3D patient-derived organoids: A viable and complementary model to study neural system dysfunction in Alzheimer's Disease
3D patient-derived organoids: A viable and complementary model to study neural system dysfunction in Alzheimer's Disease
批准号:
2641001
负责人:
金额:
$0.0万
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --
中文摘要
阿尔茨海默病(AD)是一种毁灭性的疾病,其有效的疾病修饰治疗尚未被确定。来自我们实验室的最新证据表明,神经回路功能障碍在AD中很早就出现,先于认知缺陷并形成随后的疾病进展,最终导致神经退行性变和痴呆。AD中的神经回路表现出早期神经元过度兴奋,其在后期疾病中转变为活动减退,这分别是淀粉样蛋白β和tau(AD中积累的标志性蛋白质)的病理作用的结果。小鼠模型对于以高时空分辨率解剖这些回路水平的变化至关重要,同时为潜在的病理机制和候选治疗靶点提供了显着的见解。然而,在临床前模型中有希望的疗法的临床转化(例如,淀粉样蛋白β的减少/去除)迄今已被证明是不可行的,突出了动物模型的局限性以及消除人类疾病相关病理学改变的歧义的挑战。目前研究AD中神经回路功能变化的研究通常在携带突变/转基因或明显蛋白质病的小鼠中进行,这些蛋白质病复制了在人类疾病中观察到的表型。这种实验(通常具有中等严重性)是高度复杂的、侵入性的和低通量的,因为通常需要进行手术和植入颅骨装置并注入生物传感器/植入电极以实现高分辨率的体内记录。这些挑战强调了识别和验证补充和替代模型的必要性,这些模型更忠实地再现了AD中的人脑回路,并有益地解决了AD研究中动物模型的使用。最近出现的方法提供了一种辅助方法,利用该方法来模拟人类疾病,可以在严格控制的实验条件下研究和调节人类疾病。条件值得注意的是,我们在这一提案上的合作者,伦敦大学学院的Selina Wray教授,在NC 3R资助的工作基础上(通过2013年的CRACK-IT Untangle项目,https://nc3rs.org.uk/crackit/untangle),已经成功地从家族性AD和tau蛋白病患者中产生了长期可行和同质的脑类器官,这些脑类器官形成了复杂的神经元回路,并允许研究人类相关神经成分中与疾病相关的回路水平变化。在这里,我们建议独特地将这种专业知识与Busche实验室的最先进的结构和功能记录技术相结合,以研究AD中的神经元回路(即,神经像素多通道电生理学、双光子钙成像、3D光片显微镜)。在这样做的过程中,我们的目标是利用和联合收割机由两个小组建立的尖端方法,建立一个全新的平台,以获得对AD电路功能的变革性见解,促进临床转化,并显着减少对动物模型的依赖。患者来源的iPSC培养物将具有完整的疾病相关遗传特征,并且所提出的高分辨率记录技术将允许详细研究相关细胞类型和覆盖电路中的疾病机制,并提供询问导致临床AD发展的早期细胞和分子变化的新机会。随着人们越来越认识到AD早期神经回路功能障碍的重要性,以及全球越来越多的实验室利用动物模型来了解AD中神经元回路的机制基础,我们预计我们的类器官模型的验证将导致25%的现有动物工作的实质性替代,不仅在我们的实验室,而且随后,在全球约20个实验室(相当于约300只动物/年)中研究AD中的回路功能障碍。
英文摘要
Alzheimer's Disease (AD) is a devastating disorder for which effective disease-modifying treatments are yet to be identified. Recent evidence from our laboratory indicates that neural circuit dysfunction emerges very early in AD, preceding cognitive deficits and shaping subsequent disease progression, ultimately leading to neurodegeneration and dementia. Neural circuits in AD exhibit early neuronal hyperexcitability which transitions to hypoactivity in later disease, as a result of the pathological effects of Amyloid beta and tau (the hallmark proteins that accumulate in AD), respectively. Mouse models have been crucial to dissecting these circuit-level changes with high spatiotemporal resolution while providing remarkable insights into potential pathological mechanisms and candidate therapeutic targets. Nevertheless, clinical translation of promising therapies in preclinical models (e.g., reduction/removal of Amyloid beta) has so far proven unviable, highlighting the limitations of animal-models as well as the challenge in disambiguating human-disease relevant pathological alterations. Current research investigating changes in neural circuit function in AD is typically conducted in mice that carry mutations/transgenes or manifest proteinopathies which reproduce phenotypes observed in human disorders. Such experiments (often of moderate severity) are highly complex, invasive, and of low-throughput, as it is often necessary to perform surgeries and implant cranial apparatus and inject biosensors/implant electrodes to enable high-resolution in-vivo recordings. These challenges emphasise the need to identify and validate complimentary and alternative models that more faithfully recapitulate human brain circuits in AD and beneficially address the use of animal models in AD research.Technical advances in patient-derived induced pluripotent stem cell (iPSC) methodologies have recently emerged that provide an auxiliary approach with which to model human disease that can be studied and modulated under tightly controlled experimental conditions. Notably, our collaborator on this proposal, Prof. Selina Wray at UCL, building on work funded by the NC3Rs (through CRACK-IT in 2013 on the Untangle project, https://nc3rs.org.uk/crackit/untangle), has successfully generated long-term viable and homogeneous cerebral organoids from familial AD and tauopathy patients which form complex neuronal circuits and permit the study of disease-relevant circuit-level changes in human-associated neural components. Here, we propose to uniquely integrate this expertise with that of the Busche Laboratory's in state-of-art structural and functional recording techniques to study neuronal circuits in AD (i.e., Neuropixels multi-channel electrophysiology, two-photon calcium imaging, 3D lightsheet microscopy). In so doing, we aim to leverage and combine the cutting-edge methods established by both groups to establish a radically novel platform to gain transformative insights into AD circuit function, promote clinical translation, and significantly reduce reliance on animal models. Patient-derived iPSC cultures will have the complete disease-relevant genetic profile, and the proposed high-resolution recording techniques will permit the detailed investigation of disease mechanisms in relevant cell types and overlying circuits, and provide a novel opportunity to interrogate the early cellular and molecular changes that lead to the development of clinical AD. With the increasing recognition of the importance of early neural circuit dysfunction in AD, and a growing number of laboratories worldwide utilising animal models to understand the mechanistic underpinnings of neuronal circuitry in AD, we anticipate that validation of our organoid model will lead to a substantial replacement of 25% of existing animal work, not only in our laboratory but also, subsequently, in the ~20 laboratories worldwide (equating to ~300 animals/year) which study circuit dysfunction in AD.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
海外基金