Roth Daniela Marta, Souter Katherine, Graf Daniel
School of Dentistry, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, AB, Canada.
School of Dentistry, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, AB, Canada; Department of Medical Genetics, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, AB, Canada.
Eur J Cell Biol. 2022 Jun-Aug;101(3):151258. doi: 10.1016/j.ejcb.2022.151258. Epub 2022 Jul 28.
Cranial sutures are dynamic structures in which stem cell biology, bone formation, and mechanical forces interface, influencing the shape of the skull throughout development and beyond. Over the past decade, there has been significant progress in understanding mesenchymal stromal cell (MSC) differentiation in the context of suture development and genetic control of suture pathologies, such as craniosynostosis. More recently, the mechanosensory function of sutures and the influence of mechanical signals on craniofacial development have come to the forefront. There is currently a gap in understanding of how mechanical signals integrate with MSC differentiation and ossification to ensure appropriate bone development and mediate postnatal growth surrounding sutures. In this review, we discuss the role of mechanosensation in the context of cranial sutures, and how mechanical stimuli are converted to biochemical signals influencing bone growth, suture patency, and fusion through mediation of cell differentiation. We integrate key knowledge from other paradigms where mechanosensation forms a critical component, such as bone remodeling and orthodontic tooth movement. The current state of the field regarding genetic, cellular, and physiological mechanisms of mechanotransduction will be contextualized within suture biology.
颅缝是一种动态结构,干细胞生物学、骨形成和机械力在此相互作用,在整个发育过程及之后影响颅骨的形状。在过去十年中,在理解缝线发育背景下间充质基质细胞(MSC)分化以及缝线病理(如颅缝早闭)的遗传控制方面取得了重大进展。最近,缝线的机械传感功能以及机械信号对面部发育的影响已成为研究的前沿。目前在理解机械信号如何与MSC分化和骨化整合以确保适当的骨骼发育并介导缝线周围的出生后生长方面存在差距。在这篇综述中,我们讨论了机械传感在颅缝背景下的作用,以及机械刺激如何通过细胞分化的介导转化为影响骨生长、缝线通畅和融合的生化信号。我们整合了机械传感作为关键组成部分的其他范例中的关键知识,如骨重塑和正畸牙齿移动。该领域关于机械转导的遗传、细胞和生理机制的当前状态将在缝线生物学的背景下进行阐述。