Cell Physiology Laboratory, Institute of Biomedical Problems, Russian Academy of Sciences, 123007 Moscow, Russia.
Cells. 2024 Nov 19;13(22):1921. doi: 10.3390/cells13221921.
The development of osteopenia is one of the most noticeable manifestations of the adverse effects of space factors on crew members. The Hippo signaling pathway has been shown to play a central role in regulating the functional activity of cells through their response to mechanical stimuli. In the present study, the components of the Hippo pathway and the protective properties of osteodifferentiation inducers were investigated under simulated microgravity (smg) using a heterotypic bone marrow cell culture model, which allows for the maintenance of the close interaction between the stromal and hematopoietic compartments, present in vivo and of great importance for both the fate of osteoprogenitors and hematopoiesis. After 14 days of smg, the osteopotential and osteodifferentiation of bone marrow stromal progenitor cells, the expression of Hippo cascade genes and the immunocytochemical status of the adherent fraction of bone marrow cells, as well as the paracrine profile in the conditioned medium and the localization of Yap1 and Runx2 in mechanosensitive cells of the bone marrow were obtained. Simulated microgravity negatively affects stromal and hematopoietic cells when interacting in a heterotypic murine bone marrow cell culture. This is evidenced by the decrease in cell proliferation and osteopotential. Changes in the production of pleiotropic cytokines IL-6, GROβ and MCP-1 were revealed. Fourteen days of simulated microgravity induced a decrease in the nuclear translocation of Yap1 and the transcription factor Runx2 in the stromal cells of the intact group. Exposure to osteogenic induction conditions partially compensated for the negative effect of simulated microgravity. The data obtained will be crucial for understanding the effects of spaceflight on osteoprogenitor cell growth and differentiation via Hippo-Yap signaling.
骨质疏松症的发展是太空因素对机组人员产生不利影响的最明显表现之一。Hippo 信号通路已被证明在通过对机械刺激的反应来调节细胞的功能活性方面发挥着核心作用。在本研究中,使用异质骨髓细胞培养模型研究了模拟微重力 (smg) 下 Hippo 通路的组成部分和成骨诱导物的保护特性,该模型允许维持体内存在的基质和造血区室之间的紧密相互作用,对于成骨前体细胞的命运和造血都非常重要。在 smg 14 天后,骨髓基质祖细胞的成骨潜能和成骨分化、Hippo 级联基因的表达以及骨髓细胞贴壁部分的免疫细胞化学状态、条件培养基中的旁分泌谱以及 Yap1 和 Runx2 在骨髓机械敏感细胞中的定位都进行了研究。当在异质鼠骨髓细胞培养中相互作用时,模拟微重力对基质和造血细胞产生负面影响。这可以通过细胞增殖和成骨潜能的降低来证明。揭示了多效细胞因子 IL-6、GROβ 和 MCP-1 的产生变化。14 天的模拟微重力导致完整组基质细胞中 Yap1 和转录因子 Runx2 的核易位减少。暴露于成骨诱导条件部分补偿了模拟微重力的负面影响。获得的数据对于理解太空飞行对成骨前体细胞生长和分化通过 Hippo-Yap 信号的影响至关重要。