Grigsby Christopher L, Ho Yi-Ping, Lin Chao, Engbersen Johan F J, Leong Kam W
Department of Biomedical Engineering, Duke University, 136 Hudson Hall, Box 90281, Durham, NC 27708, USA.
Sci Rep. 2013 Nov 6;3:3155. doi: 10.1038/srep03155.
As the designs of polymer systems used to deliver nucleic acids continue to evolve, it is becoming increasingly apparent that the basic bulk manufacturing techniques of the past will be insufficient to produce polymer-nucleic acid nanocomplexes that possess the uniformity, stability, and potency required for their successful clinical translation and widespread commercialization. Traditional bulk-prepared products are often physicochemically heterogeneous and may vary significantly from one batch to the next. Here we show that preparation of bioreducible nanocomplexes with an emulsion-based droplet microfluidic system produces significantly improved nanoparticles that are up to fifty percent smaller, more uniform, and are less prone to aggregation. The intracellular integrity of nanocomplexes prepared with this microfluidic method is significantly prolonged, as detected using a high-throughput flow cytometric quantum dot Förster resonance energy transfer nanosensor system. These physical attributes conspire to consistently enhance the delivery of both plasmid DNA and messenger RNA payloads in stem cells, primary cells, and human cell lines. Innovation in processing is necessary to move the field toward the broader clinical implementation of safe and effective nonviral nucleic acid therapeutics, and preparation with droplet microfluidics represents a step forward in addressing the critical barrier of robust and reproducible nanocomplex production.
随着用于递送核酸的聚合物系统设计不断发展,越来越明显的是,过去的基本批量生产技术将不足以生产出具有成功临床转化和广泛商业化所需的均匀性、稳定性和效力的聚合物-核酸纳米复合物。传统批量制备的产品在物理化学性质上往往是异质的,并且批次之间可能存在显著差异。在此,我们表明,使用基于乳液的液滴微流控系统制备可生物还原的纳米复合物可显著改善纳米颗粒,其尺寸减小多达50%,更均匀,且不易聚集。使用高通量流式细胞仪量子点Förster共振能量转移纳米传感器系统检测发现,用这种微流控方法制备的纳米复合物在细胞内的完整性显著延长。这些物理特性共同作用,持续增强了质粒DNA和信使RNA在干细胞、原代细胞和人类细胞系中的递送。加工方面的创新对于推动该领域朝着更广泛临床应用安全有效的非病毒核酸疗法发展是必要的,而用液滴微流控技术进行制备代表了在解决稳健且可重复的纳米复合物生产这一关键障碍方面向前迈出的一步。