A multiplexed microfluidic continuous-flow electroporation system for efficient cell transfection

IF 3 4区 医学 Q3 ENGINEERING, BIOMEDICAL Biomedical Microdevices Pub Date : 2024-01-09 DOI:10.1007/s10544-023-00692-w
Jacob A. VanderBurgh, Grant T. Corso, Stephen L. Levy, Harold G. Craighead
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Abstract

Cellular therapies have the potential to advance treatment for a broad array of diseases but rely on viruses for genetic reprogramming. The time and cost required to produce viruses has created a bottleneck that constricts development of and access to cellular therapies. Electroporation is a non-viral alternative for genetic reprogramming that bypasses these bottlenecks, but current electroporation technology suffers from low throughput, tedious optimization, and difficulty scaling to large-scale cell manufacturing. Here, we present an adaptable microfluidic electroporation platform with the capability for rapid, multiplexed optimization with 96-well plates. Once parameters are optimized using small volumes of cells, transfection can be seamlessly scaled to high-volume cell manufacturing without re-optimization. We demonstrate optimizing transfection of plasmid DNA to Jurkat cells, screening hundreds of different electrical waveforms of varying shapes at a speed of ~3 s per waveform using ~20 µL of cells per waveform. We selected an optimal set of transfection parameters using a low-volume flow cell. These parameters were then used in a separate high-volume flow cell where we obtained similar transfection performance by design. This demonstrates an alternative non-viral and economical transfection method for scaling to the volume required for producing a cell therapy without sacrificing performance. Importantly, this transfection method is disease-agnostic with broad applications beyond cell therapy.

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用于高效细胞转染的多重微流体连续流电穿孔系统。
细胞疗法有可能推动多种疾病的治疗,但需要依赖病毒进行基因重编程。生产病毒所需的时间和成本造成了瓶颈,制约了细胞疗法的开发和使用。电穿孔是基因重编程的非病毒替代方法,可以绕过这些瓶颈,但目前的电穿孔技术存在吞吐量低、优化繁琐、难以扩展到大规模细胞制造等问题。在这里,我们展示了一种适应性强的微流体电穿孔平台,该平台能够利用 96 孔板进行快速、多重优化。一旦使用少量细胞优化了参数,转染就可以无缝扩展到大批量细胞生产,而无需重新优化。我们演示了优化质粒 DNA 转染 Jurkat 细胞的过程,筛选了数百种不同形状的电波形,每个波形使用 ~20 µL 细胞,每个波形的速度为 ~3 s。我们使用低容量流动池选出了一组最佳转染参数。然后将这些参数用于另一个高容量流动池,通过设计获得了类似的转染性能。这展示了一种替代性的非病毒经济转染方法,可在不牺牲性能的前提下将转染量扩大到生产细胞疗法所需的容量。重要的是,这种转染方法与疾病无关,在细胞疗法之外也有广泛的应用。
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来源期刊
Biomedical Microdevices
Biomedical Microdevices 工程技术-工程:生物医学
CiteScore
6.90
自引率
3.60%
发文量
32
审稿时长
6 months
期刊介绍: Biomedical Microdevices: BioMEMS and Biomedical Nanotechnology is an interdisciplinary periodical devoted to all aspects of research in the medical diagnostic and therapeutic applications of Micro-Electro-Mechanical Systems (BioMEMS) and nanotechnology for medicine and biology. General subjects of interest include the design, characterization, testing, modeling and clinical validation of microfabricated systems, and their integration on-chip and in larger functional units. The specific interests of the Journal include systems for neural stimulation and recording, bioseparation technologies such as nanofilters and electrophoretic equipment, miniaturized analytic and DNA identification systems, biosensors, and micro/nanotechnologies for cell and tissue research, tissue engineering, cell transplantation, and the controlled release of drugs and biological molecules. Contributions reporting on fundamental and applied investigations of the material science, biochemistry, and physics of biomedical microdevices and nanotechnology are encouraged. A non-exhaustive list of fields of interest includes: nanoparticle synthesis, characterization, and validation of therapeutic or imaging efficacy in animal models; biocompatibility; biochemical modification of microfabricated devices, with reference to non-specific protein adsorption, and the active immobilization and patterning of proteins on micro/nanofabricated surfaces; the dynamics of fluids in micro-and-nano-fabricated channels; the electromechanical and structural response of micro/nanofabricated systems; the interactions of microdevices with cells and tissues, including biocompatibility and biodegradation studies; variations in the characteristics of the systems as a function of the micro/nanofabrication parameters.
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