Non-invasive Electrical Deep Brain Stimulation Technology
Non-invasive Electrical Deep Brain Stimulation Technology
批准号:
EP/W004844/1
负责人:
Nir Grossman
金额:
$38.58万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2021
资助国家:
英国
项目状态:
已结题
起止时间:
2021 至 --
中文摘要
世界人口老龄化对脑部疾病患者的患病率产生了毁灭性的影响。随着年龄增长,最常见的脑部疾病是痴呆症,这是一种神经退行性疾病,会导致认知障碍,逐渐影响日常生活活动,侵蚀独立性,降低生活质量。痴呆症的主要原因是阿尔茨海默病,占所有痴呆症病例的60-70% 1。全世界大约有5000万痴呆症患者,预计到20502年这一数字将增加到1.52亿。在英国,大约有85万人患有痴呆症,到2040年,这一数字预计将增加到160万(相当于每3分钟就有1例新的痴呆症病例)。据估计,痴呆症的全球成本每年为1万亿美元2。据估计,英国痴呆症护理费用为350亿英镑,预计到2040年将急剧上升至950亿英镑。在国民保健制度的医院里,每四张病床中就有一张被痴呆症患者占用,从而妨碍了对其他疾病的治疗。在过去的几十年里,通过药物干预来延缓或阻止阿尔茨海默病引起的痴呆进展的大规模努力未能产生可行的治疗方法。该项目将开发一种技术,旨在通过提高疾病早期最脆弱区域对病理的适应能力,来减缓或逆转阿尔茨海默病的进展。我们的方法是基于非侵入性电刺激这些脆弱结构的活动来建立它们内在的代谢和能量功能,在概念上类似于运动如何建立肌肉的代谢和能量功能。为了非侵入性地刺激通常位于深部的目标大脑结构的活动,我们将使用我们最近发现的一种新方法,称为时间干扰(TI)刺激。我们已经证明,在动物模型和健康人身上,TI刺激可以用来改变海马体的活动,海马体是大脑深处的一种结构,对记忆和认知功能至关重要,在阿尔茨海默病的早期阶段受到强烈影响。在这个项目中,我们将解决最关键的工程挑战,将我们的概念发展为可靠和精确的非侵入性脑深部刺激技术,可以用于大规模的临床试验。此外,我们将在阿尔茨海默病动物模型中测试并迭代改进颞叶干扰刺激对海马病理的影响。最后,我们将开始开发途径,将这项技术转化为可行的医疗保健治疗,使用价格合理且可穿戴的硬件,这些硬件也可以部署在患者家中。时间干扰脑刺激技术具有针对任意脑深部结构的能力,将为开发由这些结构异常活动支撑的多种脑疾病的治疗方法提供平台。这种颠覆性技术的发展将使英国处于神经技术行业的前沿,而神经技术行业是医疗行业中增长最快的。利文斯顿,G.等。《柳叶刀》(2017)2 .世界阿尔茨海默病报告2018,伦敦,英国(2018)。阿尔茨海默氏症协会(2009)。
英文摘要
The ageing of the world population has had a devastating impact on the prevalence of people with brain disorders. The most common brain disorder with age is dementia - a neurodegenerative disease that leads to cognitive impairment that progressively affects activities of daily living erodes independence and impairs quality of life. The leading cause of dementia is Alzheimer's disease, accounting for 60-70% of all dementia cases1. There are approximately 50 million people with dementia worldwide, and this number is projected to increase to 152 million by 20502. In the UK there are approximately 850,000 people with dementia, and this number is projected to increase to 1.6 million by 2040 (translating to 1 new dementia case every 3 minutes). The global costs of dementia are estimated to be US$1 trillion annually2. The estimated cost of dementia care in the UK is £35 billion, which is projected to rise sharply to £95 billion by 2040. At every given time, about one out of four beds in the NHS hospitals is occupied by a patient with dementia3, thus impeding care for other medical conditions. During the last decades, large-scale efforts to delay or stop the progression of dementia due to Alzheimer's disease via pharmacological interventions have failed to produce viable treatment. This project will develop a technology that aims to slow or reverse the progression of Alzheimer's disease by boosting the resilience to the pathology in the most vulnerable regions at the early stages of the disease. Our approach is based on non-invasive electrical stimulation of the activity in those vulnerable structures to build up their intrinsic metabolic and energetic functionalities, in a way that is conceptionally similar to how exercise builds up the metabolic