Howells Alessandro R, Welch Phoebe J, Kim John, Forest Craig R, Shi Chengzhi, Lian Xiaojun Lance
Department of Biomedical Engineering Pennsylvania State University Pennsylvania USA.
George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta Georgia USA.
Bioeng Transl Med. 2023 Aug 2;9(2):e10584. doi: 10.1002/btm2.10584. eCollection 2024 Mar.
A promising new field of genetically encoded ultrasound contrast agents in the form of gas vesicles has recently emerged, which could extend the specificity of medical ultrasound imaging. However, given the delicate genetic nature of how these genes are integrated and expressed, current methods of producing gas vesicle-expressing mammalian cell lines requires significant cell processing time to establish a clonal/polyclonal line that robustly expresses the gas vesicles sufficiently enough for ultrasound contrast. Here, we describe an inducible and drug-selectable acoustic reporter gene system that can enable gas vesicle expression in mammalian cell lines, which we demonstrate using HEK293T cells. Our drug-selectable construct design increases the stability and proportion of cells that successfully integrate all plasmids into their genome, thus reducing the amount of cell processing time required. Additionally, we demonstrate that our drug-selectable strategy forgoes the need for single-cell cloning and fluorescence-activated cell sorting, and that a drug-selected mixed population is sufficient to generate robust ultrasound contrast. Successful gas vesicle expression was optically and ultrasonically verified, with cells expressing gas vesicles exhibiting an 80% greater signal-to-noise ratio compared to negative controls and a 500% greater signal-to-noise ratio compared to wild-type HEK293T cells. This technology presents a new reporter gene paradigm by which ultrasound can be harnessed to visualize specific cell types for applications including cellular reporting and cell therapies.
一种有前景的新型基因编码超声造影剂——气体囊泡最近出现了,它可以扩展医学超声成像的特异性。然而,鉴于这些基因整合和表达的精细遗传特性,目前生产表达气体囊泡的哺乳动物细胞系的方法需要大量的细胞处理时间来建立一个能够强劲表达足够气体囊泡用于超声造影的克隆/多克隆细胞系。在此,我们描述了一种可诱导且可药物筛选的声学报告基因系统,该系统能够在哺乳动物细胞系中实现气体囊泡表达,我们使用HEK293T细胞进行了验证。我们的可药物筛选构建体设计提高了成功将所有质粒整合到基因组中的细胞的稳定性和比例,从而减少了所需的细胞处理时间。此外,我们证明我们的可药物筛选策略无需单细胞克隆和荧光激活细胞分选,并且经药物筛选的混合群体足以产生强劲的超声造影效果。通过光学和超声验证了气体囊泡的成功表达,与阴性对照相比,表达气体囊泡的细胞的信噪比提高了80%,与野生型HEK293T细胞相比提高了500%。这项技术提出了一种新的报告基因模式,通过该模式可以利用超声来可视化特定细胞类型,用于包括细胞报告和细胞治疗等应用。