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用于超快速细胞压实、机械诱导免疫控制和改善治疗性血管生成的水下独立式3D细胞培养系统。

Subaqueous free-standing 3D cell culture system for ultrafast cell compaction, mechano-inductive immune control, and improving therapeutic angiogenesis.

作者信息

Im Gwang-Bum, Kim Yu-Jin, Lee Tae Il, Bhang Suk Ho

机构信息

School of Chemical Engineering, Sungkyunkwan University Suwon Republic of Korea.

Present address: Department of Cardiac Surgery, Boston Children's Hospital and Harvard Medical School Boston Massachusetts USA.

出版信息

Bioeng Transl Med. 2022 Oct 28;8(2):e10438. doi: 10.1002/btm2.10438. eCollection 2023 Mar.

Abstract

Conventional 3D cell culture methods require a comprehensive complement in labor-intensive and time-consuming processes along with in vivo circumstantial mimicking. Here, we describe a subaqueous free-standing 3D cell culture (FS) device that can induce the omnidirectional environment and generate ultrafast human adipose-derived stem cells (hADSCs) that efficiently aggregate with compaction using acoustic pressure. The cell culture conditions were optimized using the FS device and identified the underlying molecular mechanisms. Unique phenomena in cell aggregation have led to extraordinary cellular behavior that can upregulate cell compaction, mechanosensitive immune control, and therapeutic angiogenesis. Therefore, we designated the resulting cell aggregates as "pressuroid." Notably, external acoustic stimulation produced by the FS device affected the pressuroids. Furthermore, the pressuroids exhibited upregulation in mechanosensitive genes and proteins, PIEZO1/2. CyclinD1 and PCNA, which are strongly associated with cell adhesion and proliferation, were elevated by PIEZO1/2. In addition, we found that pressuroids significantly increase angiogenic paracrine factor secretion, promote cell adhesion molecule expression, and enhance M2 immune modulation of Thp1 cells. Altogether, we have concluded that our pressuroid would suggest a more effective therapy method for future cell therapy than the conventional one.

摘要

传统的三维细胞培养方法在劳动强度大、耗时的过程以及模拟体内环境方面需要全面补充。在此,我们描述了一种水下独立三维细胞培养(FS)装置,它可以诱导全方位环境,并利用声压产生超快速的人脂肪来源干细胞(hADSCs),这些细胞能有效地聚集并压实。使用FS装置优化了细胞培养条件,并确定了潜在的分子机制。细胞聚集中的独特现象导致了非凡的细胞行为,可上调细胞压实、机械敏感免疫控制和治疗性血管生成。因此,我们将产生的细胞聚集体命名为“压力样细胞聚集体(pressuroid)”。值得注意的是,FS装置产生的外部声刺激影响了压力样细胞聚集体。此外,压力样细胞聚集体在机械敏感基因和蛋白质PIEZO1/2中表现出上调。与细胞黏附和增殖密切相关的细胞周期蛋白D1和增殖细胞核抗原(PCNA)因PIEZO1/2而升高。此外,我们发现压力样细胞聚集体显著增加血管生成旁分泌因子的分泌,促进细胞黏附分子的表达,并增强对Thp1细胞的M2免疫调节。总之,我们得出结论,与传统方法相比,我们的压力样细胞聚集体将为未来的细胞治疗提供一种更有效的治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4dc8/10013761/af94638b639d/BTM2-8-e10438-g006.jpg

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