Going full circle - optogenetic control of Ca2+ release from and reuptake into the endoplasmic reticulum
Going full circle - optogenetic control of Ca2+ release from and reuptake into the endoplasmic reticulum
批准号:
315402240
负责人:
Professor Dr. Alexander Gottschalk
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2016
资助国家:
德国
项目状态:
已结题
起止时间:
2015-12-31 至 2023-12-31
中文摘要
在可兴奋细胞中,胞内Ca 2+分别通过Ryanodine受体(RyR)和SERCA-Ca 2 +-ATP酶从内/肌浆网释放和摄入,在功能上相互耦合。这允许对局部Ca 2+信号(Ca 2+火花)进行严格的时空控制,并通过低静息Ca 2+浓度来保护细胞活力。尽管RyR Ca 2+释放通道和SERCA Ca 2+泵在大脑、心脏、胰腺和骨骼肌中的健康和疾病中发挥着重要作用,但它们的分子靶向操纵仍然具有挑战性和复杂性。例如,患者突变通过心脏中的RyR 2通道通过增加Ca 2+泄漏引起危险的心律失常。然而,在实验细胞模型中,Ca 2+渗漏通常由非生理性的、典型的药理学干预诱导,其代价是显著的脱靶效应。重要的是,RyR和SERCA特异性工具的缺乏损害和延迟了用于大量疾病的药物化合物的开发,包括心律失常、癌症、认知功能障碍、糖尿病、癫痫、心力衰竭和肌肉疲劳。虽然RyR通道和SERCA泵的光遗传学操作解决了一个具有挑战性的领域,但我们合作开发第一个OptoRyR工具的努力不仅很有前途,而且可以为靶向特异性功能研究打开重大机会,这可能有助于药物开发和测试。最成功的策略是使用与RyR 2通道融合的Ca 2+传导性视紫红质2变体。这种OptoRyR 2依赖于Ca 2+诱导的Ca 2+释放的内源性放大机制,通过胞质Ca 2+激活RyR 2通道。在第二个资助期,我们将通过三个主要方向显着扩展计划的工作:在目标1中,我们将把OptoRyR 2的机械概念应用于C。利用CRISPR/Cas9介导的基因编辑技术,研究了线虫和人类干细胞衍生的心肌细胞,以解决完整动物和人类心肌细胞中的基本生物学问题,从而开发出一种新型的光遗传学平台,用于RyR 2靶向化合物的药物安全性测试。目的2通过在通道的大细胞溶质壳结构中插入LOV结构域来直接光机械光门控RyR 2的新机制方法拓宽了实用概念。这通过RyR通道的现有高分辨率CryoEM结构成为可能。目的3,并关闭循环,扩展光遗传学工具箱,通过两个平行的策略来控制Ca 2+摄取:与受磷蛋白分子连接的cAMP产生的光激活和SERCA的光机械控制都将调节Ca 2+摄取。因此,我们将开发一个用于亚细胞Ca 2+控制的工具箱,并将其应用于体外和体内,以探索Ca 2+稳态的基本问题,以及药物安全性测试的新概念。
英文摘要
In excitable cells, intracellular Ca2+ release and uptake from and into the endo/sarcoplasmic reticulum, via the Ryanodine Receptor (RyR) and SERCA-Ca2+-ATPase, respectively, are functionally coupled. This allows for tight spatiotemporal control of local Ca2+ signals (Ca2+ sparks) and safeguards cell viability through low resting Ca2+ concentrations. Despite the eminent role of RyR Ca2+ release channels and SERCA Ca2+-pumps in the brain, heart, pancreas and skeletal muscle, both in health and disease, their molecularly targeted manipulation remains challenging and complex. For example, patient mutations cause dangerous arrhythmias via RyR2 channels in the heart through increased Ca2+ leak. However, in experimental cellular models Ca2+ leak is commonly induced by non-physiological, typically pharmacological interventions at the cost of significant off-target effects. Importantly, the lack of RyR- and SERCA-specific tools compromises and delays the development of drug compounds for a large number of diseases, including arrhythmias, cancer, cognitive dysfunction, diabetes, epilepsy, heart failure, and muscle fatigue. While optogenetic manipulation of RyR channels and SERCA pumps addresses a challenging area, our collaborative efforts to develop the first OptoRyR tool are not only promising, but can open major opportunities for target-specific functional studies, which may facilitate drug development and testing.In the first funding period we have developed de novo strategies for light-induced Ca2+ release. The most successful strategy used a Ca2+-conducting Channelrhodopsin2 variant fused to the RyR2 channel. This OptoRyR2 relies on an endogenous amplification mechanism of Ca2+-induced Ca2+-release through cytosolic Ca2+-activation of RyR2 channels. For the second funding period we will significantly extend the planned work through three major directions: In Aim 1 we will apply the mechanistic concept of OptoRyR2 to C. elegans and human stem cell-derived cardiomyocytes using CRISPR/Cas9 mediated gene editing to address fundamental biological questions in intact animals and human cardiomyocytes to develop a novel optogenetic platform for drug-safety testing of RyR2-targeted chemical compounds. Aim 2 broadens the utility concept through a new mechanistic approach of direct opto-mechanical light-gating of RyR2 through insertion of LOV domains in the channel’s large cytosolic shell structure. This became possible through existing high-resolution CryoEM structures of RyR channels. Aim 3, and closing the circle, extends the optogenetic toolbox to control Ca2+ uptake through two parallel strategies: light-activation of cAMP production molecularly linked to phospholamban and opto-mechanical control of SERCA will both modulate Ca2+ uptake. Thus, we will develop a toolbox for subcellular Ca2+ control and apply this in vitro and in vivo to enable exploring basic questions of Ca2+ homeostasis, as well as a new concept of drug-safety testing.
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Coordination Funds
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批准号:315342093
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项目类别:Priority Programmes
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资助金额:$0.0万
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财政年份:2016
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
Developing and implementing novel light-switches in the nervous system of the nematode
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批准号:164461882
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项目类别:Research Units
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资助金额:$0.0万
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财政年份:2010
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
Molekulare und Zelluläre Biochemie
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批准号:159417942
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项目类别:Heisenberg Professorships
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资助金额:$0.0万
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财政年份:2009
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
Functional analysis of novel proteins associated with nicotinic acetylcholine receptors and synaptic vesicles in Caenorhabditis elegans
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批准号:46383571
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2007
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
Optogenetic Analysis of neuropeptidergic regulation of fast synaptic transmission at the zebrafish neuromuscular junction
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批准号:459267427
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:--
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
A sleep- and locomotion stop neuron with compartmentalized Ca2+ dynamics as a CPG regulator?
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批准号:323383487
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:--
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
Mechanisms of specific (co-)transmission of distinct neuropeptides from a single neuron
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批准号:452359796
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:--
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负责人:Professor Dr. Alexander Gottschalk
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依托单位:
国内基金
海外基金
钴基Full-Heusler合金的掺杂效应和薄膜噪声特性研究
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批准号:51871067
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2018
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负责人:吴晟
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依托单位:
冰流-海洋环流完全耦合模式与着地冰-冰架-海洋联合作用机制的研究
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批准号:41506212
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项目类别:青年科学基金项目
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资助金额:21.0万元
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批准年份:2015
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负责人:赵励耘
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依托单位: