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April 13, 2026Angewandte Chemie0 citationsOpen Access

Reconfiguration of Multiphase Coacervate Droplets Into Self‐Regulated Nested Artificial Cells

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ZYZhuping YinRSRui SunUniversity of BristolJSJingxin ShaoEindhoven University of Technology

Key Points

  • The research aims to create artificially structured cells that can self-regulate and respond to environmental changes.
  • Constructed nested coacervate vesicles from multiphase coacervate droplets.
  • Developed semipermeable shell structures while maintaining internal droplets.
  • Incorporated fluorescent dyes, enzymes, and nanoparticles to study internal organization.
  • Assessed temperature-dependent aggregation and feedback mechanisms.
  • Artificial cells showed effective internal segregation of components.
  • Demonstrated successful self-regulation in photothermal transitions.
  • Exhibited feedback-mediated photocatalysis and organized internal cargoes.
  • Maintained morphological stability under varied conditions.

Abstract

ABSTRACT Dynamic sub‐compartmentalization and internal organization are important assets of living cells to control functional complexity. Mimicking these features in artificial cells provides a platform to effectively respond to external cues by changing internal structure, thereby emulating life‐like behavior. Here, we present a strategy to construct sub‐compartmentalized artificial cells by converting multiphase coacervate droplets (MCDs) into nested coacervate vesicles (NCVs), in which the outer host domain is electrostatically reconfigured into a continuous semipermeable shell, while the internal guest droplets are preserved. The generated artificial cells exhibit spatial segregation of coacervate constituents and encapsulated fluorescent dyes, enzymes, and gold nanoparticles, and remain morphologically stable under different conditions. The membranized artificial cells display artificial metabolic features by means of poly( N ‐isopropylacrylamide) (PNIPAAm) synthesis and subsequent temperature‐dependent aggregation, leading to emergent behavior including self‐regulated photothermal transitions, feedback‐mediated photocatalysis, and spatiotemporal organization of internal cargoes. Overall, our approach establishes a robust artificial cell platform that combines sub‐compartmentalization with self‐regulating properties, integrating functionality with structural complexity.

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Cite This Study

Yin et al. (2026) studied this question.

synapsesocial.com/papers/69dc88d83afacbeac03eaa2ehttps://doi.org/10.1002/ange.9334343
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