Self-buoyant cell-spheroid culture programming multi-spheroid assembly

Tempo-spatially controlled culture and assembly of cellular spheroids are fundamental in engineering tissue-like assembloids for scalable application, yet remain a technical challenge. Here, we show self-buoyant culture of cell spheroids and programmable assembly of multi-spheroid by microbubbles in a high-throughput, external field-free and miniaturized format. This approach allows one-step engineering of biocompatible cell-adhesive buoyancy interface that lifts the self-adaptive levitation growth of reliable one-drop-one-spheroid in an array without requiring any external fields. Using this self-floating spheroidal microarray, we find that a facile droplet ‘kiss’ facilitates the buoyancy-driven ultrafast transfer (∼1 s) of spheroids between top-down adjacent droplets, thus achieving rapid spheroid relocation, media exchange, and drug administration in parallel. Such a self-buoyant approach allows programmable horizontal/vertical bioassembly and enhanced fusion of homo/heterogeneous multi-spheroids into different “buoyantoid” patterns via sequential flash transfer along droplet array. This self-powered design provides a promising tool to enable mass production and smart manipulation of encoded assembloids for precision medicine, tissue engineering and high-throughput drug screening.

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Publication Details

Journal
Science Advances
Published
2026-10-07
DOI
https://doi.org/10.1126/sciadv.aee3306
Primary Topic
3D Printing in Biomedical Research
Type
article
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article

Self-buoyant cell-spheroid culture programming multi-spheroid assembly

Hui Zhao, Xinchun Li, Binqi Wei, Yueyang Sun et al.
Science Advances
3D Printing in Biomedical Research
article

Self-buoyant cell-spheroid culture programming multi-spheroid assembly

Hui Zhao, Xinchun Li, Binqi Wei, Yueyang Sun, Fan Yang, Changfeng Zhu, Yuanhang Xiang, Weifeng Liu, Xiaojie Qin
article en

Abstract

Tempo-spatially controlled culture and assembly of cellular spheroids are fundamental in engineering tissue-like assembloids for scalable application, yet remain a technical challenge. Here, we show self-buoyant culture of cell spheroids and programmable assembly of multi-spheroid by microbubbles in a high-throughput, external field-free and miniaturized format. This approach allows one-step engineering of biocompatible cell-adhesive buoyancy interface that lifts the self-adaptive levitation growth of reliable one-drop-one-spheroid in an array without requiring any external fields. Using this self-floating spheroidal microarray, we find that a facile droplet ‘kiss’ facilitates the buoyancy-driven ultrafast transfer (∼1 s) of spheroids between top-down adjacent droplets, thus achieving rapid spheroid relocation, media exchange, and drug administration in parallel. Such a self-buoyant approach allows programmable horizontal/vertical bioassembly and enhanced fusion of homo/heterogeneous multi-spheroids into different “buoyantoid” patterns via sequential flash transfer along droplet array. This self-powered design provides a promising tool to enable mass production and smart manipulation of encoded assembloids for precision medicine, tissue engineering and high-throughput drug screening.

Science AdvancesVol. 12(41)
Guangxi University (CN), Guangxi Medical University (CN), Shanghai Jiao Tong University (CN), Fudan University (CN), Zhongshan Hospital (CN), East China Normal University (CN), Nanjing Medical University (CN)
Openalex Percentile: Top 23%
3D Printing in Biomedical Research
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Self-buoyant cell-spheroid culture programming multi-spheroid assembly — Hui Zhao, Xinchun Li, et al. · Science Advances (2026) | TGRS Research Map | TGRS