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Generation of mouse induced pluripotent stem cells without viral vectors.无病毒载体诱导产生小鼠诱导多能干细胞。
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Induced pluripotent stem cells generated without viral integration.无病毒整合产生的诱导多能干细胞。
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Irreversible electroporation attenuates neointimal formation after angioplasty.不可逆电穿孔可减轻血管成形术后的新生内膜形成。
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Hypoxia-inducible factor-1alpha regulates matrix metalloproteinase-1 activity in human bone marrow-derived mesenchymal stem cells.缺氧诱导因子-1α调节人骨髓间充质干细胞中基质金属蛋白酶-1的活性。
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Gene transfer device utilizing micron-spiked electrodes produced by the self-organization phenomenon of Fe-alloy.利用铁合金自组织现象产生的微米尖刺电极的基因转移装置。
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Microfluidic electroporation for selective release of intracellular molecules at the single-cell level.用于在单细胞水平上选择性释放细胞内分子的微流控电穿孔技术。
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微尺度电穿孔:临床应用的挑战与展望。

Microscale electroporation: challenges and perspectives for clinical applications.

机构信息

Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115, USA.

出版信息

Integr Biol (Camb). 2009 Mar;1(3):242-51. doi: 10.1039/b819201d. Epub 2009 Jan 29.

DOI:10.1039/b819201d
PMID:20023735
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3771519/
Abstract

Microscale engineering plays a significant role in developing tools for biological applications by miniaturizing devices and providing controllable microenvironments for in vitro cell research. Miniaturized devices offer numerous benefits in comparison to their macroscale counterparts, such as lower use of expensive reagents, biomimetic environments, and the ability to manipulate single cells. Microscale electroporation is one of the main beneficiaries of microscale engineering as it provides spatial and temporal control of various electrical parameters. Microscale electroporation devices can be used to reduce limitations associated with the conventional electroporation approaches such as variations in the local pH, electric field distortion, sample contamination, and the difficulties in transfecting and maintaining the viability of desired cell types. Here, we present an overview of recent advances of the microscale electroporation methods and their applications in biology, as well as current challenges for its use for clinical applications. We categorize microscale electroporation into microchannel and microcapillary electroporation. Microchannel-based electroporation can be used for transfecting cells within microchannels under dynamic flow conditions in a controlled and high-throughput fashion. In contrast, microcapillary-based electroporation can be used for transfecting cells within controlled reaction chambers under static flow conditions. Using these categories we examine the use of microscale electroporation for clinical applications related to HIV-1, stem cells, cancer and other diseases and discuss the challenges in further advancing this technology for use in clinical medicine and biology.

摘要

微尺度工程通过缩小设备并为体外细胞研究提供可控的微环境,在开发生物学应用工具方面发挥着重要作用。与宏观设备相比,微缩设备具有许多优势,例如可以减少昂贵试剂的使用、提供仿生环境以及操纵单细胞的能力。微尺度电穿孔是微尺度工程的主要受益者之一,因为它可以对各种电参数进行时空控制。微尺度电穿孔设备可用于减少与传统电穿孔方法相关的限制,例如局部 pH 值变化、电场失真、样品污染以及转染和维持所需细胞类型活力的困难。在这里,我们概述了微尺度电穿孔方法的最新进展及其在生物学中的应用,以及其在临床应用中的当前挑战。我们将微尺度电穿孔分为微通道和微管电穿孔。基于微通道的电穿孔可用于在受控的高通量条件下在微通道内转染细胞,而基于微管的电穿孔可用于在静态流动条件下在受控反应室内转染细胞。使用这些类别,我们研究了微尺度电穿孔在与 HIV-1、干细胞、癌症和其他疾病相关的临床应用中的用途,并讨论了进一步推进该技术在临床医学和生物学中的应用所面临的挑战。