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1.
甘氨酸受体的研究进展   总被引:2,自引:0,他引:2  
甘氨酸受体(GlyR)是中枢神经系统中一种重要的抑制性受体.GlyR是氯离子(Cl)选择性通道蛋白,属于配体门控离子通道超家族的一员.天然GlyR是由α和β亚基组装而成的五聚体.介绍了近年来有关GlyR的结构、功能、药理特性研究的重要进展,并结合本实验室工作,论述GlyR的调制及其可能机制.  相似文献   

2.
为了阐明铜(Cu)对秀丽隐杆线虫Caenorhabditis elegans长期作用的毒性效应,对实验室多代筛选的耐铜型秀丽隐杆线虫进行了寿命、衰老、发育、生殖和运动等生物学指标的研究.结果显示耐铜型秀丽隐杆线虫与野生型秀丽隐杆线虫相比其寿命缩短、衰老提前、个体发育受到抑制,且出现繁殖率降低、生殖能力减弱、运动行为存在障碍等一系列生理变化.本文为理解与阐明Cu的毒性效应提供了实验资料,有助于深入开展Cu毒性机理的研究.  相似文献   

3.
近几十年来,秀丽隐杆线虫(Caenorhabditis elegans)因其结构简单、通体透明、生命周期短和易于培养,常作为一种模式生物被广泛用于现代发育生物学、遗传学、抗衰老和及脂肪调控等方面的研究。本文探索了一种对秀丽隐杆线虫体内脂肪的油红O染色方法,利用1%Triton X-100的透过作用,线虫体内脂滴可被油红O更好的着色,镜下观察颜色鲜红,染色效果较好,为以后研究线虫脂肪调控奠定了基础。  相似文献   

4.
随着人口老龄化问题的凸显,衰老相关的研究越来越被重视。秀丽隐杆线虫(Caenorhabditis elegans)是抗衰老研究领域中非常重要的生物模型,具有生命周期短、易于培养和观察等优点,但与其他哺乳动物模型相比仍有一些局限性,如DNA甲基化的缺乏等。本文主要综述了秀丽隐杆线虫模型在抗衰老研究和药物筛选中的应用,包括抗衰老药物对线虫寿命和抗性的测定与评估、药物筛选以及健康衰老研究中的应用,并概括了该模型的优势和局限性,为秀丽隐杆线虫模型在抗衰老研究中的应用提供理论依据。  相似文献   

5.
单核细胞增生李斯特菌(Listeria monocytogenes,Lm)是李斯特菌病的病原细菌。用Lm野生株EGDe、弱毒株ΔprfA、毒力回复株+prfA和高毒株+prfA*喂饲模式生物秀丽隐杆线虫N2,并以线虫的良好食源大肠埃希菌OP50以及非致病的无害李斯特菌(Listeria innocua)作为对照,检测Lm对线虫发育周期、寿命和产卵数的影响。结果显示:当以无害李斯特菌、Lm野生株以及PrfA突变株为食时,线虫的产卵数虽有所下降,但线虫不仅能够正常产卵,而且其发育周期和寿命均较以OP50为食时显著延长(P≤0.05);线虫体表和消化道中均可检测到大量李斯特菌,但粪便中的活菌数极少。以上结果说明Lm不能杀死秀丽隐杆线虫,对线虫也没有显著致病性,不适合作为研究Lm致病机制的模型;Lm可在线虫体表和消化道存在,暗示Lm可借助线虫在土壤环境中生存和传播。  相似文献   

6.
本文报道了分离自我国部分省区的捕食根结线虫(Meloidogyne spp)、蘑菇堆肥线虫(Aphelenchoides composticla)、小杆线虫(Rhabditis sp.)和秀丽隐杆线虫(Caenorhabditiselegans)的节丛孢属菌18个种,其中2个新种,7个我国新记录种。新种是贵州节丛孢Arthrobotrys guizhouensis K. Q. Zhang sp. Nov.和秀丽节丛孢 A. venusta K. Q. Zhangsp.Nov.。此外,文中还列出了节丛孢属18个种的检索表。  相似文献   

