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测量细胞模拟的巨型单室脂质体中的包封效率。

Measuring Encapsulation Efficiency in Cell-Mimicking Giant Unilamellar Vesicles.

机构信息

Department of Chemistry, Imperial College London, London W12 0BZ, U.K.

Department of Surgery & Cancer, Imperial College London, London W12 0HS, U.K.

出版信息

ACS Synth Biol. 2023 Apr 21;12(4):1227-1238. doi: 10.1021/acssynbio.2c00684. Epub 2023 Mar 28.

Abstract

One of the main drivers within the field of bottom-up synthetic biology is to develop artificial chemical machines, perhaps even living systems, that have programmable functionality. Numerous toolkits exist to generate giant unilamellar vesicle-based artificial cells. However, methods able to quantitatively measure their molecular constituents upon formation is an underdeveloped area. We report an artificial cell quality control (AC/QC) protocol using a microfluidic-based single-molecule approach, enabling the absolute quantification of encapsulated biomolecules. While the measured average encapsulation efficiency was 11.4 ± 6.8%, the AC/QC method allowed us to determine encapsulation efficiencies vesicle, which varied significantly from 2.4 to 41%. We show that it is possible to achieve a desired concentration of biomolecule within each vesicle by commensurate compensation of its concentration in the seed emulsion. However, the variability in encapsulation efficiency suggests caution is necessary when using such vesicles as simplified biological models or standards.

摘要

自下而上的合成生物学领域的主要驱动力之一是开发具有可编程功能的人工化学机器,甚至可能是活体系统。目前已经存在许多工具包来生成基于巨大的单层囊泡的人工细胞。然而,能够在形成后定量测量其分子成分的方法尚处于欠发达阶段。我们报告了一种使用基于微流控的单分子方法的人工细胞质量控制(AC/QC)方案,该方法能够对封装的生物分子进行绝对定量。虽然测量的平均封装效率为 11.4±6.8%,但 AC/QC 方法允许我们确定囊泡的封装效率,其变化范围从 2.4%到 41%。我们表明,通过在种子乳液中相应地补偿生物分子的浓度,可以在每个囊泡中实现所需的生物分子浓度。然而,封装效率的可变性表明,在将此类囊泡用作简化的生物模型或标准时,需要谨慎。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34d2/10127275/e0f43d488896/sb2c00684_0002.jpg

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