Directing the Encapsulation of Single Cells with DNA Framework Nucleator‐Based Hydrogel Growth

Author:

Wei Yuhan1,Feng Yueyue1,Wang Kaizhe2,Wei Yuhui3,Li Qian1,Zuo Xiaolei14,Li Bin3,Li Jiang5,Wang Lihua5,Fan Chunhai1ORCID,Zhu Ying5ORCID

Affiliation:

1. School of Chemistry and Chemical Engineering New Cornerstone Science Laboratory Frontiers Science Center for Transformative Molecules Zhangjiang Institute for Advanced Study and National Center for Translational Medicine Shanghai Jiao Tong University 200240 Shanghai China

2. Ningbo Key Laboratory of Biomedical Imaging Probe Materials and Technology Ningbo Cixi Institute of Biomedical Engineering Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences 315300 Ningbo China

3. The Interdisciplinary Research Center Shanghai Synchrotron Radiation Facility Zhangjiang Laboratory Shanghai Advanced Research Institute Chinese Academy of Sciences 201210 Shanghai China

4. Institute of Molecular Medicine Shanghai Key Laboratory for Nucleic Acids Chemistry and Nanomedicine Renji Hospital School of Medicine Shanghai Jiao Tong University 200127 Shanghai China

5. Institute of Materiobiology College of Science Shanghai University 200444 Shanghai China

Abstract

AbstractEncapsulating individual mammalian cells with biomimetic materials holds potential in ex vivo cell culture and engineering. However, current methodologies often present tradeoffs between homogeneity, stability, and cell compatibility. Here, inspired by bacteria that use proteins stably anchored on their outer membranes to nucleate biofilm growth, we develop a single‐cell encapsulation strategy by using a DNA framework structure as a nucleator (DFN) to initiate the growth of DNA hydrogels under cell‐friendly conditions. We find that among the tested structures, the tetrahedral DFN can evenly and stably reside on cell membranes, effectively initiating hybridization chain reactions which generate homogeneously dense yet flexible single‐cell encapsulation for diverse cell lines. The encapsulation persists for up to 72 hours in a serum‐containing cell culture environment, representing a ~70‐fold improvement compared to encapsulations mediated by single‐stranded DNA nucleators. The metabolism and proliferation of the encapsulated cells are suppressed, but can be restored to the original efficiencies upon release, suggesting the superior cell compatibility of the encapsulation. We also find that compared to naked cells, the encapsulated cells exhibit a lower autophagy level after undergoing mechanical stress, suggesting the protective effect of the DNA encapsulation. This method may provide a new tool for ex vivo cell engineering.

Funder

Ministry of Science and Technology of the People's Republic of China

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Tencent

Publisher

Wiley

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