7.
烟碱型乙酰胆碱受体参与乙酰胆碱调控的气孔运动   总被引:2,自引:0,他引:2  
动物细胞中 ,乙酰胆碱功能的发挥要求乙酰胆碱受体的参与 ,烟碱型受体的激活剂可以直接影响膜对离子的通透性 .在乙酰胆碱诱导的气孔开放过程中 ,可能同样涉及到烟碱型受体的作用 ,药理学的证据表明烟碱型乙酰胆碱受体参与乙酰胆碱调控的气孔运动 ,而且烟碱型乙酰胆碱受体介导的气孔开放与介质中的离子组成密切相关 ,只有在含K+的介质中烟碱才可以诱导气孔开放而在含Ca2 +的介质中没有作用 ;同样 ,烟碱型乙酰胆碱受体的抑制剂只有在含K+的介质中才能抑制乙酰胆碱诱导的气孔开放 .进一步利用荧光定位技术证明烟碱型受体存在于蚕豆气孔保卫细胞中 ,而且主要分布在保卫细胞原生质体的表面 .免疫印迹实验初步证明在保卫细胞原生质体的微粒体中存在着能与动物烟碱型乙酰胆碱受体的α和β亚基发生免疫交叉反应的蛋白条带 .以上结果表明烟碱型乙酰胆碱受体存在于保卫细胞中 ,而且介导了乙酰胆碱诱导的气孔在含K+介质中的开放 .  相似文献   

8.
宋少娟  郭亚平  张学尧  张建珍  马恩波 《遗传》2014,36(12):1261-1268
铜在有机体代谢过程中发挥着重要作用, 但过量可产生毒害效应。文章以秀丽隐杆线虫(Caenorhabditis elegans)为模式生物, 寻找多细胞生物中铜代谢调节的关键基因。采用甲基磺酸乙酯(EMS)诱变秀丽隐杆线虫, 通过100 000个杂合基因组的筛选得到两个抗铜突变体ms1和ms2。在筛选培养基上野生型停止发育, 而抗铜突变体则可发育到成虫, 且抗铜性状能稳定遗传。与N2的回交实验表明, ms1的抗铜表型可能由单基因隐性突变导致, ms2的抗铜表型消失, 可能是由多基因突变引起。以CB4856和ms1作为亲本, 构建了F2群, 经SNP定位, 确定ms1突变位点位于染色体II(LGII)上, 进一步对LGII染色体上的8个SNP标记进行分析, 将ms1的突变位点定位在LGII:-6附近。秀丽隐杆线虫抗铜突变体ms1的筛选和定位可为深入研究线虫铜代谢及调控的分子机制提供实验依据。  相似文献   

9.
阿尔茨海默病(Alzheimer’s disease,AD)是一种与年龄相关的神经退行性疾病,该疾病的病理特征为老年斑(SPs)和神经原纤维缠结(NFTs)的存在。目前,阿尔茨海默病患病率呈现逐年上升的趋势,寻找完全治愈或延缓阿尔茨海默症发展的有效疗法和药物迫在眉睫。秀丽隐杆线虫(Caenorhabditis elegans)的基因和神经元功能与人类具有高度同源性,可作为研究阿尔茨海默病发病机制研究的较好模型。本文综述AD的发病机制假说、秀丽隐杆线虫AD模型以及线虫模型在AD治疗中的应用进展,旨在为后续研究AD提供理论参考。  相似文献   

10.
[目的]研究秀丽线虫(Caenorhabdities elegans)ASH神经元介导硫酸铜躲避行为的分子机制。[方法]以硫酸铜为伤害性刺激物,考察其对TRPV通道基因ocr-2突变线虫的群体行为实验、个体行为实验、钙成像实验中的影响。[结果]ocr-2突变线对硫酸铜避指数降低了80%,在硫酸铜干滴刺激中后退位移仅为野生型的60%,并且其ASH神经元对硫酸铜刺激产生异常的约延时10 s的钙信号窄峰。[结论]OCR-2在线虫ASH神经元介导硫酸铜躲避行为中是必需的,能够介导硫酸铜刺激施加和撤除的钙信号峰的形成,同时还可能参与其他神经元与ASH神经元之间的抑制调控。  相似文献   

