Schurman Charles A, Burton Jordan B, Rose Jacob, Ellerby Lisa M, Alliston Tamara, Schilling Birgit
Buck Institute for Research on Aging, Novato, CA, USA.
Department of Orthopaedic Surgery, University of California San Francisco, San Francisco, CA, USA.
J Bone Metab. 2023 Feb;30(1):1-29. doi: 10.11005/jbm.2023.30.1.1. Epub 2023 Feb 28.
Molecular omics technologies, including proteomics, have enabled the elucidation of key signaling pathways that mediate bidirectional communication between the brain and bone tissues. Here we provide a brief summary of the clinical and molecular evidence of the need to study the bone-brain axis of cross-tissue cellular communication. Clear clinical and molecular evidence suggests biological interactions and similarities between bone and brain cells. Here we review the current mass spectrometric techniques for studying brain and bone diseases with an emphasis on neurodegenerative diseases and osteoarthritis/osteoporosis, respectively. Further study of the bone-brain axis on a molecular level and evaluation of the role of proteins, neuropeptides, osteokines, and hormones in molecular pathways linked to bone and brain diseases is critically needed. The use of mass spectrometry and other omics technologies to analyze these cross-tissue signaling events and interactions will help us better understand disease progression and comorbidities and potentially identify new pathways and targets for therapeutic interventions. Proteomic measurements are particularly favorable for investigating the role of signaling and secreted and circulating analytes and identifying molecular and metabolic pathways implicated in age-related diseases.
包括蛋白质组学在内的分子组学技术,已经能够阐明介导大脑与骨组织之间双向交流的关键信号通路。在此,我们简要总结一下研究跨组织细胞通讯的骨-脑轴必要性的临床和分子证据。明确的临床和分子证据表明骨细胞与脑细胞之间存在生物学相互作用和相似性。在此,我们分别综述当前用于研究脑疾病和骨疾病的质谱技术,重点是神经退行性疾病和骨关节炎/骨质疏松症。迫切需要在分子水平上进一步研究骨-脑轴,并评估蛋白质、神经肽、骨调节因子和激素在与骨和脑疾病相关的分子途径中的作用。使用质谱和其他组学技术来分析这些跨组织信号事件和相互作用,将有助于我们更好地理解疾病进展和共病情况,并有可能确定治疗干预的新途径和靶点。蛋白质组学测量对于研究信号传导、分泌和循环分析物的作用以及确定与年龄相关疾病相关的分子和代谢途径特别有利。