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Rapid Multilevel Compartmentalization of Stable All-Aqueous Blastosomes by Interfacial Aqueous-Phase Separation

  • Shipei Zhu
  • , Joe Forth
  • , Ganhua Xie
  • , Youchuang Chao
  • , Jingxuan Tian
  • , Thomas P. Russell*
  • , Ho Cheung Shum*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Producing artificial multicellular structures to process multistep cascade reactions and mimic the fundamental aspects of living systems is an outstanding challenge. Highly biocompatible, artificial systems consisting of all-aqueous, compartmentalized multicellular systems have yet to be realized. Here, a rapid multilevel compartmentalization of an all-aqueous system where a 3D sheet of subcolloidosomes encloses a mother colloidosome by interfacial phase separation is demonstrated. These spatially organized multicellular structures are termed "blastosomes" since they are similar to blastula in appearance. The barrier to nanoparticle assembly at the water−water interface is overcome using oppositely charged polyelectrolytes that form a coacervate−nanoparticle−composite network. The conditions required to trigger interfacial phase separation and form blastosomes are quantified in a mapped state diagram. We show a versatile model for constructing artificial multicellular spheroids in all-aqueous systems. The rapid interfacial assembly of charged particles and polyelectrolytes can lock in nonequilibrium shapes of water, which also enables top-down technologies, such as 3D printing and microfluidics, to program flexible compartmentalized structures. © 2020 American Chemical Society.
Original languageEnglish
Pages (from-to)11215-11224
JournalACS Nano
Volume14
Issue number9
Online published9 Jun 2020
DOIs
Publication statusPublished - 22 Sept 2020
Externally publishedYes

Funding

This work was partially supported by the Army Research Office under Contract No. W911NF-17-1-0003, the General Research Fund (Nos. HKU 17307919, 17329516, 17304017 and 17305518) from the Research Grants Council of Hong Kong, as well as the Excellent Young Scientists Fund (Hong Kong and Macau) (21922816) from the National Science Foundation of China (NSFC). The ak Dr. Yuan Liu on the device design.

Research Keywords

  • aqueous two-phase system
  • artificial cells
  • compartmentalization
  • nanoparticle surfactant
  • phase separation

RGC Funding Information

  • RGC-funded

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