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Broadly Neuroprotective Drug for TBI

Broadly Neuroprotective Drug for TBI
TBI 的广泛神经保护药物
批准号:
7816035
负责人:
Fernando Gomez-Pinilla
金额:
$40.96万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-30 至 2011-08-31
关键词:

项目摘要

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中文摘要
翻译
描述(由申请人提供):本申请涉及广泛的挑战领域(15)转化科学,以及具体的挑战主题15-NS-103,因为我们的建议是对一种神经疾病的新治疗方法的“概念证明”的“示范”。该应用还可以应用于广泛的挑战领域(03)生物标记物的发现和验证,以及具有挑战性的特定主题:03-NS-102神经生物标记物的标准化和验证,因为我们正在检查BDNF和突触可塑性标记的水平,这些标记物可以作为创伤性脑损伤的生物标记物实施03-DK-105营养生物标记物,因为我们的建议与识别和验证敏感和预测性生物标记物有关,以评估特定营养物质(姜黄素衍生物)的状态。创伤性脑损伤(TBI)每年影响超过1,500,000美国人,使其成为普通人群最常见的致残原因之一。脑外伤的治疗异常复杂,因为脑外伤可能是由于各种侮辱和机制对广泛的大脑区域造成的,这些侮辱和机制损害了神经功能和长期认知影响。因此,脑外伤的正确治疗需要能够正确解决多种弱点的治疗,特别是那些与认知和行为损害的长期神经元功能和可塑性相关的弱点。为了满足对广泛的神经保护药物的需求,我们已经确定了一种有效的姜黄素的合成衍生物,即CNB-001,它可以全面正常化脑损伤后被破坏的几个神经元过程。天然产物姜黄素是CNB-001的前体,在几种神经退行性疾病模型中显示出出色的疗效,如阿尔茨海默氏症、脑缺血、促进成人海马区的神经再生,以及在我们的手中,对抗脑损伤后导致的学习障碍。CNB-001的优势是效力是姜黄素的几倍,口服有效,吸收迅速,进入血液和大脑。CNB-001同时具有神经保护和神经功能增强的特性,表明CNB-001是治疗脑外伤和其他神经退行性疾病的唯一候选药物。为了测试我们的化合物CNB-001的疗效,我们将使用流体冲击性损伤模型(FPI)来治疗颅脑损伤,该模型产生的闭合性头部创伤的特征是显著的生理变化,在中度创伤下组织学损伤相对较少。该项目的目标是探索CNB-001对脑外伤的治疗潜力,并确定这些作用的潜在机制。具体地说,我们将评估饮食中添加CNB-001恢复脑损伤后被破坏的突触可塑性和能量代谢的能力,以及CNB-001在对抗认知、情绪障碍和运动功能障碍方面的作用。值得注意的是,我们对CNB-001疗效的全面研究考虑了大脑以外的运动行为分析。我们的初步数据非常令人兴奋地证明,CNB-001可以抵消脑外伤后脊髓中BDNF水平的下降。这些数据非常令人兴奋和相关,有助于了解脑外伤患者常见的步态功能障碍,并为开发治疗方法提供了可能性。此外,鉴于初步证据显示CNB-001可能影响BDNF的活性,以及BDNF调节突触可塑性和能量代谢的能力,我们将评估BDNF在介导CNB-001的一些行动中的作用。我们将结合其与行为的关系来研究其分子机制,以期为将CNB-001应用于脑外伤患者的治疗提供证据。基于以上考虑,我们的具体挑战是:1)开发一种治疗脑外伤的临床有效药物,能够保护神经元免受多重应激的损害,并支持突触功能和细胞的能量供应;2)在受到侮辱/挑战之前,以微创的方式将药物输送到大脑,以实现最佳的适用性。 公共卫生相关性:该项目的目标是探索一种广谱药物对脑外伤的治疗潜力,并利用大鼠液压冲击损伤模型确定其潜在机制。我们有一个全面的方法来评估CNB-001恢复突触可塑性和能量代谢的能力,同时对抗大脑和脊髓中认知、情绪和运动功能障碍。我们希望产生有价值的临床前信息,使我们有权启动寻求IND批准的步骤。
英文摘要
DESCRIPTION (provided by applicant): This application addresses the broad Challenge Area (15) Translational Science, and Specific Challenging Topic 15-NS-103 as our proposal is a "Demonstration of "proof-of-concept" for a new therapeutic approach in a neurological disease. The application may also apply to the Broad Challenge Area (03) Biomarkers discovery and validation, and Specific Challenging Topics: 03-NS-102 Standardization and validation of neurological biomarkers, as we are examining levels of BDNF and synaptic plasticity markers that can be implemented as biomarkers for traumatic brain injury 03-DK-105 Nutrient biomarkers, as our proposal is related to the identification and validation of sensitive and predictive biomarkers to evaluate status of a specific nutrient (curcumin derivative). Traumatic brain injury (TBI) affects more than 1,500,000 Americans every year, making TBI one of the most common causes of disability for the general population. The treatment of TBI is exceptionally complex as TBI can result from a large variety of insults and mechanisms to broad brain areas that compromise neural function with long-term cognitive implications. Therefore, proper treatment of TBI should require therapies that can properly address the multiple weaknesses, particularly those related to long-term neuronal function and plasticity underlying the cognitive and behavioral impairment. To address the need for broadly neuroprotective drugs, we have identified a potent synthetic derivative of curcumin, namely CNB-001, that may comprehensively normalize several of the neuronal processes that are disrupted after TBI. The natural product curcumin, which is the precursor of CNB-001, has