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灌注生物反应器中刺激的骨髓干细胞独特的成骨特性依赖于Rho-ROCK介导的收缩性。

Unique osteogenic profile of bone marrow stem cells stimulated in perfusion bioreactor is Rho-ROCK-mediated contractility dependent.

作者信息

Yamada Shuntaro, Yassin Mohammed A, Torelli Francesco, Hansmann Jan, Green Jeremy B A, Schwarz Thomas, Mustafa Kamal

机构信息

Center of Translational Oral Research (TOR)-Tissue Engineering Group, Department of Clinical Dentistry, Faculty of Medicine University of Bergen Norway.

Translational Center Regenerative Therapies Fraunhofer Institute for Silicate Research ISC Würzburg Germany.

出版信息

Bioeng Transl Med. 2023 Mar 17;8(3):e10509. doi: 10.1002/btm2.10509. eCollection 2023 May.

Abstract

The fate determination of bone marrow mesenchymal stem/stromal cells (BMSC) is tightly regulated by mechanical cues, including fluid shear stress. Knowledge of mechanobiology in 2D culture has allowed researchers in bone tissue engineering to develop 3D dynamic culture systems with the potential for clinical translation in which the fate and growth of BMSC are mechanically controlled. However, due to the complexity of 3D dynamic cell culture compared to the 2D counterpart, the mechanisms of cell regulation in the dynamic environment remain relatively undescribed. In the present study, we analyzed the cytoskeletal modulation and osteogenic profiles of BMSC under fluid stimuli in a 3D culture condition using a perfusion bioreactor. BMSC subjected to fluid shear stress (mean 1.56 mPa) showed increased actomyosin contractility, accompanied by the upregulation of mechanoreceptors, focal adhesions, and Rho GTPase-mediated signaling molecules. Osteogenic gene expression profiling revealed that fluid shear stress promoted the expression of osteogenic markers differently from chemically induced osteogenesis. Osteogenic marker mRNA expression, type 1 collagen formation, ALP activity, and mineralization were promoted in the dynamic condition, even in the absence of chemical supplementation. The inhibition of cell contractility under flow by Rhosin chloride, Y27632, MLCK inhibitor peptide-18, or Blebbistatin revealed that actomyosin contractility was required for maintaining the proliferative status and mechanically induced osteogenic differentiation in the dynamic culture. The study highlights the cytoskeletal response and unique osteogenic profile of BMSC in this type of dynamic cell culture, stepping toward the clinical translation of mechanically stimulated BMCS for bone regeneration.

摘要

骨髓间充质干/基质细胞(BMSC)的命运决定受到包括流体剪切应力在内的机械信号的严格调控。二维培养中的力学生物学知识使骨组织工程领域的研究人员能够开发出具有临床转化潜力的三维动态培养系统,其中BMSC的命运和生长受到机械控制。然而,与二维培养相比,由于三维动态细胞培养的复杂性,动态环境中细胞调控的机制仍相对缺乏描述。在本研究中,我们使用灌注生物反应器分析了三维培养条件下流体刺激作用下BMSC的细胞骨架调节和成骨特征。受到流体剪切应力(平均1.56 mPa)作用的BMSC显示出肌动球蛋白收缩性增加,同时机械感受器、粘着斑和Rho GTPase介导的信号分子上调。成骨基因表达谱分析表明,流体剪切应力促进成骨标志物表达的方式与化学诱导成骨不同。即使在没有化学添加物的情况下,动态条件下成骨标志物mRNA表达、I型胶原蛋白形成、碱性磷酸酶活性和矿化也得到促进。用氯化罗辛、Y27632、肌球蛋白轻链激酶抑制肽-18或blebbistatin抑制流动条件下的细胞收缩性,结果表明肌动球蛋白收缩性是维持动态培养中增殖状态和机械诱导成骨分化所必需的。该研究突出了BMSC在这种动态细胞培养中的细胞骨架反应和独特的成骨特征,朝着机械刺激的BMSC用于骨再生的临床转化迈出了一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/91ca/10189446/e95e8fa1690c/BTM2-8-e10509-g001.jpg

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