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Updated: Aug 20, 2026

Simple, Affordable, and Modular Patterning of Cells using DNA
Published on: February 24, 2021
Photodictated Programmed Orthogonal DNA Microdroplets Enable Molecular Communication between Transient Self-Sorting
Fengying Yuan1, Jie Zhou1, Zheng Kuang1
1Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing400715, PR China.
None:
Bottom-up construction of artificial cells that exhibit dynamic molecular communication, spatial self-sorting, and dissipative signaling remains a central challenge in synthetic biology. In particular, achieving programmable interactions between orthogonal droplet populations is essential for mimicking complex cytomimetic behaviors. Here, we report a photoguided strategy to selectively program the liquid-liquid phase separation (LLPS) of two orthogonal DNA droplet populations assembled from DNA Y-motifs. Furthermore, the two photoguided DNA droplet species undergo transient fusion upon stimulation, followed by dissipation and reformation. During the fusion process, a rapid molecular exchange between the two Y-motifs leads to dynamic molecular communication between the interacting droplets. Upon dissipation of the fused droplets, the exchanged Y-scaffolds spontaneously resegregate into their original droplet populations, revealing an intrinsic self-sorting capability. Building on this dissipative intercommunication mechanism, we demonstrate a multiread and self-rewriting molecular message encryption platform based on neighboring DNA droplets as proof of concept. This work establishes a programmable framework for engineering communicating membraneless artificial cell mimics using dynamic DNA phase-separated systems.

