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◆ Journal of colloid and interface science2026-09-06

Ordered compartmentalization in colloidal microspheres: Design strategies and biomedical applications.

Yixin Cai, Kai Luo, Rong Peng, Kangrui Yuan, Yuqi Li, Chaobo Huang

原始摘要(英文原文)· Original abstract
The rational design of colloidal microspheres with ordered internal compartments represents a frontier challenge in colloid and interface science, offering unique opportunities to mimic the structural and functional complexity of biological cells. Orange-flap shaped multicompartmental microspheres (OFMM) exemplify this platform by featuring radially separated, geometrically uniform compartments that enable precise spatial control over multi-enzyme cascade reactions, directional inter-compartmental signal transduction, and programmed payload release. Unlike conventional core-shell or randomly distributed multi-core colloidal carriers, OFMM provide structural regularity and functional synergy, establishing them as a novel class of soft colloidal materials with biomimetic capabilities. The gas-shearing method has emerged as a green, oil-free, and high-throughput fabrication technology that overcomes the limitations of traditional microfluidic approaches by harnessing gas-liquid interfacial shear forces and Rayleigh-Plateau instability to drive controlled droplet breakup. Rational manipulation of nozzle geometry, gas flow dynamics, solution viscoelasticity, and ionic crosslinking enables precise control over compartment number (2-10), particle size (50-900 μm), and inter-compartment volume ratios. These parameters collectively dictate multi-active payload loading, cascade reaction efficiency, and release kinetics. This review systematically integrates the fundamental principles of OFMM structural design, the interfacial physicochemical processes underlying gas-shearing fabrication, bio-based material strategies for compartmental functionalization, and their conceptually novel applications in glucose-responsive drug delivery, reactive oxygen species scavenging, multichannel fluorescence encoding, and magnetically actuated microrobots. This review further outlines future directions encompassing nanoscale OFMM (<500 nm), machine learning-assisted multiphysics modeling of interfacial dynamics, and dynamically adaptive colloidal systems, thereby advancing the theoretical framework for next-generation intelligent biomimetic microsystems.
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Ordered compartmentalization in colloidal microspheres: Design strategies and biomedical applications. — 科研速览 Science Skim