Authors
Yu Liu, Ziyu Huang, Runxing Lin, Yuxin Wang, Shizheng Zhou, Zhichao Ma, Yinning Zhou
Published in
Lab on a chip. Aug 11, 2026. Epub Aug 11, 2026.
Abstract
Precise spatial organization of cells and microparticles is essential for engineering physiologically relevant tissues and in vitro disease models, yet current bioink-based bioprinting approaches still face limitations regarding cell density dilution and crosslinking-induced cellular stress. Here we introduce the FUS-pen system, a template-free, focused ultrasound platform that enables non-contact, flexible and cross-scale manipulation of microparticles and cells with demonstrated biocompatibility. Mechanistic investigations reveal a cooperative interaction where acoustic streaming drives long-range transport and localized acoustic radiation forces achieve near-focus confinement of microparticles, while boundary reflections establish standing-wave-like fields that yield distinct, frequency-dependent swarm dimensions. By optimizing GelMA hydrogel substrates for reliable cell pattern retention and integrating poly-D-lysine (PDL) modification to facilitate electrostatically driven cell interface interactions, we achieved a quantified sub-millimeter feature resolution (∼293 μm line width), consistent geometric spot reproducibility and high cell viability (>94%). As a proof of concept, a compartmentalized tumor-endothelial co-culture layout was successfully established using breast cancer (MCF-7) cells and endothelial (EA.hy926) cells, where endothelial cells exhibited active proliferation and morphological remodeling into capillary-like networks, demonstrating the platform's utility for constructing complex multicellular models. Together, these results establish the FUS-pen as an agile tool for constructing organized in vitro microenvironments with broad implications for disease modeling and drug screening.
PMID:
42576796
Bibliographic data and abstract were imported from PubMed on 11 Aug 2026.
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