Division of Molecular Science, Graduate School of Science and Technology, Gunma University, 1-5-1 Tenjin-Cho, Kiryu, Gunma, 376-8515, Japan.
Laboratory for Epigenetics Drug Discovery, RIKEN Center for Biosystems Dynamics Research, 1-7-22 Suehiro-Cho, Tsurumi-Ku, Yokohama, 230-0045, Japan.
Sci Rep. 2024 Feb 3;14(1):2852. doi: 10.1038/s41598-024-53135-8.
To develop artificial cell models that mimic living cells, cell-sized lipid vesicles encapsulating cell-free protein synthesis (CFPS) systems are useful for protein expressions or artificial gene circuits for vesicle-vesicle communications. Therefore, investigating the transcriptional and translational properties of CFPS systems in lipid vesicles is important for maximizing the synthesis and functions of proteins. Although transcription and translation using CFPS systems inside lipid vesicles are more important than that outside lipid vesicles, the former processes are not investigated by changing the lipid composition of lipid vesicles. Herein, we investigated changes in transcription and translation using CFPS systems inside giant lipid vesicles (approximately 5-20 μm in diameter) caused by changing the lipid composition of lipid vesicles containing neutral, positively, and negatively charged lipids. After incubating for 30 min, 1 h, 2 h, and 4 h, the transcriptional and translational activities in these lipid vesicles were determined by detecting the fluorescence intensities of the fluorogenic RNA aptamer on the 3'-untranslated region of mRNA (transcription) and the fluorescent protein sfCherry (translation), respectively. The results revealed that transcriptional and translational activities in a lipid vesicle containing positively charged lipids were high when the protein was synthesized using the CFPS system inside the lipid vesicle. Thus, the present study provides an experimental basis for constructing complex artificial cell models using bottom-up approaches.
为了开发模拟活细胞的人工细胞模型,包封无细胞蛋白质合成 (CFPS) 系统的细胞大小脂质囊泡对于蛋白质表达或用于囊泡-囊泡通信的人工基因电路非常有用。因此,研究 CFPS 系统在脂质囊泡中的转录和翻译特性对于最大限度地提高蛋白质的合成和功能非常重要。尽管 CFPS 系统在脂质囊泡内部的转录和翻译比在脂质囊泡外部更重要,但通过改变脂质囊泡的脂质组成,前者过程尚未得到研究。在此,我们通过改变含有中性、正电荷和负电荷脂质的脂质囊泡的脂质组成,研究了 CFPS 系统在巨大脂质囊泡(直径约 5-20 μm)内部的转录和翻译变化。孵育 30 min、1 h、2 h 和 4 h 后,通过检测 mRNA 3'非翻译区上荧光 RNA 适体的荧光强度(转录)和荧光蛋白 sfCherry(翻译),分别确定这些脂质囊泡中的转录和翻译活性。结果表明,当使用 CFPS 系统在脂质囊泡内部合成蛋白质时,含有正电荷脂质的脂质囊泡中的转录和翻译活性较高。因此,本研究为使用自下而上的方法构建复杂的人工细胞模型提供了实验基础。