EFRI-BSBA Integration of Dynamic Sensing and Actuating of Neural Microcircuits
EFRI-BSBA Integration of Dynamic Sensing and Actuating of Neural Microcircuits
批准号:
0937848
负责人:
Arto Nurmikko
金额:
$200.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-15 至 2014-08-31
中文摘要
神经微电路的动态传感和驱动集成PI:Arto V. Nurmikko EFRI计划旨在通过开发和融合新一代生物传感(记录)和驱动(神经刺激)技术,为我们理解大脑微电路及其功能的复杂非线性动力学提供变革性范例。拟议中的研究在动物模型中将大脑电路与外部光子和微电子接口结合起来,特别是用于研究所谓的“工作记忆”-大脑的“随机存取记忆”。在神经工程层面,拟议的研究在微观尺度上整合了一套新的神经感知和驱动工具,这些工具被应用于大脑的特定感知和规划行动,特别是前额叶皮层中信息处理的动态。一个关键的实验驱动力是一种新的微光学/光子器件技术的发展,这将使精确的时空目标,通过皮层微电路的感觉通路和成像的电路在真实的时间在特定的动物模型。传感器/致动器工程中的独特设备技术元素集成了超紧凑的多元件光发射器阵列和微电子芯片级传感器,用于实时激发和映射大脑微电路,这已经通过细胞水平的遗传和纳米材料敏化而呈现刺激响应和记录。开发具有相关脑科学范例的感测/致动微工具的目标是为微器件接口铺平道路,以便在大脑中的神经元群体之间进行双向访问。双向性要求神经记录和神经刺激可以在空间和时间上在细胞水平上同时实现多个神经元,并最终实现多个大脑部位。开发一类特定的大脑接口探针,协同现代光子学/光电子学的方法,用于从/向大脑微电路“阅读”和“写入”神经信息,这是EFRI计划提出的目标。在更广泛的背景下,该研究旨在促进闭环反馈紧凑型设备技术的实施,该技术提供了全新类别的神经接口的承诺,用于(i)推进对大脑从感知到驱动的理解-微电路动态的细胞水平分辨率,(ii)旨在将该技术应用于潜在的治疗和修复应用。例如,对大脑中工作记忆功能的研究与精神分裂症、注意力缺陷障碍等神经系统疾病密切相关,并与癫痫有关。该团队的目标是利用该项目在哺乳动物模型(体外和体内)中的研究成果,以便将关键的脑科学范式(如至关重要的“工作记忆”)转化为人类神经科学和康复目标。通过在团队中包括临床神经学接口,我们提出的研究设想有助于我们解开神经系统疾病,为阐明和探索类脑系统的性质对其他技术的适用性铺平道路,以及通过物理和生命科学交叉前沿领域的先进技术开发提高美国在全球经济中的竞争力。对这些主题的研究也有望创造一代真正跨学科教育的“神经工程”研究生,以及创新企业和企业家。
英文摘要
ABSTRACTIntegration of Dynamic Sensing and Actuating of Neural MicrocircuitsPI: Arto V. Nurmikko The proposed EFRI program aims to develop transformative paradigms in our understanding of the complex nonlinear dynamics of brain microcircuits and their function, by developing and fusing a new generation biosensing (recording) and actuation (neurostimulation) techniques to a potent toolbox. The proposed research engages brain circuits with external photonic and microelectronic interfaces in animal models, in particular for the study of the so-called "working memory" - the brain's "random access memory". At the neuroengineering level, the proposed research integrates new set of neural sensing and actuation tools on the microscale that are applied to engage with specific sensing and planning action by the brain - in particular the dynamics of information processing in the prefrontal cortex. A key experimental driver is the development of a new micro-optical/photonic device technology that will enable precise spatio-temporal targeting through sensory pathways of cortical microcircuitry and the imaging of this circuitry in real time in specific animal models. The unique device technology elements in the sensor/actuator engineering integrate ultracompact multi-element arrays of light emitters and microelectronic chip-scale sensors for excitation and mapping of the brain microcircuitry in real-time, which has been rendered both stimulus responsive and recordable by cellular-level genetic and nanomaterial sensitizing. The goal of the development of sensing/actuation microtools with associated brain science paradigms is to pave way for microdevice interfaces for bidirectional access across a population of neurons in the brain. Bidirectionality requires that both neural recording and neural stimulation can be achieved simultaneously at cellular level for multiple neurons, and ultimately multiple brain sites, spatially and temporally. Development of a class of specific brain-interfaces probes which synergize approaches from contemporary photonics/optoelectronics for "reading" and "writing" neural information from/to brain's microcircuits is the contributing aim of this planned EFRI proposal. In a broader context, the research aims to facilitate the implementation of a closed-loop feedback compact device technology that offers the promise of entirely new classes of neural interfaces for (i) advancing the understanding of the brain from sensing to actuation- with cellular level resolution of microcircuit dynamics, (ii) aim the application of the technology to potentially therapeutic and prosthetic applications. For example, the study of the working memory function in the brain is closely associated with neurological diseases such as schizophrenia, attention deficit disorder and has been linked to epilepsy. The team aims to leverage the research outcomes from this program in mammalian animal models (in vitro and in vivo) so that key brain science paradigms such as the fundamentally important "working memory" will find translation to human neuroscience and rehabilitative goals. By including within the team a clinical neurology interface, our proposed research is envisioned to contribute to our unraveling of neurological disease, pave way for elucidating and exploring the applicability the nature of the brain-like systems to other technologies, as well as improve U.S. competitiveness in the global economy through advanced technology development in a frontier area at the intersection of physical and life sciences. The research on these topics is also expected to create a generation of "neuroengineering" graduate students with true interdisciplinary education, as well as innovative businesses and entrepreneurs.
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Vertical Cavity Blue and Ultraviolet Light Emitters
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批准号:0070887
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资助金额:$24.0万
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财政年份:2000
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Acquisition of an Ultrafast Laser Spectrometer/Metrology System
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批准号:9871213
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财政年份:1998
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负责人:Arto Nurmikko
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依托单位:
Research on Blue and Near Ultraviolet Diode Lasers
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资助金额:$15.0万
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Terahertz Transient Spectroscopy of Small Semiconductor Structures
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财政年份:1995
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依托单位:
Blue-Green Vertical Cavity and Microresonator Semiconductor Lasers
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The Tenth International Conference on the Electronic Properties of Two-Dimensional Systems (EP2DS-10), May 13, 1993 - June 4, 1993, Newport, Rhode Island
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依托单位:
Renovation and Enhancement of the Microelectronics Facility
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批准号:9214623
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-
财政年份:1992
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依托单位:
Ultrafast Spectroscopy of Nanostructures
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批准号:9121747
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项目类别:Continuing Grant
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资助金额:$246.0万
-
财政年份:1992
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负责人:Arto Nurmikko
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依托单位:
Engineering Research Equipment: Femtosecond Laser Spectroscopy of Semiconductor Nanostructures
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负责人:Arto Nurmikko
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依托单位:
U.S.-Austria Cooperative Research on Narrow Bandgap IV-VI Semiconductor Microstructures
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Spectroscopy of a High Mobility, Low Dimensional Electron Gas by Time- and Spatially Resolved Spectroscopy
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批准号:9112329
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依托单位:
Ultrafast High Intensity Optical Effects in New II-VI Compound Semiconductor Microstructures
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财政年份:1990
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依托单位:
Excitons and Nonlinear Optical Effects in Wide Gap II-VI Semiconductor Superlattices
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批准号:8611106
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依托单位:
海外基金