11.
Acetylcholine, the first identified neurotransmitter, plays crucial roles in various brain functions. One well-known case is its involvement as an activating neurotransmitter in the regulation of locomotion. However, its inhibitory regulatory role, particularly in locomotion, remains poorly understood. In a study conducted by Polat et al., the authors investigated the inhibitory role of acetylcholine in locomotion in C. elegans. In this organism, the acetylcholine-gated chloride channel receptor consists of four subunits. The authors thoroughly examined the loss-of-function of each subunit in movement regulation. Interestingly, the mutant worms were still capable of performing various movements such as forward, backward crawling, and turning, suggesting that the overall movement was not significantly affected. However, quantitative behavior analysis revealed subtle yet significant differences in the timing and postures of the movement in these mutants. Furthermore, the authors employed optogenetics to stimulate a specific neuron involved in backward crawling and demonstrated that the loss-of-function of the receptors in individual neurons affects the transitioning between locomotion modes. This work provides evidence for the inhibitory regulatory role of acetylcholine in locomotion. The loss-of-function of acetylcholine-gated chloride channel receptors likely disrupts the balance of neuronal and circuit physiology, thereby affecting the regulation of locomotion. Moreover, this study highlights the powerful role of quantitative behavior analysis in discovering and understanding more sophisticated functions of neural circuits.  相似文献   

12.
The simple nematode, Caenorhabditis elegans, possesses the most extensive known gene family of nicotinic acetylcholine receptor (nAChR)-like subunits. Whilst all show greatest similarity with nAChR subunits of both invertebrates and vertebrates, phylogenetic analysis suggests that just over half of these (32) may represent other members of the cys-loop ligand-gated ion channel superfamily. We have introduced a novel nomenclature system for these “Orphan” subunits, designating them as lgc genes (ligand-gated ion channels of the cys-loop superfamily), which can also be applied in future to unnamed and uncharacterised members of the cys-loop ligand-gated ion channel superfamily. We present here the resulting updated version of the C. elegans nAChR gene family and related ligand-gated ion channel genes.  相似文献   

13.
The genome sequences of Caenorhabditis elegans and Drosophila melanogaster reveal a diversity of cysteine-loop ligand-gated ion channels (Cys-loop LGICs) not found in vertebrates. To better understand the evolution of this gene superfamily, I compared all Cys-loop LGICs from rat, the primitive chordate Ciona intestinalis, Drosophila, and C. elegans. There are two clades of GABA receptor subunits that include both verterbate and invertebrate orthologues. In addition, I identified nine clades of anion channel subunits found only in invertebrates, including three that are specific to C. elegans and two found only in Drosophila. One well-defined clade of vertebrate cation channel subunits, the α7 nicotinic acetylcholine receptor subunits (nAChR), includes invertebrate orthologues. There are two clades of invertebrate nAChRs, one of α-type subunits and one of non-α subunits, that are most similar to the two clades of vertebrate neuronal and muscle α and non-α subunits. There is a large group of divergent C. elegans nAChR-like subunits partially resolved into clades but no orthologues of 5HT3-type serotonin receptors in the invertebrates. The topology of the trees suggests that most of the invertebrate-specific Cys-loop LGIC clades were present in the common ancestor of chordates and ecdysozoa. Many of these disappeared from the chordates. Subsequently, selected subunit genes expanded to form large subfamilies. Electronic Supplementary Material Electronic Supplementary material is available for this article at and accessible for authorised users. [Reviewing Editor: Dr. Rafael Zardoya]  相似文献   

14.
Acetylcholine is the canonical excitatory neurotransmitter of the mammalian neuromuscular system. However, in the trematode parasite Schistosoma mansoni, cholinergic stimulation leads to muscle relaxation and a flaccid paralysis, suggesting an inhibitory mode of action. Information about the pharmacological mechanism of this inhibition is lacking. Here, we used a combination of techniques to assess the role of cholinergic receptors in schistosome motor function. The neuromuscular effects of acetylcholine are typically mediated by gated cation channels of the nicotinic receptor (nAChR) family. Bioinformatics analyses identified numerous nAChR subunits in the S. mansoni genome but, interestingly, nearly half of these subunits carried a motif normally associated with chloride-selectivity. These putative schistosome acetylcholine-gated chloride channels (SmACCs) are evolutionarily divergent from those of nematodes and form a unique clade within the larger family of nAChRs. Pharmacological and RNA interference (RNAi) behavioral screens were used to assess the role of the SmACCs in larval motor function. Treatment with antagonists produced the same effect as RNAi suppression of SmACCs; both led to a hypermotile phenotype consistent with abrogation of an inhibitory neuromuscular mediator. Antibodies were then generated against two of the SmACCs for use in immunolocalization studies. SmACC-1 and SmACC-2 localize to regions of the peripheral nervous system that innervate the body wall muscles, yet neither appears to be expressed directly on the musculature. One gene, SmACC-1, was expressed in HEK-293 cells and characterized using an iodide flux assay. The results indicate that SmACC-1 formed a functional homomeric chloride channel and was activated selectively by a panel of cholinergic agonists. The results described in this study identify a novel clade of nicotinic chloride channels that act as inhibitory modulators of schistosome neuromuscular function. Additionally, the iodide flux assay used to characterize SmACC-1 represents a new high-throughput tool for drug screening against these unique parasite ion channels.  相似文献   

