Related Experiment Video
Updated: Jul 16, 2026

Affordable Oxygen Microscopy-Assisted Biofabrication of Multicellular Spheroids
Published on: April 6, 2022
Spheroids with Artificial Mineral Organelles: Machine-Learning-Assisted Analysis and Control of Mechanical
Anatolii A Abalymov1,2, Louis Van der Meeren3, Bao Hao1,2
1International Institute for Intelligent Nanorobots and Nanosystems & State Key Laboratory of Surface Physics, College of Intelligent Robotics and Advanced Manufacturing, Fudan University, Shanghai 200438, People's Republic of China.
Abstract:
Controlling the balance between structural integration and functional maturation of microtissues remains a central challenge in bone tissue engineering, particularly in the design of composite cell-material constructs. Here, we demonstrate that intracellular loading of preosteoblast cells with submicron vaterite particles serves as a programmable material-based parameter to regulate spheroid behavior. Following controlled pre-loading and assembly into composite spheroids, we systematically quantified particle localization (confocal microscopy, PCC/Manders coefficients, Cellpose-based segmentation), mechanical properties (atomic force microscopy (AFM)), cell viability, osteogenic activity (ALP expression and hydroxyapatite deposition), and spheroid fusion kinetics. Ridge regression mediation analysis with bootstrap-validated pathway weights identifies particle uptake as the dominant control parameter governing a functional trade-off between structural integration and osteogenic maturation: Low loading facilitates a rapid spheroid fusion, whereas high loading enhances osteogenic maturation through direct positive effects on day-7 alkaline phosphatase activity and hydroxyapatite deposition and through a positive mediated pathway via the day-1 fusion descriptor. Importantly, early-stage fusion dynamics act as key mediators linking intracellular material loading to late-stage functional outcomes. These results establish intracellular particle loading as a tunable design variable in composite microtissues and define a practical design space for selecting loading regimes depending on whether rapid construct assembly or enhanced osteogenic maturation is required.
More Related Videos
08:43Production and Multi-Parameter Live Cell Fluorescence Lifetime Imaging Microscopy (FLIM) of Multicellular Spheroids
Published on: August 9, 2024
08:50In Vitro Cultivation Techniques for Modeling Liver Organogenesis, Building Assembloids, and Designing Synthetic Tissues using Human Cell Lines
Published on: April 18, 2025