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临床试验/NCT06006130
NCT06006130已完成不适用

Investigating the Neurobiological Contributions to Pain in Patients With Fibromyalgia

McMaster University2 个研究点 分布在 1 个国家目标入组 36 人开始时间: 2024年2月1日最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
入组人数
36
试验地点
2
主要终点
Change in PROMIS-29 v2.0 Profile

研究概览

简要总结

Fibromyalgia is a syndrome associated with fatigue and chronic pain, leading to significant physical limitations and impaired quality of life. There are several challenges that complicate the diagnosis and management of fibromyalgia. The etiology is not well defined, as there are several proposed factors that may trigger the genesis of pain in fibromyalgia including physical and/or emotional life stressors, and genetic predispositions involving neuromodulator pathways. Chronic pain in fibromyalgia arises in the absence of tissue pathology, and consequently a lack of consensus on reliable diagnostic criteria. Understanding the neurophysiology of fibromyalgia would aid in the discovery of objective biomarkers for diagnosis. Therefore, the goals of this study are to:

  1. Compare the neurophysiological responses in fibromyalgia compared to healthy controls.
  2. Determine whether a two-week cTMS protocol will alter pain in individuals with fibromyalgia.

详细描述

Fibromyalgia is a syndrome associated with fatigue and chronic pain, leading to significant physical limitations and impaired quality of life. Fibromyalgia affects 1.7% of Canadians, with a higher prevalence in females compared to males at 9:1 [1]. There are several challenges that complicate the diagnosis and management of fibromyalgia. The etiology is not well defined, as there are several proposed factors that may trigger the genesis of pain in fibromyalgia. Chronic pain in fibromyalgia arises in the absence of tissue pathology, and consequently a lack of consensus on reliable diagnostic criteria. Understanding the pathophysiology of fibromyalgia would aid in the identification of objective biomarkers that could be used for diagnosis.

Multiple theories have been posited to explain the genesis of chronic pain. The gate control theory describes the attenuation of pain signals in the spinal cord prior to cortical processing, and it has been hypothesized that loss of this gate control leads to the genesis of chronic pain [2]. Gate control can be observed by reduction of afferent signals during active muscle contraction. For example, the amplitude of the somatosensory-evoked potential (SEP) is attenuated during active contraction [3]. To our knowledge, it is unknown whether such gate control is observed in fibromyalgia. The lack of gate control may contribute to chronic pain in this population.

The sensorimotor theory suggests that incongruency between motor intention and sensory feedback underlies chronic pain where there is an absence of tissue pathology [4]. This may align with the genesis of fibromyalgia, given the findings that those with fibromyalgia have altered tactile and proprioceptive functioning [5]. Corticomuscular coherence (CMC) is a useful tool that uses electroencephalography (EEG) and electromyography (EMG) to probe the synchrony of neural firing between the brain and muscle [6]. To our knowledge, it is unknown how the magnitude of CMC varies in fibromyalgia compared to healthy controls.

Non-invasive brain stimulation in the form of Transcranial Magnetic Stimulation (TMS) has been used to probe the activity of corticospinal and cortical networks in fibromyalgia. When TMS pulses are delivered in a repetitive train, a protocol known as repetitive TMS (rTMS), short-term neuroplasticity can be induced (i.e., a change in the activity of neurons in the brain). In fibromyalgia, Mhalla et al. [7] found that 5 days of 10 Hz rTMS reduced pain intensity and improved quality of life metrics. Controlled pulse parameter transcranial magnetic stimulation (cTMS) is a novel technique that may produce stronger analgesic effects by delivering monophasic pulses that could enhance neuroplasticity compared with conventional rTMS. It is unknown whether a longer intervention period or the use of cTMS could lead to greater analgesic effects.

Finally, central sensitization may explain the widespread chronic pain experienced in fibromyalgia. There are several neuromodulators that contribute to the neurobiology of central sensitization and may be implicated in this condition including serotonin, dopamine, and brain-derived neurotrophic factor (BDNF). Serotonin is linked to pain modulation, such that increased levels of 5-HT are associated with hyperalgesia [8]. BDNF has been implicated in the genesis of neuropathic pain [9]. In fibromyalgia compared to healthy controls, serum BDNF levels have been reported to be higher [10]. Abnormal dopamine function may also be associated with fibromyalgia [11]. Positron-emission tomography (PET) studies show lower cortical dopamine D2/D3 binding availability in fibromyalgia compared to healthy controls [12].

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Treatment
盲法
Double (Participant, Outcomes Assessor)

盲法说明

Experiment 1: Outcomes assessor will be blinded to the groups (fibromyalgia vs controls) the data is obtained from Experiment 2: Outcomes assessor and participants will be blinded to the intervention group that participants are allocated to (sham vs real treatment)

入排标准

年龄范围
18 Years 至 65 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • 18-65 years old

排除标准

  • contraindications to TMS
  • chronic pain associated with diagnoses other than fibromyalgia

结局指标

主要结局

Change in PROMIS-29 v2.0 Profile

时间窗: Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention

Using numerical rating (0 to 5) to assess the change in seven health domains including physical function, anxiety, depression, fatigue, sleep disturbances, ability to participate in social roles and activities, and pain interference. Each category consists of 4 questions. Also uses a numerical rating to asses pain intensity (0-10).

Change in Fibromyalgia impact questionnaire (FIQ)

时间窗: Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention

This instrument will be used to assess the patients feeling and emotion related to their pain experience.

次要结局

  • EEG assessment of Corticomuscular coherence (CMC)(Experiment 1: At baseline pre-intervention only)
  • Change in Pain catastrophizing scale-EN-SF(Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)
  • Change in Patient Health Questionnaire-4 (PHQ-4)(Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)
  • Change in Short-form Posttraumatic Checklist-5 (Short-form PCL-5)(Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)
  • Change in Short-Interval Intracortical Inhibition (SICI)(Experiment 1: At baseline pre-intervention and immediately following 1 treatment session, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)
  • EEG assessment of Somatosensory-evoked potentials (SEPs)(Experiment 1: At baseline pre-intervention only)
  • EEG assessment of Event-related desynchronization (ERD)(Experiment 1: At baseline pre-intervention only)
  • Change in performance on sensorimotor tasks(Experiment 1: At baseline pre-intervention, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)
  • EEG assessment of Pain-related evoked potentials (PREPs)(Experiment 1: At baseline pre-intervention only)
  • Change in Motor-evoked potentials (MEPs)(Experiment 1: At baseline pre-intervention and immediately following 1 treatment session, Experiment 2: At baseline pre-intervention and 2 weeks post-intervention)

研究者

申办方类型
Other
责任方
Principal Investigator
主要研究者

Aimee Nelson

Professor

McMaster University

研究点 (2)

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