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1.
学习记忆是脑的重要功能之一,与学习记忆相关的基因很多,它们通过影响突触功能、信号转导、转录和翻译控制、能量代谢等途径进行学习记忆行为的调控。研究相关基因可为阐明学习记忆的分子机制和遗传机制奠定基础。  相似文献   

2.
5-HT(五羟色胺)能神经元是起源最早的神经元之一,在传统的神经元形成前,成长中的轴突就可释放5-HT,并且通过5-HT的各种亚型受体来实现不同的功能。近年来,随着5-HT、5-HTRs(五羟色胺受体)的基因克隆及5-HT受体选择性激动剂和拮抗剂的研究发展,5-HT系统在学习记忆中的作用越发明确,许多研究结果表明:5-HT系统在记忆的巩固、短时程记忆(STM)及长时程记忆(LTM)中起重要作用,5-HT1A受体更是在非脊椎动物及哺乳动物的脑中都高度表达,并通过相似的信号转导途径参与学习与记忆的形成和巩固。本文将介绍5-HT1A受体、5-HT1A受体激动剂、5-HT1A受体拮抗剂及其与学习记忆的联系,重点综述5-HT1A受体参与学习记忆的信号转导途径研究进展,讨论5-HT1A受体参与学习记忆的可能性分子神经生物学机制。  相似文献   

3.
毒蕈碱型乙酰胆碱受体(Muscarinic Acetylcholine Receptors,mAChRs)是昆虫神经系统中一类重要的G蛋白偶联受体.昆虫mAChRs可以分为A、B、C型三大类,它们通过偶联不同的G蛋白激活不同的第二信使,完成信号转导过程,从而发挥其功能.mAChRs参与调控昆虫多种生理反应和行为过程,如生长发育、运动、鸣声、嗅觉以及学习记忆等,是潜在的杀虫剂靶标,对昆虫mAChRs的全面研究有助于开发新型杀虫剂.本文较为全面地综述了近年来国内外昆虫mAChRs的组织分布、信号转导、药理学特性以及生理功能等方面的研究新进展,为今后研究该类受体提供参考.  相似文献   

4.
表观遗传修饰在学习和记忆中的调节作用   总被引:1,自引:0,他引:1  
学习和记忆行为是大脑的基本功能,它使得生物个体能够更好地适应环境的变化。揭示学习和记忆的分子生物学机制是现代神经生物学发展的目标之一。经过近40年的研究现已初步证实了突触可塑性在学习和记忆中所起的关键作用。而近年来的研究发现,表观遗传修饰对学习和记忆过程具有重要的调控作用。这一发现将有利于进一步揭示学习和记忆的复杂机制,并将为某些认知障碍性疾病的治疗提供新的思路。  相似文献   

5.
表观调节机制在阿尔茨海默病的发生、发展过程中起着重要作用。乙酰化组蛋白和乙酰化非组蛋白在基因表达与信号转导过程中具有重要的调控作用。组蛋白去乙酰化酶抑制剂可以改善AD患者突触可塑性与学习记忆能力。HDAC2在控制神经元形成中起关键作用。HDAC2参与海马区域记忆形成相关蛋白表达,对学习和记忆的形成具有负调节作用,影响神经突触可塑性和数量。目前应用的HDAC抑制剂为广谱药物缺乏特异性,分析HDAC2作用机制有利于研究出针对疾病的靶点药物。  相似文献   

6.
巨细胞病毒感染可影响儿童的学习记忆能力,是导致儿童智力残疾的主要原因之一。长期以来相关研究主要集中于巨细胞病毒先天性感染对学习记忆的影响及其机制。近年来,越来越多研究也开始关注围生期及获得性巨细胞病毒感染。本综述旨在对近期的巨细胞病毒感染致学习记忆损伤的研究现状加以概括总结。  相似文献   

7.
植物铝胁迫响应基因的研究进展   总被引:1,自引:0,他引:1  
铝毒是酸性土壤中植物生长和作物生产的主要限制因子.近年来的很多研究应用差异显示PCR、抑制差减cDNA文库和DNA微正列等技术,在一些铝耐受型和敏感型植物中鉴定了很多铝胁迫响应基因.本研究通过参阅国内外有关报道和结合本实验室的研究成果,从铝诱导的通道蛋白、代谢相关、胁迫和细胞死亡以及信号转导相关基因4个方面的研究进展进行了综述.  相似文献   

8.
小麦是人类重要的粮食作物,干旱是影响小麦产量、质量和种植范围的非生物胁迫因子,近年来小麦抗旱基因工程发展迅速。本研究总结了国内外小麦抗旱基因工程最新的研究成果。从与抗旱相关的转录因子类基因、LEA蛋白基因、信号转导相关基因、代谢调节相关基因、氧化调控相关基因5个方面对小麦抗旱相关基因的克隆情况进行了总结并从转化受体和转化方法、抗旱基因导入小麦的研究现状两个方面对转基因小麦进行了总结。最后,对提高小麦抗旱基因工程的研究效率提出了建议。  相似文献   

9.
海马区神经突触长时程增强(LTP)是应用最广的神经突触可塑性研究模型,为学习和记忆脑功能的基础.cAMP反应元件结合蛋白(cAMP-CREB)、Ras/细胞外信号调节激酶(Ras /ERK)等信号通路参与了学习和记忆的过程.通过组蛋白乙酰化和DNA甲基化对染色质结构进行调节,可以介导长时间、持续性的学习和记忆行为变化,其中,丝裂素活化蛋白激酶(MAPK)级联通路起到了关键作用.本文就学习和记忆形成中的信号转导、表观遗传模式及两者在学习和记忆中的作用进行综述.  相似文献   

