Development of synaptic inputs on spinal interneurons
Development of synaptic inputs on spinal interneurons
批准号:
7561749
负责人:
FRANCISCO J ALVAREZ
金额:
$31.39万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-06-01 至 2013-01-31
关键词:
AdultAnimal ModelAxonBehaviorBirthCharacteristicsDate of birthDevelopmentDevelopmental ProcessDistantElementsEmbryoEmbryonic DevelopmentFundingGenerationsGeneticGoalsIndividualInterneuronsInvadedIpsilateralJointsLimb structureLocomotionMediatingMethodologyMotorMotor NeuronsMotor outputMovementMusMuscleNamesNatureNeonatalNeurologicNeuronsNewborn InfantOperative Surgical ProceduresOutputPathway interactionsPatternPhasePhenotypePopulationPublic HealthRecurrenceReflex actionRenshaw CellReporterResearchResourcesRoleSolidSpecific qualifier valueSpinalSpinal CordStagingStructureSynapsesTestingTo specifyVentral Horn of the Spinal CordWorkcell typedensityfetalinsightmotor controlmotor deficitmouse modelneurotransmissionnovelpostnatalsensory feedbacktranscription factor
中文摘要
描述(由申请人提供):运动的发展取决于脊髓运动回路的成熟。胚胎运动输出的特征首先是自发活动,导致胎儿的抽搐运动,后来变得更有节奏,并显示肢体交替。在新生儿中,运动发育然后经历反射和姿势成熟的时期,导致协调的负重运动。所有这些变化都是由于脊髓突触网络的不同成熟阶段,更具体地说,是由于最终控制运动神经元放电模式和运动输出的局部中间神经元的不同成熟阶段。我们的长期目标是了解这些局部脊髓回路的发展。过去,脊髓中间神经元的多样性和复杂性阻碍了这一领域的进展。幸运的是,最近开发的小鼠模型表达基因编码的报告,以确定interneuronal谱系现在允许他们的研究,通过发展,并允许新的理解的原则,支配脊髓interneuron的发展。我们的工作一直集中在一个谱系的胚胎中间神经元,命名为V1,提供抑制控制同侧运动神经元。以前,我们发现,这组分化成不同类型的成人中间神经元,包括Renshaw细胞和Ia抑制性中间神经元(IaIN),分别提供复发性抑制相同的运动神经元和运动神经元之间的相互抑制与拮抗作用周围的单个关节。因此,这两个中间神经元在运动控制中起着关键但不同的作用。一个基本的问题是,是什么机制使单个胚胎组的中间神经元在成人中分化成不同的功能类别。先前对Renshaw细胞的分析提供了一些重要的见解,包括这种特化可能发生在胚胎发育的早期,并且单个细胞类型通过脊髓发育的不同阶段获得不同的突触学和功能。在这个建议中,我们的目标是调查的发展的一大群V1中间神经元,包括IaINs,插入本体感受反射。潜在的假设是,IaINs是一组V1-中间神经元,它们的早期出生(与Renshaw细胞同时出生)在胚胎中获得与成人完全不同的瞬时运动轴突输入和功能。我们还假设,后来他们摆脱这些胚胎输入和发展连接,使他们能够介导相互抑制。因此,我们提出了三个目标,以找出他们的出生日期(aim 1),他们的主要突触输入和输出在胚胎(aim 2)和出生后的相互抑制回路的成熟(aim 3)。这项工作的一个必然结果是,先天性缺陷,导致脊髓网络发育受阻并不一定意味着网络与不成熟的成人连接,但更有可能的网络不同的连接适当的早期发展点。因此,重要的是要了解这种早期连接的性质,以更好地了解新生儿神经运动缺陷的多样性。公共卫生解放这项工作将研究脊髓发育,重点是神经元网络,介导协调运动和运动的成熟。该研究将使用强大的新小鼠遗传学方法来分析在发育过程中组织该网络的细胞元素。因此,本研究旨在了解新生儿和婴儿的正常和异常运动发育
英文摘要
DESCRIPTION (provided by applicant): The development of movement depends on the maturation of the spinal cord motor circuits. Embryonic motor output is characterized first by spontaneous activity resulting in fetal jerk movements that later become more rhythmic and show limb alternations. In newborns motor development then undergoes a period of reflex and postural maturation leading into coordinated weigh-bearing locomotion. All these changes occur as a consequence of different maturation phases of the spinal synaptic networks and more specifically of local interneurons that ultimately control motor neuron firing patterns and motor output. Our long term objective is to understand the development of these local spinal circuits. Advances in this field were hampered in the past by the diversity and complexity of spinal interneurons. Fortunately, the recent development of mouse models expressing genetically-encoded reporters to identify interneuronal lineages now permits their study through development and allowed new understanding of the principles that govern spinal interneuron development. Our work has been focusing on one lineage of embryonic interneurons, named V1, that provide inhibitory control to ipsilateral motoneurons. Previously, we showed that this group diversifies into different types of adult interneurons, including Renshaw cells and Ia inhibitory interneurons (IaINs) that provide respectively recurrent inhibition to the same motoneurons and reciprocal inhibition between motoneurons with antagonistic actions around single joints. These two interneurons thus perform critical, but different roles in motor control. A basic question is then what mechanisms diversify single embryological groups of interneurons into distinct functional classes in adult. Previous analyses on Renshaw cells provided some important insights, including that this specification might occur early in embryological development and that individual cell types acquire different synaptology and functions through the different phases of spinal cord development. In this proposal we aim to investigate the development of the large group of V1 interneurons, including IaINs, that are interposed in proprioceptive reflexes. The underlying hypotheses are that IaINs are a group of V1-interneurons specified by their early birth (simultaneously with Renshaw cells) to acquire in the embryo transient motor axon inputs and functions that are quite distinct from those in adult. We also hypothesize that later they shed these embryonic inputs and develop connectivity that allows them to mediate reciprocal inhibition. Therefore we propose three aims to find out their birth dates (aim1), their major synaptic inputs and outputs in embryo (aim2) and the maturation of the reciprocal inhibitory circuit postnatally (aim 3). A corollary of this work is that congenital deficits that result in arrested spinal network development do not necessary imply a network with immature adult connectivity, but more likely networks of different connectivity appropriate to an earlier developmental point. Therefore it is important to understand the nature of this earlier connectivity to better appreciate the diversity of neurological motor deficits expressed in newborns. PUBLIC HEALTH RELEVENCE The work proposed will study spinal cord development focusing on the neuronal networks that mediate the maturation of coordinate movements and locomotion. The study will use powerful new mouse genetic methodologies to analyze the cellular elements that organize this network during development. The research is thus guided towards understanding normal and abnormal motor development in newborn and infants
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