Department of Mechanical Engineering, National Central University, Taoyuan, Taiwan.
PLoS Comput Biol. 2024 Jul 22;20(7):e1012281. doi: 10.1371/journal.pcbi.1012281. eCollection 2024 Jul.
Capillary plexus cultivation is crucial in tissue engineering and regenerative medicine. Theoretical simulations have been conducted to supplement the expensive experimental works. However, the mechanisms connecting mechanical and chemical stimuli remained undefined, and the functions of the different VEGF forms in the culture environment were still unclear. In this paper, we developed a hybrid model for simulating short-term in vitro capillary incubations. We used the Cellular Potts model to predict individual cell migration, morphology change, and continuum mechanics to quantify biogel deformation and VEGF transport dynamics. By bridging the mechanical regulation and chemical stimulation in the model, the results showed good agreement between the predicted network topology and experiments, in which elongated cells connected, forming the network cords and round cells gathered, creating cobblestone-like aggregates. The results revealed that the capillary-like networks could develop in high integrity only when the mechanical and chemical couplings worked adequately, with the cell morphology and haptotaxis driven by the soluble and bound forms of VEGF, respectively, functioning simultaneously.
毛细血管丛培养在组织工程和再生医学中至关重要。理论模拟已被用于补充昂贵的实验工作。然而,机械和化学刺激之间的连接机制仍未定义,不同 VEGF 形式在培养环境中的功能也仍不清楚。在本文中,我们开发了一种用于模拟短期体外毛细血管孵育的混合模型。我们使用细胞 Potts 模型来预测单个细胞的迁移、形态变化,以及连续介质力学来量化生物凝胶的变形和 VEGF 传输动力学。通过在模型中桥接机械调节和化学刺激,结果表明预测的网络拓扑与实验结果吻合较好,其中伸长的细胞连接形成网络索,圆形细胞聚集形成鹅卵石状聚集物。结果表明,只有当机械和化学耦合作用充分时,才能形成具有高完整性的毛细血管样网络,其中 VEGF 的可溶性和结合形式分别驱动细胞形态和趋化性,共同发挥作用。