10.
记忆的形成阶段包含着神经元突触的可塑性变化过程.近年来的研究表明,神经细胞粘附分子可同时增进突触的可塑性和维持突触结构的稳定性.许多研究证实神经细胞粘附分子对与学习和记忆相关的过程起着一定的调节作用.  相似文献   

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13.
Cellular signaling pathways do not simply transmit data; they integrate and process signals to operate as switches, oscillators, logic gates, memory modules and many other types of control system. These complex processing capabilities enable cells to respond appropriately to the myriad of external cues that direct growth and development. The idea that crosstalk and feedback loops are used as control systems in biological signaling networks is well established. Signaling networks are also subject to exquisite spatial regulation, yet how spatial control modulates signal outputs is less well understood. Here, we explore the spatial organization of two different signal transduction circuits: receptor tyrosine kinase activation of the mitogen-activated protein kinase module; and glycosylphosphatidylinositol-anchored receptor activation of phospholipase C. With regards to these pathways, recent results have refocused attention on the crucial role of lipid rafts and plasma membrane nanodomains in signal transmission. We identify common design principals that highlight how the spatial organization of signal transduction circuits can be used as a fundamental control mechanism to modulate system outputs in vivo.  相似文献   

14.
The plasticity of the central nervous system helps form the basis for the neurobiology of learning and memory. Long-term potentiation (LTP) is the main form of synaptic plasticity, reflecting the activity level of the synaptic information storage process, and provides a good model to study the underlying mechanisms of learning and memory. The glutamate receptor-mediated signal pathway plays a key role in the induction and maintenance of LTP, and hence the regulation of learning and memory. The progress in the understanding of the glutamate receptors and related signal transduction systems in learning and memory research are reviewed in this article.  相似文献   

15.
中枢神经系统钙稳态失调和老龄脑功能   总被引:12,自引:0,他引:12  
脑的老化表现为记忆力的减退。脑老化的钙假说认为脑的老化与中枢神经系统「Ca^2+」i的调节机制紊乱有关,衰老可以通过多种因素导致「Ca^2+」i升高,影响突触传导,神经递质释放,信号转导等导致记忆障碍,本文综述了近年来的进展。  相似文献   

16.
Hippocampal long-term potentiation (LTP) is a robust and long-lasting form of synaptic plasticity that is the leading candidate for a cellular mechanism contributing to mammalian learning and memory. Investigations over the past decade have revealed that the biochemistry of LTP induction involves mechanisms of great subtlety and complexity. This review highlights themes that have emerged as a result of our increased knowledge of the signal transduction pathways involved in the induction of NMDA receptor-dependent LTP in area CA1 of the hippocampus. Among these themes are signal amplification, signal integration and signal coordination. Here we use these themes as an organizing context for reviewing the profusion of signaling mechanisms involved in the induction of LTP.  相似文献   

17.
TCR signal transduction in antigen-specific memory CD8 T cells   总被引:4,自引:0,他引:4  
Memory T cells are more responsive to Ag than naive cells. To determine whether memory T cells also have more efficient TCR signaling, we compared naive, effector, and memory CD8 T cells of the same antigenic specificity. Surprisingly, initial CD3 signaling events are indistinguishable. However, memory T cells have more extensive lipid rafts with higher phosphoprotein content before TCR engagement. Upon activation in vivo, they more efficiently induce phosphorylation of-LAT (linker for activation of T cells), ERK (extracellular signal-regulated kinase), JNK (c-Jun N-terminal kinase), and p38. Thus, memory CD8 T cells do not increase their TCR sensitivity, but are better poised to augment downstream signals. We propose that this regulatory mechanism might increase signal transduction in memory T cells, while limiting TCR cross-reactivity and autoimmunity.  相似文献   

18.
Neurogranin/RC3 (Ng) is a postsynaptic protein kinase C (PKC) substrate and calmodulin (CaM)-binding protein whose CaM-binding affinity is modulated by Ca2+, phosphorylation and oxidation. Ng has been implicated in the modulation of postsynaptic signal transduction pathways and synaptic plasticity. Previously, we showed a severe deficit of spatial memory in Ng knockout (KO) mice. Activation of the NMDA receptor and its downstream signaling molecules are known to be involved in long-term memory formation. In the present study, using mouse hippocampal slices, we demonstrated that NMDA induced a rapid and transient phosphorylation and oxidation of Ng. NMDA also caused activation of PKC as evidenced by their phosphorylations, whereas, such activations were greatly reduced in the KO mice. A higher degree of phosphorylation of Ca2+/CaM-dependent kinase II and activation of cyclic AMP-dependent protein kinase were also evident in the WT compared to those of the KO mice. Phosphorylation of downstream targets, including mitogen-activated protein kinases and cAMP response element-binding protein, were significantly attenuated in the KO mice. These results suggest that by its Ca2+-sensitive CaM-binding feature, and through its phosphorylation and oxidation, Ng regulates the Ca2+- and Ca2+/CaM-dependent signaling pathways subsequent to the stimulation of NMDA receptor. These findings support the hypothesis that the derangement of hippocampal signal transduction cascades in Ng KO mice causes the deficits in synaptic plasticity, learning and memory that occur in these mice.  相似文献   

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