绘制疾病轨迹图,从孤立的REM睡眠行为障碍到帕金森病
Cécile Di Folco1,2,3,4,5,6, Raphaël Couronné1,2,3,4,5,6, Isabelle Arnulf2,3,4,5,6
1Inria, Centre de Paris, Paris, France.
Movement disorders : official journal of the Movement Disorder Society
|November 25, 2023
概括
帕金森病 (PD) 的进展与快速眼动睡眠行为障碍 (RBD) 不同. 患有RBD的患者表现出更早的发病和更快的认知衰退,突出了不同的PD亚型.
科学领域:
- 神经学 神经学
- 神经科学是一个神经科学.
- 运动障碍 运动障碍
背景情况:
- 帕金森病 (PD) 呈现出不同的临床表现和进展动态.
- 疾病过程映射提供了疾病轨迹的创新建模,估计了疾病发病,序列和进展标志物的速度.
研究的目的:
- 为开发帕金森病的疾病过程图.
- 为了研究患有或没有快速眼动睡眠行为障碍 (RBD) 的患者的帕金森病进展概况.
主要方法:
- 从919名PD患者和88名孤立的RBD患者的纵向数据分析了三个队列.
- 疾病的病程绘制使用了八个临床标记 (运动/非运动症状) 和四个成像标记 (多巴胺基缩).
主要成果:
- 病理发病过程图显示了诊断前13年的初始逆侧膜变化,其次是运动,自主,睡眠和认知症状.
- 患有RBD的PD患者表现出较早的发病,较早的非运动/睡眠症状,较晚的运动症状和较快的认知衰退,与没有RBD的患者相比.
- 患有孤立RBD的患者表现出更明显的模式:早期睡眠变化,其次是认知/非运动症状,随后是运动症状变化.
结论:
- 在患有和没有RBD的患者之间存在明显的帕金森病进展模式.
- 了解PD异质性对于阐明病理生理学至关重要.
- 确定同质的患者子组是推动帕金森病精准医学发展的关键.
更多相关视频
07:26Characterizing the Relationship Between Eye Movement Parameters and Cognitive Functions in Non-demented Parkinson's Disease Patients with Eye Tracking
Published on: September 26, 2019
7.9K
06:23A Chronic Sleep Fragmentation Model using Vibrating Orbital Rotor to Induce Cognitive Deficit and Anxiety-Like Behavior in Young Wild-Type Mice
Published on: September 22, 2020
5.4K
相关概念视频
REM Sleep Behavior Disorder
201
REM Sleep Behavior Disorder (RBD) is a sleep disorder characterized by the absence of muscle paralysis that normally occurs during the REM phase of sleep. This absence allows individuals to physically act out their dreams, which are often vivid and disturbing. Common behaviors exhibited during episodes include kicking, punching, and yelling. These actions can be dangerous, potentially leading to injuries for the person with RBD or their bed partner.
RBD is significantly associated with...
RBD is significantly associated with...
201
Parkinson's Disease: Overview
557
Neurodegenerative disorders are progressive diseases that cause irreversible damage and loss to neurons in specific brain areas. Examples of these disorders include Parkinson's disease, Alzheimer's disease, Multiple Sclerosis (MS), and Amyotrophic Lateral Sclerosis (ALS). These disorders share characteristics such as proteinopathies, selective neuronal vulnerability, and a complex interplay between genetic and environmental factors. The primary therapeutic goal for these conditions is...
557
Parkinson's Disease: Treatment
276
Neurodegenerative disorders, such as Parkinson's Disease (PD), involve the gradual and irreversible destruction of neurons in particular brain areas. These disorders exhibit standard features like proteinopathies, selective vulnerability of some neurons, and an interaction of intrinsic properties, genetics, and environmental influences in neural injury.
Parkinson's Disease is primarily a result of the loss of dopaminergic neurons in the substantia nigra pars compacta. The cornerstone of...
Parkinson's Disease is primarily a result of the loss of dopaminergic neurons in the substantia nigra pars compacta. The cornerstone of...
276
Sleep-Wake Cycles
1.4K
Sleep is an essential physiological process vital to maintaining overall well-being. The reticular activating system (RAS), a network of neurons in the brainstem, regulates wakefulness and sleep. While it may seem passive, sleep consists of distinct cycles, each with its unique characteristics and functions. Two key sleep phases are non-rapid eye movement (NREM) and rapid eye movement (REM).
NREM Sleep
NREM sleep comprises four progressive stages that seamlessly merge:
NREM Sleep
NREM sleep comprises four progressive stages that seamlessly merge:
1.4K
Narcolepsy
106
Narcolepsy is a chronic sleep disorder characterized by pervasive, uncontrolled sleepiness and other sleep disturbances. One of its hallmark symptoms is an abrupt transition to REM sleep upon falling asleep, which causes symptoms typically associated with this phase to occur unexpectedly during wakefulness. These include the following symptoms, which typically last from a minute or two to half an hour.
106
Neural Regulation
39.5K
Digestion begins with a cephalic phase that prepares the digestive system to receive food. When our brain processes visual or olfactory information about food, it triggers impulses in the cranial nerves innervating the salivary glands and stomach to prepare for food.
39.5K