shown excellent efficacy in counteracting dysfunction in several models of neurodegenerative diseases such as Alzheimer's, cerebral ischemia, promoting neurogenesis in the adult hippocampus, and in our hands, counteracting learning impairment resulting after TBI. CNB-001 has the advantage to be several times more potent than curcumin, orally active with rapid absorption into the blood and to the brain. CNB-001 has both neuroprotective and neuronal function enhancing properties, suggesting CNB-001 as a unique candidate drug for treating TBI and other neurodegenerative disorders. To assay the efficacy of our compound CNB-001, we will use the fluid percussion injury model (FPI) for TBI that produces a closed head wound characterized by marked physiological changes with a relative paucity of histological damage under moderate injury. The goal of this project is to explore the therapeutic potential of CNB-001 for TBI and to determine potential mechanisms for these actions. Specifically, we will evaluate the ability of CNB-001 supplemented in the diet to restore synaptic plasticity and energy metabolism disrupted after TBI, in conjunction with CNB-001 effects on counteracting cognitive, mood disorders, and motor dysfunction. It is noteworthy that our comprehensive study of CNB-001 efficacy considers the analysis of motor behavior beyond the brain. Our preliminary data are very exciting to demonstrate that CNB-001 counteracts a reduction in BDNF levels in the spinal cord after TBI. These data are very exciting and relevant to help understanding gait dysfunction common in TBI patients, and offering the possibility for developing a therapy. In addition, given preliminary evidence showing the potential of CNB-001 to affect BDNF activity, and the capacity of BDNF to modulate synaptic plasticity and energy metabolism, we will evaluate the role of BDNF mediating some of the actions of CNB-001. We will study molecular mechanisms in conjunction with their relationship to behavior, expecting to provide evidence for applying CNB-001 as a therapeutic for treating TBI patients. Based on all above consideration, our specific challenges are: 1) to develop a clinically effective drug for treating TBI with the capacity to protect neurons to damage in response to multiple stresses, and to support synaptic function and energy supply to cells; 2) to deliver the drug to the brain in a minimally invasive fashion for optimal applicability even before the insult/challenge. PUBLIC HEALTH RELEVANCE: The goal of this project is to explore the therapeutic potential of a broad-spectrum drug for TBI and to determine its potential mechanisms using fluid percussion injury model in rats. We have a comprehensive approach to evaluate the ability of CNB-001 to restore synaptic plasticity and energy metabolism in conjunction with counteracting dysfunction in cognition, mood, and locomotion, in the brain and spinal cord. We expect to generate valuable pre-clinical information that will entitle us to initiate the steps for seeking IND approval.
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Precision Medicine Approach: Using genomic information to guide TBI treatment
Precision Medicine Approach: Using genomic information to guide TBI treatment
Precision Medicine Approach: Using genomic information to guide TBI treatment
Spatiotemporal Molecular Substrates of TBI at Single Cell Resolution
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