Signaling events regulating the neurodevelopmental triad. Glutamate and secreted forms of beta-amyloid precursor protein as examples.

M P Mattson, K Furukawa
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Abstract

During development of the nervous system a common set of signal transduction pathways appear to regulate growth cone behaviors, synaptogenesis and natural cell death, three fundamental processes that comprise the "neurodevelopmental triad". Among the intercellular signals that coordinate the developmental triad in the mammalian brain are glutamate (the major excitatory neurotransmitter) and beta-amyloid precursor protein (beta APP). Localization of ionotropic glutamate receptors to dendritic compartments allows for selective regulation of dendrite growth cones and spine formation by glutamate released from axonal growth cones and presynaptic terminals. Expression of particular subtypes of glutamate receptors peaks during a developmental time window within which synaptogenesis and natural neuronal death occur. Calcium is the preeminent second messenger mediating both acute (rapid remodelling of the microtubule and actin cytoskeletal systems) and delayed (transcriptional regulation of growth-related proteins; e.g., neurotrophins) actions of glutamate. The expression of beta APP in brain is developmentally regulated and it is expressed ubiquitously in differentiated neurons. beta APP is axonally transported and secreted forms of beta APP (sAPPs) are released from neurons in an activity-driven manner. Secreted APPs modulate neuronal excitability, counteract effects of glutamate on growth cone behaviors, and increase synaptic complexity. Acute actions of sAPPs appear to be transduced by cyclic GMP which promotes activation of K+ channels and reduces [Ca2+]i. Delayed actions of sAPPs may involve regulation of gene expression by the transcription factor NF kappa B. Finally, the striking effects of glutamate, neurotrophic factors, and sAPPs on synaptogenesis and neuronal survival in cell culture systems and in vivo suggest that each of these signals plays major roles in the process of natural cell death. The same signalling mechanisms that mediate adapative regulation of neuroarchitecture during brain development appear to play prominent roles in maladaptive neurodegenerative processes in an array of disorders ranging from stroke to epilepsy to Alzheimer's disease.

调节神经发育三联征的信号事件。谷氨酸和β -淀粉样蛋白前体的分泌形式为例。
在神经系统发育过程中,一组常见的信号转导通路似乎调节生长锥行为、突触发生和自然细胞死亡,这三个基本过程构成了“神经发育三位一体”。在哺乳动物大脑中协调发育三要素的细胞间信号包括谷氨酸(主要的兴奋性神经递质)和β -淀粉样蛋白前体蛋白(β APP)。嗜离子性谷氨酸受体定位于树突腔室,允许通过轴突生长锥和突触前末端释放谷氨酸选择性调节树突生长锥和脊柱形成。特定亚型谷氨酸受体的表达在突触发生和自然神经元死亡发生的发育时间窗期间达到峰值。钙是介导急性(微管和肌动蛋白细胞骨架系统的快速重塑)和延迟(生长相关蛋白的转录调节)的卓越第二信使;例如,谷氨酸的神经营养作用。β APP在大脑中的表达受发育调控,在分化神经元中普遍表达。β - APP是轴突运输的,β - APP的分泌形式(sAPPs)以活动驱动的方式从神经元释放。分泌的app调节神经元的兴奋性,抵消谷氨酸对生长锥行为的影响,增加突触的复杂性。sAPPs的急性作用似乎是由循环GMP转导的,它促进K+通道的激活和降低[Ca2+]i。sAPPs的延迟作用可能涉及转录因子NF κ b对基因表达的调控。最后,谷氨酸、神经营养因子和sAPPs对细胞培养系统和体内突触发生和神经元存活的显著影响表明,这些信号都在细胞自然死亡过程中发挥重要作用。在大脑发育过程中介导神经结构适应性调节的相同信号机制似乎在从中风到癫痫到阿尔茨海默病等一系列疾病的不适应神经退行性过程中发挥着重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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