性,并通过等离子体处理迅速激活。荧光恢复、细胞摄取测定和细胞毒性测量表明,在单层和三维球体模型中都可以精确控制肽的活性。这种基于外部可激活纳米材料的系统能够在不需要生化触发或永久化学修饰的情况下,对肽的功能进行空间和时间调控。该平台为开发在复杂生物环境中需要精确控制激活的潜在肽疗法提供了一种模块化策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1356/12348051/80adfd23a14d/molecules-30-03205-sch001.jpg

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