15.
This review considers the factors involved in the regulation of feeding and metabolism in response to food deprivation using Caenorhabditis elegans as a model organism. Some of the sensory neurons and interneurons involved in food intake are described, together with an overview of pharyngeal pumping. A number of chemical transmitters control feeding in C. elegans including 5-hydroxytryptamine (5-HT, serotonin), acetylcholine, glutamate, dopamine, octopamine, and tyramine. The roles of these transmitters are modified by neuropeptides, including FMRFamide-like peptides (FLPs), neuropeptide-like protein (NLPs), and insulin-like peptides. The precise effects of many of these neuropeptides have yet to be elucidated but increasingly they are being shown to play a role in feeding and metabolism in C. elegans. The regulation of fat stores is complex and appears to involve the expression of a large number of genes, many with mammalian homologues, suggesting that fat regulatory signalling is conserved across phyla. Finally, a brief comparison is made between C. elegans and mammals where for both, despite their evolutionary distance, classical transmitters and neuropeptides have anorectic or orexigenic properties. Thus, there is a rationale to support the argument that an understanding of the molecular and genetic basis of feeding and fat regulation in C. elegans may contribute to efforts aimed at the identification of targets for the treatment of conditions associated with abnormal metabolism and obesity.  相似文献   

16.
Simultaneous intracellular recordings were made from interneurons and from closer or opener mandibular motor neurons in the isolated suboesophageal ganglion of the larva of Manduca sexta. This article describes various morphologically and physiologically distinguishable premotor spiking interneurons which make direct excitatory connections with the motor neurons. In addition, two presumptive non-spiking interneurons make excitatory and inhibitory connections respectively with opener motor neurons. Both classes of interneurons receive excitatory and inhibitory sensory inputs from the mouthparts. Their circuitry and functions are discussed.Abbreviations A anterior - AP action potential - CEC circumoesophageal connective - Cl-MN closer motor neuron - EPSP excitatory postsynaptic potential - IN interneuron - IPSP inhibitory postsynaptic potential - MdN mandibular nerve - MN motor neuron - MxN maxillary nerve - O-MN opener motor neuron - PSP postsynaptic potential  相似文献   

17.
New compounds are needed to treat parasitic nematode infections in humans, livestock and plants. Small molecule anthelmintics are the primary means of nematode parasite control in animals; however, widespread resistance to the currently available drug classes means control will be impossible without the introduction of new compounds. Adverse environmental effects associated with nematocides used to control plant parasitic species are also motivating the search for safer, more effective compounds. Discovery of new anthelmintic drugs in particular has been a serious challenge due to the difficulty of obtaining and culturing target parasites for high-throughput screens and the lack of functional genomic techniques to validate potential drug targets in these pathogens. We present here a novel strategy for target validation that employs the free-living nematode Caenorhabditis elegans to demonstrate the value of new ligand-gated ion channels as targets for anthelmintic discovery. Many successful anthelmintics, including ivermectin, levamisole and monepantel, are agonists of pentameric ligand-gated ion channels, suggesting that the unexploited pentameric ion channels encoded in parasite genomes may be suitable drug targets. We validated five members of the nematode-specific family of acetylcholine-gated chloride channels as targets of agonists with anthelmintic properties by ectopically expressing an ivermectin-gated chloride channel, AVR-15, in tissues that endogenously express the acetylcholine-gated chloride channels and using the effects of ivermectin to predict the effects of an acetylcholine-gated chloride channel agonist. In principle, our strategy can be applied to validate any ion channel as a putative anti-parasitic drug target.  相似文献   

