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Current treatments after spinal cord injury: Cell engineering, tissue engineering, and combined therapies.脊髓损伤后的当前治疗方法:细胞工程、组织工程及联合疗法。
Smart Med. 2022 Dec 26;1(1):e20220017. doi: 10.1002/SMMD.20220017. eCollection 2022 Dec.
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Advances in drug delivery systems, challenges and future directions.药物递送系统的进展、挑战与未来方向。
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Single cell transcriptomics reveals reduced stress response in stem cells manipulated using localized electric fields.单细胞转录组学揭示了使用局部电场操控的干细胞中应激反应的降低。
Mater Today Bio. 2023 Mar 4;19:100601. doi: 10.1016/j.mtbio.2023.100601. eCollection 2023 Apr.
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Recent Advancements in Electroporation Technologies: From Bench to Clinic.电穿孔技术的最新进展:从实验室到临床。
Annu Rev Biomed Eng. 2023 Jun 8;25:77-100. doi: 10.1146/annurev-bioeng-110220-023800. Epub 2023 Feb 28.
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Cellular Delivery of Large Functional Proteins and Protein-Nucleic Acid Constructs via Localized Electroporation.通过局部电穿孔实现大功能蛋白和蛋白-核酸构建体的细胞递送。
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Highly efficient mRNA delivery with nonlinear microfluidic cell stretching for cellular engineering.利用非线性微流控细胞拉伸实现高效mRNA递送用于细胞工程
Lab Chip. 2023 Mar 28;23(7):1758-1767. doi: 10.1039/d2lc01115h.
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Multiplexed high-throughput localized electroporation workflow with deep learning-based analysis for cell engineering.基于深度学习分析的用于细胞工程的多重高通量定位电穿孔工作流程。
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Deep Learning-Assisted Automated Single Cell Electroporation Platform for Effective Genetic Manipulation of Hard-to-Transfect Cells.深度学习辅助的自动化单细胞电穿孔平台,用于有效遗传操作难转染细胞。
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使用微流控装置将货物机械介导递送至细胞。

Mechanically mediated cargo delivery to cells using microfluidic devices.

作者信息

Mao Zhiyu, Shi Bori, Wu Jinbo, Gao Xinghua

机构信息

Materials Genome Institute, Shanghai University, Shanghai 200444, China.

出版信息

Biomicrofluidics. 2024 Dec 6;18(6):061302. doi: 10.1063/5.0240667. eCollection 2024 Dec.

DOI:10.1063/5.0240667
PMID:39649102
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11624913/
Abstract

Drug delivery technologies, which are a crucial area of research in the field of cell biology, aim to actively or passively deliver drugs to target cells to enhance therapeutic efficacy and minimize off-target effects. In recent years, with advances in drug development, particularly, the increasing demand for macromolecular drugs (e.g., proteins and nucleic acids), novel drug delivery technologies and intracellular cargo delivery systems have emerged as promising tools for cell and gene therapy. These systems include various viral- and chemical-mediated methods as well as physical delivery strategies. Physical methods, such as electroporation and microinjection, have shown promise in early studies but have not been widely adopted due to concerns regarding efficiency and cellular viability. Recently, microfluidic technologies have provided new opportunities for cargo delivery by allowing for precise control of fluid dynamic parameters to achieve efficient and safe penetration of cell membranes, as well as for foreign material transport. Microfluidics-based mechanical delivery methods utilize biophysical phenomena, such as cell constriction and fluid shear, and are associated with high throughput and high transfection efficiency. In this review, we summarize the latest advancements in microfluidic mechanical delivery technologies, and we discuss constriction- and fluid shear-induced delivery strategies. Furthermore, we explore the potential application of artificial intelligence in optimizing cargo delivery technologies, aiming to provide theoretical support and practical guidance for the future development of novel cellular drug delivery technologies.

摘要

药物递送技术是细胞生物学领域的一个关键研究领域,旨在主动或被动地将药物递送至靶细胞,以提高治疗效果并最大限度地减少脱靶效应。近年来,随着药物开发的进展,特别是对大分子药物(如蛋白质和核酸)的需求不断增加,新型药物递送技术和细胞内物质递送系统已成为细胞和基因治疗的有前景的工具。这些系统包括各种病毒介导和化学介导的方法以及物理递送策略。物理方法,如电穿孔和显微注射,在早期研究中显示出了前景,但由于对效率和细胞活力的担忧,尚未得到广泛应用。最近,微流控技术通过精确控制流体动力学参数,实现了细胞膜的高效安全穿透以及外来物质的运输,为物质递送提供了新的机会。基于微流控的机械递送方法利用细胞收缩和流体剪切等生物物理现象,具有高通量和高转染效率。在这篇综述中,我们总结了微流控机械递送技术的最新进展,并讨论了收缩和流体剪切诱导的递送策略。此外,我们探讨了人工智能在优化物质递送技术方面的潜在应用,旨在为新型细胞药物递送技术的未来发展提供理论支持和实践指导。