Programmable DNA Nanocages Enable Adaptive Spatiotemporal Organization of Biomimetic Organelle Networks

P Pengyan Hao (Institute of Analytical Chemistry and Instrument for Life Science The Key Laboratory of Biomedical Information Engineering of Ministry of Education School of Life Science and Technology Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China) X Xiaoya Sun (Chongqing University , , ,) L Liqiong Niu (Institute of Analytical Chemistry and Instrument for Life Science The Key Laboratory of Biomedical Information Engineering of Ministry of Education School of Life Science and Technology Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China) Y Yuanyuan Luo (Institute for atmospheric and earth system research (INAR/physics)) D Di Lu B Biwu Liu (Institute of Analytical Chemistry and Instrument for Life Science, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology) N Na Wu (School of Chemistry and Chemical Engineering) Y Yongxi Zhao (Institute of Analytical Chemistry and Instrument for Life Science, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology)

Abstract

Abstract Synthetic organelles have emerged to simulate the multicompartmental organization and communication within cells. However, current synthetic organelles (e.g., lipid vesicles and polymer‐based assemblies) often suffer from insufficient structural stability and lack adaptive feedback mechanisms due to the absence of support and dynamic regulation by natural cytoskeletal proteins, which limits the construction of autonomous communication networks. Here, we present a modular and programmable DNA nanocage strategy for constructing stable and adaptive synthetic organelle networks. Using extracellular vesicles (EVs) as a model, we anchored tetrahedral DNA frameworks (TDNs) on the EV surface and assembled a mechanically reinforced biomimetic DNA nanocage via palindromic hybridization chain reaction (PHCR), thereby significantly enhancing vesicle stability and effectively preventing membrane fusion upon contact. The modular design enables the integration of logic‐gated DNA elements as dynamic contact sites, allowing environment‐responsive reconfiguration of inter‐artificial‐organelle spatial organization and signaling. This work provides a customizable platform for constructing artificial organelles with adaptive feedback regulation, offering broad potential in synthetic biology, biomedical applications, and smart material design.

Article Details

Volume / Issue Vol. 64, Issue 39
Published September 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

P

Pengyan Hao

Institute of Analytical Chemistry and Instrument for Life Science The Key Laboratory of Biomedical Information Engineering of Ministry of Education School of Life Science and Technology Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China

X

Xiaoya Sun

Chongqing University , , ,

L

Liqiong Niu

Institute of Analytical Chemistry and Instrument for Life Science The Key Laboratory of Biomedical Information Engineering of Ministry of Education School of Life Science and Technology Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China

Y

Yuanyuan Luo

Institute for atmospheric and earth system research (INAR/physics)

D

Di Lu

B

Biwu Liu

Institute of Analytical Chemistry and Instrument for Life Science, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology

N

Na Wu

School of Chemistry and Chemical Engineering

Y

Yongxi Zhao

Institute of Analytical Chemistry and Instrument for Life Science, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology