Xianhua Lang, Minjun Zou, Kang Wang, Hui Zhao
Membraneless organelles (MLOs) exhibit hierarchical and dynamic architectures essential for cellular regulation, yet recreating such structural complexity synthetically remains a fundamental challenge. Here, we introduce a chemically fueled dissipative reaction network that programs the hierarchical evolution of coacervate droplets through coupled reactions, assembly, and interfacial editing. The system is built on a thiol–thioester exchange that autocatalytically generates surfactant micelles, which subsequently undergo electrostatic complexation to form liquid-like coacervates. A subsequent thiol–disulfide cascade produces an asymmetric aromatic surfactant ( 6 ) that selectively enriches at droplet interfaces via cation−π and π–π interactions. This interfacial adsorption triggers symmetry breaking and cavity nucleation within the droplets. Subsequent interfacial softening, fusion-driven reorganization, and kinetic trapping yield stable multicompartmental architectures, while hydrolysis-mediated dissipation ensures system reversibility. Our work establishes a minimal yet programmable chemical platform that integrates autocatalysis, liquid–liquid phase separation (LLPS), and interfacial remodeling to achieve spatiotemporal control over condensate morphology. Beyond offering a mechanistic model for dissipative phase separation, this system provides a versatile strategy to couple reaction networks with self-assembly, paving the way toward adaptive soft materials with life-like organizational complexity.