and energetic functionalities in the muscles. To non-invasively stimulate the activity at the target brain structures which are often at deep locations, we will use a novel method, called temporal interference (TI) stimulation, that we recently discovered. We have already shown that TI stimulation can be used to change the activity in the hippocampus, a deep brain structure that is critical for memory and cognitive function and strongly affected in the early stages of Alzheimer's disease, in an animal model and in healthy humans.In this project, we will address the most critical engineering challenges to develop our concept to a reliable and precise non-invasive deep brain stimulation technology that can be deployed in large-scale clinical testing. In addition, we will test and iteratively improve the effect of the temporal interference stimulation on the pathology of the hippocampus in animal models of Alzheimer's disease. Finally, we will start developing the pathway to translate the technology to a viable healthcare treatment with affordable and wearable hardware that can also be deployed at the patients' home.The temporal interference brain stimulation technology with its capability to target arbitrary deep brain structures will provide a platform for developing therapies for multiple brain disorders underpinned by aberrant activity in those structures. The development of such a disruptive technology will place the UK at the frontiers of the neurotechnology industry that is poised for the fastest growth in the medical industry.1. Livingston, G. et al. The Lancet (2017)2. Patterson, C. World Alzheimer Report 2018, London, UK (2018).3. Alzheimer's Society (2009).
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DOI:
10.1016/j.neuroimage.2023.120477
发表时间:
2024
期刊:
NeuroImage
影响因子:
5.7
作者:
[Vinao-Carl M]
通讯作者:
Vinao-Carl M
DOI:
10.1038/s42003-020-01604-x
发表时间:
2021-01-25
期刊:
Communications biology
影响因子:
5.9
作者:
[Sunshine MD, Cassarà AM, Neufeld E, Grossman N, Mareci TH, Otto KJ, Boyden ES, Fuller DD]
通讯作者:
Fuller DD
DOI:
10.1038/s41593-023-01456-8
发表时间:
2023-11
期刊:
NATURE NEUROSCIENCE
影响因子:
25
作者:
[Violante, Ines R., Alania, Ketevan, Cassara, Antonino M., Neufeld, Esra, Acerbo, Emma, Carron, Romain, Williamson, Adam, Kurtin, Danielle L., Rhodes, Edward, Hampshire, Adam, Kuster, Niels, Boyden, Edward S., Pascual-Leone, Alvaro, Grossman, Nir]
通讯作者:
Grossman, Nir
Remote focused encoding and decoding of electric fields through acoustoelectric heterodyning
通过声电外差对电场进行远程聚焦编码和解码
DOI:
10.1038/s42005-023-01198-w
发表时间:
2023
期刊:
Communications Physics
影响因子:
5.5
作者:
[Rintoul J]
通讯作者:
Rintoul J
Pulse-width modulated temporal interference (PWM-TI) brain stimulation.
脉冲宽度调制时间干扰 (PWM-TI) 大脑刺激。
DOI:
10.1016/j.brs.2023.12.010
发表时间:
2024
期刊:
Brain stimulation
影响因子:
7.7
作者:
[Luff CE]
通讯作者:
Luff CE
国内基金
海外基金
基于深穿透拉曼光谱的安全光照剂量的深层病灶无创检测与深度预测
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批准号:82372016
-
项目类别:面上项目
-
资助金额:48.00万元
-
批准年份:2023
-
负责人:林俐
-
依托单位: