Department of Biosystems Engineering, Kangwon National University, Chuncheon, 24341, Republic of Korea; Interdisciplinary Program in Smart Agriculture, Kangwon National University, Chuncheon, 24341, Republic of Korea.
Department of Biosystems Engineering, Kangwon National University, Chuncheon, 24341, Republic of Korea; Institute of Forest Science, Kangwon National University, Chuncheon, 24341, Republic of Korea.
Biomaterials. 2025 Jan;312:122713. doi: 10.1016/j.biomaterials.2024.122713. Epub 2024 Jul 26.
Traditional bioreactor systems involve the use of three-dimensional (3D) scaffolds or stem cell aggregates, limiting the accessibility to the production of cell-secreted biomolecules. Herein, we present the use a pulse electromagnetic fields (pEMFs)-assisted wave-motion bioreactor system for the dynamic and scalable culture of human bone marrow-derived mesenchymal stem cells (hBMSCs) with enhanced the secretion of various soluble factors with massive therapeutic potential. The present study investigated the influence of dynamic pEMF (D-pEMF) on the kinetic of hBMSCs. A 30-min exposure of pEMF (10V-1Hz, 5.82 G) with 35 oscillations per minute (OPM) rocking speed can induce the proliferation (1 × 10 → 4.5 × 10) of hBMSCs than static culture. Furthermore, the culture of hBMSCs in osteo-induction media revealed a greater enhancement of osteogenic transcription factors under the D-pEMF condition, suggesting that D-pEMF addition significantly boosted hBMSCs osteogenesis. Additionally, the RNA sequencing data revealed a significant shift in various osteogenic and signaling genes in the D-pEMF group, further suggesting their osteogenic capabilities. In this research, we demonstrated that the combined effect of wave and pEMF stimulation on hBMSCs allows rapid proliferation and induces osteogenic properties in the cells. Moreover, our study revealed that D-pEMF stimuli also induce ROS-scavenging properties in the cultured cells. This study also revealed a bioactive and cost-effective approach that enables the use of cells without using any expensive materials and avoids the possible risks associated with them post-implantation.
传统的生物反应器系统涉及使用三维(3D)支架或干细胞聚集体,限制了细胞分泌生物分子的生产。在此,我们提出了一种使用脉冲电磁场(pEMF)辅助波运动生物反应器系统,用于动态和可扩展地培养人骨髓间充质干细胞(hBMSCs),并增强了具有巨大治疗潜力的各种可溶性因子的分泌。本研究调查了动态 pEMF(D-pEMF)对 hBMSCs 动力学的影响。pEMF(10V-1Hz,5.82 G)的 30 分钟暴露,每分钟 35 次振荡(OPM)的摇摆速度可以诱导 hBMSCs 的增殖(1×10→4.5×10)比静态培养。此外,在成骨诱导培养基中培养 hBMSCs 时,D-pEMF 条件下成骨转录因子的增强更为明显,表明 D-pEMF 的加入显著促进了 hBMSCs 的成骨作用。此外,RNA 测序数据显示,D-pEMF 组中各种成骨和信号基因发生了显著变化,进一步表明了其成骨能力。在这项研究中,我们证明了波和 pEMF 刺激对 hBMSCs 的联合作用可以使细胞快速增殖并诱导其成骨特性。此外,我们的研究表明,D-pEMF 刺激还会诱导培养细胞中的 ROS 清除特性。这项研究还揭示了一种具有生物活性和成本效益的方法,可在不使用任何昂贵材料的情况下使用细胞,并避免了植入后可能与它们相关的风险。