Roguski Amber, Gill Andrew C
The Roslin Institute and Royal (Dick) School of Veterinary Sciences, University of Edinburgh, Easter Bush Veterinary Centre, Edinburgh EH25 9RG, UK.
School of Chemistry, Joseph Banks Laboratories, University of Lincoln, Green Lane, Lincoln, Lincolnshire LN6 7DL, UK.
Pathogens. 2017 Nov 17;6(4):58. doi: 10.3390/pathogens6040058.
Sleep disruption is a prevalent clinical feature in many neurodegenerative disorders, including human prion diseases where it can be the defining dysfunction, as in the case of the "eponymous" fatal familial insomnia, or an early-stage symptom as in certain types of Creutzfeldt-Jakob disease. It is important to establish the role of the cellular prion protein (PrP), the key molecule involved in prion pathogenesis, within the sleep-wake system in order to understand fully the mechanisms underlying its contribution to both healthy circadian rhythmicity and sleep dysfunction during disease. Although severe disruption to the circadian rhythm and melatonin release is evident during the pathogenic phases of some prion diseases, untangling whether PrP plays a role in circadian rhythmicity, as suggested in mice deficient for PrP expression, is challenging given the lack of basic experimental research. We provide a short review of the small amount of direct literature focused on the role of PrP in melatonin and circadian rhythm regulation, as well as suggesting mechanisms by which PrP might exert influence upon noradrenergic and dopaminergic signaling and melatonin synthesis. Future research in this area should focus upon isolating the points of dysfunction within the retino-pineal pathway and further investigate PrP mediation of pinealocyte GPCR activity.
睡眠障碍是许多神经退行性疾病中普遍存在的临床特征,包括人类朊病毒病,在这种疾病中,睡眠障碍可能是决定性的功能障碍,如“同名”的致死性家族性失眠症,或者是某些类型克雅氏病的早期症状。为了全面理解朊病毒在健康昼夜节律和疾病期间睡眠功能障碍中所起作用的潜在机制,确定细胞朊蛋白(PrP)在睡眠-觉醒系统中的作用很重要,PrP是朊病毒发病机制中的关键分子。尽管在某些朊病毒病的致病阶段,昼夜节律和褪黑素释放会受到严重干扰,但鉴于缺乏基础实验研究,要弄清楚PrP是否如PrP表达缺陷小鼠研究中所提示的那样在昼夜节律中发挥作用颇具挑战性。我们简要回顾了少量直接聚焦于PrP在褪黑素和昼夜节律调节中作用的文献,并提出PrP可能影响去甲肾上腺素能和多巴胺能信号传导以及褪黑素合成的机制。该领域未来的研究应着重于分离视网膜-松果体途径中的功能障碍点,并进一步研究PrP对松果体细胞GPCR活性的介导作用。