Bogatyr Vadim G, Wuite Gijs J L
Department of Physics and Astronomy and LaserLab, Faculty of Science, Vrije Universiteit, Amsterdam, Netherlands.
QRB Discov. 2025 Jan 3;6:e5. doi: 10.1017/qrd.2024.27. eCollection 2025.
Synthetic biology aims to create a viable synthetic cell. However, to achieve this goal, it is essential first to gain a profound understanding of the cellular systems used to build that cell, how to reconstitute those systems in the compartments, and how to track their function. Transcription and translation are two vital cellular systems responsible for the production of RNA and, consequently, proteins, without which the cell would not be able to maintain itself or fulfill its functions. This review discusses in detail how the Protein synthesis Using Recombinant Element (PURE) system and cell lysate are used to reconstitute transcription-translation in vitro. Furthermore, it examines how these systems can be encapsulated in GUVs using the existing methods. It also assesses approaches available to image transcription and translation with a diverse arsenal of fluorescence microscopy techniques and a broad collection of probes developed in recent decades. Finally, it highlights solutions for the challenge ahead, namely the decoupling of the two systems in PURE, and discusses the prospects of synthetic biology in the modern world.
合成生物学旨在创造一个可行的合成细胞。然而,要实现这一目标,首先必须深入了解用于构建该细胞的细胞系统、如何在隔室中重构这些系统以及如何追踪它们的功能。转录和翻译是两个至关重要的细胞系统,负责RNA的产生以及蛋白质的合成,没有这些,细胞将无法维持自身或履行其功能。本综述详细讨论了如何利用重组元件蛋白质合成(PURE)系统和细胞裂解物在体外重构转录-翻译过程。此外,还研究了如何使用现有方法将这些系统封装在巨型单层囊泡(GUVs)中。同时评估了利用近几十年来开发的各种荧光显微镜技术和大量探针来对转录和翻译进行成像的可用方法。最后,强调了应对未来挑战的解决方案,即PURE中两个系统的解耦,并讨论了合成生物学在现代世界的前景。