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在膜表面构建具有可调节DNA补丁的人工多细胞系统。

Organization of an Artificial Multicellular System with a Tunable DNA Patch on a Membrane Surface.

作者信息

Liu Shuang, Zhang Chunjuan, Li Lexun, Deng Xiaodan, Hu Canqiong, Yang Fan, Liu Qiaoling, Tan Weihong

机构信息

Molecular Science and Biomedicine Laboratory (MBL), State Key Laboratory of Chemo/Biosensing and Chemometrics, FuRong Laboratory, College of Biology, Hunan University, Changsha, Hunan 410082, China.

The Cancer Hospital of the University of Chinese Academy of Sciences (Zhejiang Cancer Hospital), Institute of Basic Medicine and Cancer (IBMC), Chinese Academy of Sciences, Hangzhou, Zhejiang 310022, China.

出版信息

Nano Lett. 2024 Jan 10;24(1):433-440. doi: 10.1021/acs.nanolett.3c04249. Epub 2023 Dec 19.

Abstract

Coordinating multiple artificial cellular compartments into a well-organized artificial multicellular system (AMS) is of great interest in bottom-up synthetic biology. However, developing a facile strategy for fabricating an AMS with a controlled arrangement remains a challenge. Herein, utilizing DNA hybridization chain reaction on the membrane surface, we developed a DNA patch-based strategy to direct the interconnection of vesicles. By tuning the DNA patch that generates heterotrophic adhesion for the attachment of vesicles, we could produce an AMS with higher-order structures straightforwardly and effectively. Furthermore, a hybrid AMS comprising live cells and vesicles was fabricated, and we found the hybrid AMS with higher-order structures arouses efficient molecular transportation from vesicles to living cells. In brief, our work provides a versatile strategy for modulating the self-assembly of AMSs, which could expand our capability to engineer synthetic biological systems and benefit synthetic cell research in programmable manipulation of intercellular communications.

摘要

在自下而上的合成生物学中,将多个人工细胞区室协调成一个组织良好的人工多细胞系统(AMS)备受关注。然而,开发一种用于制造具有可控排列的AMS的简便策略仍然是一项挑战。在此,我们利用膜表面的DNA杂交链反应,开发了一种基于DNA贴片的策略来指导囊泡的互连。通过调整产生异养粘附以实现囊泡附着的DNA贴片,我们可以直接且有效地生产具有高阶结构的AMS。此外,我们构建了一个包含活细胞和囊泡的混合AMS,并且发现具有高阶结构的混合AMS能够引发从囊泡到活细胞的高效分子运输。简而言之,我们的工作为调节AMS的自组装提供了一种通用策略,这可以扩展我们设计合成生物系统的能力,并有益于合成细胞研究中对细胞间通讯的可编程操纵。

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