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朝着自我再生迈进:在使用重组元件的无细胞转录-翻译系统(PURE)中探索蛋白质合成的极限。

Towards Self-regeneration: Exploring the Limits of Protein Synthesis in the Protein Synthesis Using Recombinant Elements (PURE) Cell-free Transcription-Translation System.

机构信息

Institute of Bioengineering, School of Engineering, École Polytechnique Fédérale de Lausanne, Lausanne 1015, Switzerland.

出版信息

ACS Synth Biol. 2024 Aug 16;13(8):2555-2566. doi: 10.1021/acssynbio.4c00304. Epub 2024 Jul 27.

Abstract

Self-regeneration is a key function of living systems that needs to be recapitulated to create a living synthetic cell. A major limiting factor for protein self-regeneration in the PURE cell-free transcription-translation system is its high protein concentration, which far exceeds the system's protein synthesis rate. Here, we were able to drastically reduce the nonribosomal PURE protein concentration up to 97.3% while increasing protein synthesis efficiency. Although crowding agents were not effective in the original PURE formulation, we found that in highly dilute PURE formulations, addition of 6% dextran considerably increased protein synthesis rate and total protein yield. These new PURE formulations will be useful for many cell-free synthetic biology applications, and we estimate that PURE can now support the complete self-regeneration of all 36 nonribosomal proteins, which is a critical step toward the development of a universal biochemical constructor and living synthetic cell.

摘要

自我再生是生命系统的关键功能,需要被再现以创建一个活的合成细胞。在 PURE 无细胞转录-翻译系统中,蛋白质自我再生的一个主要限制因素是其高浓度的蛋白质,远远超过了系统的蛋白质合成速率。在这里,我们能够将非核糖体 PURE 蛋白质浓度降低到 97.3%,同时提高蛋白质合成效率。虽然在原始的 PURE 配方中,拥挤剂没有效果,但我们发现,在高度稀释的 PURE 配方中,添加 6%的葡聚糖可以显著提高蛋白质合成速率和总蛋白质产量。这些新的 PURE 配方将对许多无细胞合成生物学应用有用,我们估计 PURE 现在可以支持所有 36 个非核糖体蛋白质的完全自我再生,这是开发通用生化构建器和活的合成细胞的关键步骤。

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