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A novel TMS-EEG study of GABAergic and glutamatergic neurotransmission in antipsychotic treatment response in schizophrenia

A novel TMS-EEG study of GABAergic and glutamatergic neurotransmission in antipsychotic treatment response in schizophrenia
精神分裂症抗精神病药物治疗反应中 GABA 能和谷氨酸能神经传递的新型 TMS-EEG 研究
批准号:
MR/V037218/1
负责人:
Panayiota Michalopoulou
金额:
$43.18万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

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中文摘要
翻译
精神分裂症患者会经历各种各样的症状,包括妄想(固定的、错误的信念)、幻觉(例如听力障碍)、认知症状(例如记忆困难、注意力集中、思维迟缓)和消极症状(例如缺乏动力)。精神分裂症的现有药物治疗,即抗精神病药物,正在通过减少大脑中一种名为多巴胺的化学物质来发挥作用。然而,尽管接受了抗精神病药物的治疗,三分之一到一半的患者仍然有明显的症状。这会导致患者出现副作用,但他们的症状没有改善,包括妄想、幻觉和认知症状。因此,减少多巴胺并不适用于所有患者和精神分裂症的所有症状,这就是为什么正在研究其他大脑化学物质,如GABA和谷氨酸,希望能为那些对目前的抗精神病药物无效的患者提供替代药物。与大脑化学物质一起,大脑的一种称为认知控制的认知能力也可能在症状对多巴胺减少抗精神病药物的无反应中发挥作用。认知控制通过帮助我们根据来自环境的信息改变和调整我们的行为,并将这些信息与我们自己的内部目标、规则或意图进行比较,从而同步内部和外部现实。这种内部和外部的同步被认为可以保护我们免受精神疾病症状的影响,因为它起到了“大脑免疫系统”的作用,并在精神疾病症状出现时对其进行处理。这种能力在精神分裂症患者中会受到损害。在这项研究方案中,我们将研究服用抗精神病药物并对其有反应的患者以及服用抗精神病药物但没有反应的患者大脑中的GABA和谷氨酸化学物质是如何变化的。我们将使用一种名为经颅磁刺激(TMS)的非侵入性、简单和安全的大脑刺激方法来刺激这些大脑化学物质。TMS多年来一直在临床实践中用于治疗抑郁症和精神分裂症的研究。TMS通过放置在头皮上特定区域的“线圈”向大脑施加磁脉冲。电流被输送到线圈,线圈在该过程中充当磁场发生器。产生的磁场在大脑中感应电流。用脑电(EEG)记录大脑对TMS刺激的反应。EEG使用连接在头皮上的小金属圆盘(电极)来检测大脑中的电活动,这种活动在EEG记录中显示为波浪线。两组之间的GABA和谷氨酸的差异将提供关于患者对当前抗精神病药物反应的可能性的信息。我们还将研究认知控制是否在两组之间GABA和谷氨酸的差异中起到了作用。这些信息最终将有助于预测哪个患者在诊断后尽快对哪种药物有反应。它还可能有助于研究开发作用于GABA和谷氨酸的新药,使患者能够接受对他们有效的中介,并改善他们的症状和生活质量,而不必尝试无效的药物和遭受多年的副作用。
英文摘要
People who suffer from schizophrenia experience a wide range of symptoms, including delusions (fixed, false beliefs) hallucinations (e.g. hearing voices), cognitive symptoms (e.g. difficulties with memory, concentration, slow thinking) and negative symptoms (e.g. lack of motivation). The available pharmacological treatment for schizophrenia, the antipsychotic medications, are working through the reduction of a brain chemical called dopamine. However, a third to half of the patients still experience significant symptoms despite treatment with antipsychotics. This results in patients having side effects without improvement of their symptoms, including delusions, hallucinations and cognitive symptoms. Dopamine reduction is therefore not working for all patients and for all symptoms of schizophrenia and that's why other brain chemicals, such as GABA and glutamate, are being studied in the hope that alternative medications can be made available for those patients who do not respond to the current antipsychotics. In conjunction with the brain chemicals, a cognitive ability of the brain called cognitive control, may also play a role in the non-response of the symptoms to dopamine reducing antipsychotics. Cognitive control synchronises the internal and external realities by helping us to change and adapt our behaviour based on information from the environment and comparing this information with our own internal goals, rules or intentions. This internal-external synchronisation is thought to protect us from symptoms of mental illness by acting as the "immune system of brain" and dealing with the symptoms of mental illness as they arise. This ability is impaired in schizophrenia. In this research proposal we will study how GABA and glutamate chemicals in the brain change in patients who take antipsychotics and respond to them and in patients who take antipsychotics but have not responded to them. We will use a non-invasive, simple and safe stimulation of the brain called transcranial magnetic stimulation (TMS), which has been used for years in clinical practice as treatment for depression and research in schizophrenia, to stimulate these brain chemicals. TMS applies magnetic pulses to the brain via a 'coil" placed on specific areas on the scalp. An electric current is delivered to the coil, which acts as the magnetic field generator in the procedure. The generated magnetic field induces an electrical current in the brain. We will record the response of the brain to the TMS stimulation with electroencephalogram (EEG). EEG detects electrical activity in the brain using small, metal discs (electrodes) attached to the scalp and the activity shows up as wavy lines on an EEG recording. The differences in GABA and glutamate between the two groups will provide information on the likelihood of a patient to respond to the current antipsychotics. We will also study if cognitive control plays a role in the differences in GABA and glutamate between the two groups. This information will ultimately help to predict which patient will respond to which medication as soon as possible after the diagnosis. It may also contribute to the research for development of new medications acting on GABA and glutamate, so that patients will be able to take the mediations that work for them and improve their symptoms and quality of life without having to try ineffective medications and suffer side effects for years.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
Investigating the excitation-inhibition imbalance in schizophrenia: A TMS-EEG study
调查精神分裂症的兴奋抑制失衡:TMS-EEG 研究
DOI: --
发表时间: 2023
期刊:
影响因子: --
作者: [N Farooq]
通讯作者: N Farooq
Excitation-Inhibition imbalance in schizophrenia: Investigating the relationship between TMS-EEG signals and illness factors
精神分裂症的兴奋抑制失衡:研究 TMS-EEG 信号与疾病因素之间的关系
DOI: --
发表时间: 2022
期刊:
影响因子: --
作者: [Friedrich A]
通讯作者: Friedrich A
DOI: 10.1192/bjo.2023.217
发表时间: 2023-07-07
期刊: BJPSYCH OPEN
影响因子: 5.4
作者: [Michalopoulou, Panayiota G., Chow, Rachel T. S., Farooq, Nimra, Szentgyorgyi, Timea, Mohammed-Akram, Maryam, Rocchi, Lorenzo, Shergill, Sukhi S.]
通讯作者: Shergill, Sukhi S.
国内基金
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    2026
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    2025
  • 负责人:
    舒苏
  • 依托单位:
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