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类弹性蛋白多肽凝聚物作为合成细胞的可逆触发隔室。

Elastin-like polypeptide coacervates as reversibly triggerable compartments for synthetic cells.

作者信息

Chen Chang, Ganar Ketan A, de Haas Robbert J, Jarnot Nele, Hogeveen Erwin, de Vries Renko, Deshpande Siddharth

机构信息

Laboratory of Physical Chemistry and Soft Matter, Wageningen University and Research, Stippeneng 4, 6708 WE, Wageningen, The Netherlands.

出版信息

Commun Chem. 2024 Sep 4;7(1):198. doi: 10.1038/s42004-024-01270-8.

Abstract

Compartmentalization is a vital aspect of living cells to orchestrate intracellular processes. In a similar vein, constructing dynamic and responsive sub-compartments is key to synthetic cell engineering. In recent years, liquid-liquid phase separation via coacervation has offered an innovative avenue for creating membraneless organelles (MOs) within artificial cells. Here, we present a lab-on-a-chip system to reversibly trigger peptide-based coacervates within cell-mimicking confinements. We use double emulsion droplets (DEs) as our synthetic cell containers while pH-responsive elastin-like polypeptides (ELPs) act as the coacervate system. We first present a high-throughput microfluidic DE production enabling efficient encapsulation of the ELPs. The DEs are then harvested to perform multiple MO formation-dissolution cycles using pH as well as temperature variation. For controlled long-term visualization and modulation of the external environment, we developed an integrated microfluidic device for trapping and environmental stimulation of DEs, with negligible mechanical force, and demonstrated a proof-of-principle osmolyte-based triggering to induce multiple MO formation-dissolution cycles. In conclusion, our work showcases the use of DEs and ELPs in designing membraneless reversible compartmentalization within synthetic cells via physicochemical triggers. Additionally, presented on-chip platform can be applied over a wide range of phase separation and vesicle systems for applications in synthetic cells and beyond.

摘要

区室化是活细胞协调细胞内过程的一个重要方面。同样,构建动态且响应性的子区室是合成细胞工程的关键。近年来,通过凝聚作用进行的液-液相分离为在人工细胞内创建无膜细胞器(MOs)提供了一条创新途径。在此,我们展示了一种芯片实验室系统,用于在类似细胞的受限环境中可逆地触发基于肽的凝聚物。我们使用双乳液滴(DEs)作为合成细胞容器,而pH响应性弹性蛋白样多肽(ELPs)作为凝聚物系统。我们首先展示了一种高通量微流控DE生产方法,能够高效封装ELPs。然后收获DEs,利用pH和温度变化进行多个MO形成-溶解循环。为了对外部环境进行可控的长期可视化和调节,我们开发了一种集成微流控装置,用于捕获和对DEs进行环境刺激,机械力可忽略不计,并展示了基于渗透压剂的原理验证触发,以诱导多个MO形成-溶解循环。总之,我们的工作展示了利用DEs和ELPs通过物理化学触发在合成细胞内设计无膜可逆区室化。此外,所展示的芯片平台可应用于广泛的相分离和囊泡系统,用于合成细胞及其他领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8655/11374812/c94f072e7cc7/42004_2024_1270_Fig1_HTML.jpg

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