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声孔作用对多泡体和外泌体产生的动态重组的影响。

Dynamic reorganization of multivesicular bodies and exosome production impacted by sonoporation.

机构信息

Department of Biomedical Engineering, University of Michigan, Ann Arbor, MI, USA.

Institute for Quantitative Health Science and Engineering (IQ), Michigan State University, East Lansing, MI, USA.

出版信息

Sci Rep. 2024 Nov 9;14(1):27432. doi: 10.1038/s41598-024-79042-6.

Abstract

Naturally occurring cell-derived extracellular vesicles (EVs) have emerged as attractive nanocarriers for drug delivery. However, production of large quantities of EVs for clinical applications in a scalable manner remains a significant challenge. This study investigated at the single cell level how sonoporation, or membrane poration produced by ultrasound-induced microbubble cavitation, impacts EV production using mouse macrophage RAW 264.7 cells stably expressing CD63-GFP as a model system. Real-time fluorescence videomicroscopy detected rapid changes in CD63-GFP, a tetraspanin family member highly enriched in intraluminal vesicles tagged with GFP, to track changes in multivesicular bodies (MVBs), which are the cellular compartments where exosomes originate within the cells. Our results revealed distinct dynamic changes in CD63-GFP intensity and distribution in RAW 264.7 cells in terms of response time and duration depending on whether the cells were directly or indirectly impacted by sonoporation, suggesting reorganization of MVBs in response to direct and indirect mechanisms resulted from the mechanical impact of ultrasound pulse on the cells. Analysis of the supernatant from sonoporation-treated RAW 264.7 cells expressing CD63-GFP demonstrated a delayed and sustained increase in the production of CD63-GFP-positive EVs. These results show the robust and detailed effect of sonoporation and reveal insights into sonoporation-induced EV release useful for guiding the application of sonoporation to enhance large-scale EV production.

摘要

天然产生的细胞衍生细胞外囊泡 (EVs) 已成为药物递送的有吸引力的纳米载体。然而,以可扩展的方式大规模生产 EV 用于临床应用仍然是一个重大挑战。本研究在单细胞水平上研究了声孔作用(或超声诱导的微泡空化产生的膜穿孔)如何影响使用稳定表达 CD63-GFP 的小鼠巨噬细胞 RAW 264.7 细胞作为模型系统的 EV 产生。实时荧光视频显微镜检测到 GFP 标记的腔内囊泡高度富集的四跨膜蛋白家族成员 CD63-GFP 的快速变化,以跟踪多泡体 (MVB) 的变化,MVB 是细胞内起源于细胞的外泌体的细胞区室。我们的结果表明,根据细胞是直接还是间接受到声孔作用的影响,RAW 264.7 细胞中 CD63-GFP 强度和分布的变化具有不同的动态变化,反应时间和持续时间不同,这表明 MVB 在直接和间接机制的机械影响下发生重组。对表达 CD63-GFP 的经声孔处理的 RAW 264.7 细胞的上清液进行分析表明,CD63-GFP 阳性 EV 的产生出现延迟和持续增加。这些结果显示了声孔作用的强大和详细影响,并揭示了声孔诱导的 EV 释放的见解,这对于指导声孔作用的应用以增强大规模 EV 生产很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbbb/11550812/c7f4ee9b37d7/41598_2024_79042_Fig1_HTML.jpg

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