18.
Behavioral output of neural networks depends on a delicate balance between excitatory and inhibitory synaptic connections. However, it is not known whether network formation and stability is constrained by the sign of synaptic connections between neurons within the network. Here we show that switching the sign of a synapse within a neural circuit can reverse the behavioral output. The inhibitory tyramine-gated chloride channel, LGC-55, induces head relaxation and inhibits forward locomotion during the Caenorhabditis elegans escape response. We switched the ion selectivity of an inhibitory LGC-55 anion channel to an excitatory LGC-55 cation channel. The engineered cation channel is properly trafficked in the native neural circuit and results in behavioral responses that are opposite to those produced by activation of the LGC-55 anion channel. Our findings indicate that switches in ion selectivity of ligand-gated ion channels (LGICs) do not affect network connectivity or stability and may provide an evolutionary and a synthetic mechanism to change behavior.  相似文献   

19.
In the nematode Caenorhabditis elegans, cholinergic motor neurons stimulate muscle contraction as well as activate GABAergic motor neurons that inhibit contraction of the contralateral muscles. Here, we describe the composition of an ionotropic acetylcholine receptor that is required to maintain excitation of the cholinergic motor neurons. We identified a gain-of-function mutation that leads to spontaneous muscle convulsions. The mutation is in the pore domain of the ACR-2 acetylcholine receptor subunit and is identical to a hyperactivating mutation in the muscle receptor of patients with myasthenia gravis. Screens for suppressors of the convulsion phenotype led to the identification of other receptor subunits. Cell-specific rescue experiments indicate that these subunits function in the cholinergic motor neurons. Expression of these subunits in Xenopus oocytes demonstrates that the functional receptor is comprised of three α-subunits, UNC-38, UNC-63 and ACR-12, and two non–α-subunits, ACR-2 and ACR-3. Although this receptor exhibits a partially overlapping subunit composition with the C. elegans muscle acetylcholine receptor, it shows distinct pharmacology. Recordings from intact animals demonstrate that loss-of-function mutations in acr-2 reduce the excitability of the cholinergic motor neurons. By contrast, the acr-2(gf) mutation leads to a hyperactivation of cholinergic motor neurons and an inactivation of downstream GABAergic motor neurons in a calcium dependent manner. Presumably, this imbalance between excitatory and inhibitory input into muscles leads to convulsions. These data indicate that the ACR-2 receptor is important for the coordinated excitation and inhibition of body muscles underlying sinusoidal movement.  相似文献   

20.
The survival of an organism depends on its ability to respond to its environment through its senses. The sense of touch is one of the most vital; still, it is the least understood. In the process of touch sensation, a mechanical stimulus is converted into electrical signals. Groundbreaking electrophysiological experiments in organisms ranging from bacteria to mammals have suggested that this conversion may occur through the activation of ion channels that gate in response to mechanical stimuli. However, the molecular identity of these channels has remained elusive for a very long time. Breakthroughs in our understanding of the cellular and molecular mechanisms of touch sensation have come from the analysis of touch-insensitive mutants in model organisms such as Caenorhabditis elegans and Drosophila melanogaster. This review will focus on the elegant genetic, molecular, imaging, and electrophysiological studies that demonstrate that a channel complex composed of two members of the DEG/ENaC gene family of channel subunits (named for the C. elegans degenerins and the related mammalian epithelial amiloride-sensitive Na channel), MEC-4 and MEC-10, and accessory subunits is gated by mechanical forces in touch-sensing neurons from C. elegans. I also report here electrophysiological and behavioral studies employing knockout mice that have recently shown that mammalian homologues of MEC-4, MEC-10, and accessory subunits are needed for normal mechanosensitivity in mouse, suggesting a conserved function for this channel family across species. The C. elegans genome encodes 28 DEG/ENaC channels: I discuss here the global role of DEG/ENaCs in mechanosensation, reporting findings on the role of other three nematode DEG/ENaCs (UNC-8, DEL-1, and UNC-105) in mechanosensitive and stretch-sensitive behaviors. Finally, this review will discuss findings in which members of another family of ion channels, the Transient Receptor Potential channels family, have been implicated in mechanosensitive behaviors in organisms ranging from C. elegans to mammals.  相似文献   

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