Living natural materials have remarkable sensing abilities that translate external cues into functional changes of the material. The reconstruction of such sensing materials in bottom-up synthetic biology provides the opportunity to develop synthetic materials with life-like sensing and adaptation ability. Key to such functions are material modules that translate specific input signals into a biomolecular response. Here, we engineer a synthetic organelle based on liquid-liquid phase separation that translates a metabolic signal into the regulation of gene transcription. To this aim, we engineer the pyruvate-dependent repressor PdhR to undergo liquid-liquid phase separation in vitro by fusion to intrinsically disordered regions. We demonstrate that the resulting coacervates bind DNA harboring PdhR-responsive operator sites in a pyruvate dose-dependent and reversible manner. We observed that the activity of transcription units on the DNA was strongly attenuated following recruitment to the coacervates. However, the addition of pyruvate resulted in a reversible and dose-dependent reconstitution of transcriptional activity. The coacervate-based synthetic organelles linking metabolic cues to transcriptional signals represent a materials approach to confer stimulus responsiveness to minimal bottom-up synthetic biological systems and open opportunities in materials for sensor applications.
Metabolite-Responsive Control of Transcription by Phase Separation-Based Synthetic Organelles.
通过基于相分离的合成细胞器实现代谢物响应性转录控制
阅读:11
作者:Jerez-Longres Carolina, Weber Wilfried
| 期刊: | ACS Synthetic Biology | 影响因子: | 3.900 |
| 时间: | 2025 | 起止号: | 2025 Mar 21; 14(3):711-718 |
| doi: | 10.1021/acssynbio.4c00633 | 研究方向: | 代谢、细胞生物学 |
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