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高重力和微重力对破骨细胞和成骨细胞的影响:以金鱼鳞片作为骨模型的分析。

Osteoclastic and Osteoblastic Responses to Hypergravity and Microgravity: Analysis Using Goldfish Scales as a Bone Model.

机构信息

Noto Marine Laboratory, Institute of Nature and Environmental Technology, Kanazawa University, Housu-gun, Ishikawa 927-0553, Japan.

Department of Oral Morphology, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama, Okayama 700-8525, Japan.

出版信息

Zoolog Sci. 2022 Aug;39(4). doi: 10.2108/zs210107.

Abstract

It is known that the bone matrix plays an important role in the response to physical stresses such as hypergravity and microgravity. In order to accurately analyze the response of bone to hypergravity and microgravity, a culture system under the conditions of coexistence of osteoclasts, osteoblasts, and bone matrix was earnestly desired. The teleost scale is a unique calcified organ in which osteoclasts, osteoblasts, and the two layers of bone matrix, i.e., a bony layer and a fibrillary layer, coexist. Therefore, we have developed in vitro organ culture systems of osteoclasts and osteoblasts with the intact bone matrix using goldfish scales. Using the scale culture system, we examined the effects of hypergravity with a centrifuge and simulated ground microgravity (g-µG) with a three-dimensional clinostat on osteoclasts and osteoblasts. Under 3-gravity (3G) loading for 1 day, osteoclastic marker mRNA expression levels decreased, while the mRNA expression of the osteoblastic marker increased. Upon 1 day of exposure, the simulated g-µG induced remarkable enhancement of osteoclastic marker mRNA expression, whereas the osteoblastic marker mRNA expression decreased. In response to these gravitational stimuli, osteoclasts underwent major morphological changes. By simulated g-µG treatments, morphological osteoclastic activation was induced, while osteoclastic deactivation was observed in the 3G-treated scales. In space experiments, the results that had been obtained with simulated g-µG were reproduced. RNA-sequencing analysis showed that osteoclastic activation was induced by the down-regulation of Wnt signaling under flight-microgravity. Thus, goldfish scales can be utilized as a bone model to analyze the responses of osteoclasts and osteoblasts to gravity.

摘要

众所周知,骨基质在应对超重力和微重力等物理应激方面起着重要作用。为了准确分析骨对超重力和微重力的反应,人们迫切需要一种同时存在破骨细胞、成骨细胞和骨基质的培养体系。硬骨鱼的鳞片是一种独特的钙化器官,其中同时存在破骨细胞、成骨细胞以及两层骨基质,即骨层和纤维层。因此,我们使用金鱼鳞片开发了具有完整骨基质的体外破骨细胞和成骨细胞器官培养系统。使用该鳞片培养系统,我们用离心机检查了超重力对破骨细胞和成骨细胞的影响,并使用三维回转器模拟地面微重力(g-µG)。在 3G 加载 1 天后,破骨细胞标志物 mRNA 表达水平降低,而成骨细胞标志物的 mRNA 表达增加。暴露于模拟 g-µG 1 天后,显著增强了破骨细胞标志物 mRNA 的表达,而成骨细胞标志物 mRNA 的表达则降低。对这些重力刺激,破骨细胞发生了主要的形态变化。经过模拟 g-µG 处理后,诱导了形态上的破骨细胞激活,而在 3G 处理的鳞片中观察到破骨细胞失活。在空间实验中,重现了模拟 g-µG 获得的结果。RNA 测序分析表明,在飞行微重力下,Wnt 信号通路的下调诱导了破骨细胞的激活。因此,金鱼鳞片可以作为一种骨模型,用于分析破骨细胞和成骨细胞对重力的反应。

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