Department of Osteology and Biomechanics, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Institute of Orthopedic Research and Biomechanics, University Medical Center Ulm, Ulm, Germany.
J Bone Miner Res. 2021 Feb;36(2):369-384. doi: 10.1002/jbmr.4198. Epub 2020 Nov 12.
The skeleton is a dynamic tissue continuously adapting to mechanical stimuli. Although matrix-embedded osteocytes are considered as the key mechanoresponsive bone cells, all other skeletal cell types are principally exposed to macroenvironmental and microenvironmental mechanical influences that could potentially affect their activities. It was recently reported that Piezo1, one of the two mechanically activated ion channels of the Piezo family, functions as a mechanosensor in osteoblasts and osteocytes. Here we show that Piezo1 additionally plays a critical role in the process of endochondral bone formation. More specifically, by targeted deletion of Piezo1 or Piezo2 in either osteoblast (Runx2Cre) or osteoclast lineage cells (Lyz2Cre), we observed severe osteoporosis with numerous spontaneous fractures specifically in Piezo1 mice. This phenotype developed at an early postnatal stage and primarily affected the formation of the secondary spongiosa. The presumptive Piezo1 osteoblasts in this region displayed an unusual flattened appearance and were positive for type X collagen. Moreover, transcriptome analyses of primary osteoblasts identified an unexpected induction of chondrocyte-related genes in Piezo1 cultures. Because Runx2 is not only expressed in osteoblast progenitor cells, but also in prehypertrophic chondrocytes, these data suggested that Piezo1 functions in growth plate chondrocytes to ensure trabecular bone formation in the process of endochondral ossification. To confirm this hypothesis, we generated mice with Piezo1 deletion in chondrocytes (Col2a1Cre). These mice essentially recapitulated the phenotype of Piezo1 animals, because they displayed early-onset osteoporosis with multiple fractures, as well as impaired formation of the secondary spongiosa with abnormal osteoblast morphology. Our data identify a previously unrecognized key function of Piezo1 in endochondral ossification, which, together with its role in bone remodeling, suggests that Piezo1 represents an attractive target for the treatment of skeletal disorders. © 2020 The Authors. Journal of Bone and Mineral Research published by Wiley Periodicals LLC on behalf of American Society for Bone and Mineral Research (ASBMR).
骨骼是一种不断适应机械刺激的动态组织。尽管基质嵌入的成骨细胞被认为是关键的机械反应性骨细胞,但所有其他骨骼细胞类型都主要暴露于宏观环境和微观环境的机械影响下,这些影响可能会影响它们的活性。最近有报道称,Piezo1 是 Piezo 家族的两个机械激活离子通道之一,在成骨细胞和破骨细胞中作为机械感受器发挥作用。在这里,我们表明 Piezo1 另外在软骨内骨形成过程中发挥关键作用。更具体地说,通过在成骨细胞(Runx2Cre)或破骨细胞谱系细胞(Lyz2Cre)中靶向敲除 Piezo1 或 Piezo2,我们观察到 Piezo1 小鼠出现严重的骨质疏松症,伴有大量自发性骨折。这种表型在出生后早期发展,主要影响次级松质骨的形成。该区域的推定 Piezo1 成骨细胞表现出异常的扁平外观,并呈 X 型胶原阳性。此外,对原代成骨细胞的转录组分析鉴定出 Piezo1 培养物中意外诱导的软骨细胞相关基因。由于 Runx2 不仅在成骨细胞祖细胞中表达,而且在预肥大软骨细胞中表达,这些数据表明 Piezo1 在生长板软骨细胞中发挥作用,以确保软骨内骨化过程中小梁骨的形成。为了证实这一假设,我们在软骨细胞中(Col2a1Cre)敲除了 Piezo1 基因。这些小鼠基本上重现了 Piezo1 动物的表型,因为它们表现出早期骨质疏松症和多发性骨折,以及次级松质骨形成受损,成骨细胞形态异常。我们的数据确定了 Piezo1 在软骨内骨化中的一个以前未被认识的关键功能,这与其在骨重塑中的作用一起表明,Piezo1 代表了治疗骨骼疾病的有吸引力的靶标。© 2020 作者。骨与矿物质研究杂志由 Wiley 期刊出版公司代表美国骨与矿物质研究协会(ASBMR)出版。