Division of Pharmaceutical Sciences, School of Pharmacy, Duquesne University, Pittsburgh, PA, USA.
J Pineal Res. 2014 Mar;56(2):115-25. doi: 10.1111/jpi.12116. Epub 2014 Jan 15.
An important role for melatonin in bone formation and restructuring has emerged, and studies demonstrate the multiple mechanisms for these beneficial actions. Statistical analysis shows that even with existing osteoporotic therapies, bone-related disease, and mortality are on the rise, creating a huge financial burden for societies worldwide. These findings suggest that novel alternatives need to be developed to either prevent or reverse bone loss to combat osteoporosis-related fractures. The focus of this review describes melatonin's role in bone physiology and discusses how disruption of melatonin rhythms by light exposure at night, shift work, and disease can adversely impact on bone. The signal transduction mechanisms underlying osteoblast and osteoclast differentiation and coupling with one another are discussed with a focus on how melatonin, through the regulation of RANKL and osteoprotegerin synthesis and release from osteoblasts, can induce osteoblastogenesis while inhibiting osteoclastogenesis. Also, melatonin's free-radical scavenging and antioxidant properties of this indoleamine are discussed as yet an additional mechanism by which melatonin can maintain one's bone health, especially oral health. The clinical use for melatonin in bone-grafting procedures, in reversing bone loss due to osteopenia and osteoporosis, and in managing periodontal disease is discussed.
褪黑素在骨骼形成和重塑中起着重要作用,研究表明了其多种有益作用的机制。统计分析表明,即使有现有的骨质疏松症治疗方法,与骨骼相关的疾病和死亡率仍在上升,给全球社会带来了巨大的经济负担。这些发现表明,需要开发新的替代方法来预防或逆转骨质流失,以对抗与骨质疏松症相关的骨折。本综述的重点描述了褪黑素在骨骼生理学中的作用,并讨论了夜间光照、轮班工作和疾病如何通过破坏褪黑素节律对骨骼产生不利影响。讨论了成骨细胞和破骨细胞分化的信号转导机制及其相互偶联,重点讨论了褪黑素如何通过调节成骨细胞中 RANKL 和骨保护素的合成和释放来诱导成骨细胞生成,同时抑制破骨细胞生成。此外,还讨论了这种吲哚胺的褪黑素的自由基清除和抗氧化特性,这是褪黑素维持骨骼健康(尤其是口腔健康)的另一种机制。讨论了褪黑素在骨移植手术、逆转骨质疏松症引起的骨质流失以及治疗牙周病中的临床应用。