Sharan Kunal, Yadav Vijay K
Systems Biology of Bone Laboratory, Department of Mouse and Zebrafish Genetics, The Wellcome Trust Sanger Institute, Cambridge CB10 1SA, United Kingdom.
Systems Biology of Bone Laboratory, Department of Mouse and Zebrafish Genetics, The Wellcome Trust Sanger Institute, Cambridge CB10 1SA, United Kingdom; Sanger Mouse Genetics Project, Department of Mouse and Zebrafish Genetics, The Wellcome Trust Sanger Institute, Cambridge CB10 1SA, United Kingdom.
Best Pract Res Clin Endocrinol Metab. 2014 Oct;28(5):713-23. doi: 10.1016/j.beem.2014.04.003. Epub 2014 Apr 24.
Bones are structures in vertebrates that provide support to organs, protect soft organs, and give them shape and defined features, functions that are essential for their survival. To perform these functions, bones are constantly renewed throughout life. The process through which bones are renewed is known as bone remodeling, an energy demanding process sensitive to changes in energy homeostasis of the organism. A close interplay takes place between the diversity of nutritional cues and metabolic signals with different elements of the hypothalamic circuits to co-ordinate energy metabolism with the regulation of bone mass. In this review, we focus on how mouse and human genetics have elucidated the roles of hormonal signals and neural circuits that originate in, or impinge on, the hypothalamus in the regulation of bone mass. This will help to understand the mechanisms whereby regulation of bone is gated and dynamically regulated by the hypothalamus.
骨骼是脊椎动物体内的结构,为器官提供支撑,保护柔软器官,并赋予它们形状和明确的特征,这些功能对它们的生存至关重要。为了执行这些功能,骨骼在整个生命过程中不断更新。骨骼更新的过程称为骨重塑,这是一个对机体能量稳态变化敏感的耗能过程。营养线索和代谢信号的多样性与下丘脑回路的不同元素之间存在密切的相互作用,以协调能量代谢与骨量调节。在这篇综述中,我们重点关注小鼠和人类遗传学如何阐明起源于下丘脑或作用于下丘脑的激素信号和神经回路在骨量调节中的作用。这将有助于理解下丘脑对骨骼调节进行控制和动态调节的机制。