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1.
秀丽线虫(Caenorhabditis elegans)是一种研究行为和神经系统相互关系的良好的模式生物,可以在实验条件下给予它物理、化学等多种外部刺激,也可以在分子水平改变其基因结构以改变线虫的行为方式,从而进一步研究神经系统中与行为相关的分子机制.以sec-10突变为遗传背景,采用一种秀丽线虫逆行行为的简单测定方式,研究发现sec-10突变导致线虫逆行动作增多,初步探讨了在突变体线虫的神经系统中重新表达野生型SEC-10可以回复该逆行行为缺陷.  相似文献   

2.
遗传突变体和转基因是生物学研究的基础,是揭示生物体内各个基因相互作用的生物学研究对象.秀丽隐杆线虫(Caenorhabditis elegans)是遗传学研究的模式生物,如何有效地诱导特定基因发生突变和构建转基因线虫品系是秀丽线虫遗传学研究的两个重要方面.近些年来,靶向基因编辑技术迅速发展,使得科研人员可以在秀丽线虫中快速而高效地编辑特定基因.本文就线虫中靶向基因编辑的方法,特别是CRISPR/Cas9技术,以及目的线虫品系的筛选进行了综述.  相似文献   

3.
与秀丽线虫有关的研究开始于20世纪60年代,秀丽线虫作为模式生物是第一个完成基因测序的多细胞生物,普遍应用于各种环境对生理和行为学研究中。空间环境以微重力、强辐射作为特点,对秀丽线虫的生理及行为产生很大影响。本文总结了微重力和辐射引起秀丽线虫运动能力、寿命、能量代谢等方面基因表达变化的研究成果。秀丽线虫与人类的序列相似性高达40%,空间环境对秀丽线虫行为及生长发育的研究为空间环境对人类健康影响研究提供数据支持,也为空间损伤修复研究提供理论基础。  相似文献   

4.
秀丽隐杆线虫体内脂滴的尼罗红染色观察   总被引:1,自引:0,他引:1  
秀丽隐杆线虫(Caenorhabditis elegans)为常见的生物实验模式之一,也是最近作为研究脂肪沉积的一种较理想的模型,其肠道是脂肪沉积的主要场所。本文使用尼罗红染液对秀丽隐杆线虫体内的脂肪进行染色,在荧光显微镜下可见其肠道周围呈现强烈桔黄色,较好的显示了线虫体内的脂肪沉积部位,为后续研究线虫脂肪沉积的调控机制奠定了基础。  相似文献   

5.
吸入麻醉药是全身麻醉中常用的一类麻醉药.研究发现吸入麻醉药在发挥麻醉作用的同时,对手术过程所致的脑组织缺血/再灌注损伤也有保护作用,但具体机制还未完全阐明.本文将对吸入麻醉药可能的神经保护作用机制进行综述.  相似文献   

6.
秀丽隐杆线虫(Caenorhabditis elegans, C. elegans)是生命科学研究中的重要模式生物之一,由于其身体结构简单和寿命周期短暂等优势被用来研究整个生命过程不同阶段的分子调节机制,在药物开发领域也发挥了重要作用。因此本综述对秀丽隐杆线虫在药物开发方面的应用及研究进展进行了简要综述。鹿茸作为中国的传统名贵中药,在上千年里大多以粗提物的形式加以应用,鹿茸的具体活性成分及其相关药理作用一直有待于系统研究,由于线虫作为优秀的模式生物操作简单易于观察,可以较方便的对各成分进行效果鉴定,因此本综述对线虫在鉴别鹿茸活性成分中的潜在应用价值进行了探讨。  相似文献   

7.
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   

8.
基于细菌基因组规律成蔟的间隔短回文重复(Clustered regularly interspaced short palindromic repeats)发展而来的新型基因编辑方法(CRISPR-Cas9)对生物医学研究是一场划时代的革命。它几乎可用于大多数生物体的基因编辑。秀丽线虫是一种非常经典的遗传学模式生物,CRISPR-Cas9基因编辑技术进一步加速了对其基因功能及各种生物学问题的研究。文中主要总结CRISPR-Cas9基因编辑系统在遗传学模式生物秀丽线虫中的发展和应用。  相似文献   

9.
秀丽隐杆线虫(Caenorhabditis elegans)以其个体小、易培养、生活周期短等优势成为生物发育、衰老、神经及免疫相关机制研究的模式生物.它在实验室培养时主要靠饲喂大肠杆菌OP50,有报道,细菌及其代谢物对线虫的代谢、行为和寿命有至关重要的影响.因此,作为一个遗传模型,秀丽隐杆线虫可以帮助研究微生物与宿主相...  相似文献   

10.
目的:利用秀丽隐杆线虫为模式生物,研究维生素C在秀丽隐杆线虫体内的抗氧化效应及其机制。方法:分别以含有0.05、0.25、0.5 mg/mL维生素C的NGM培养基饲养秀丽隐杆线虫,测定不同浓度维生素C饲养线虫体内超氧化物歧化酶(SOD)和过氧化氢酶(CAT)的含量,同时检测0.25 mg/mL的维生素C饲养线虫age-1、daf-2、daf-16、sir-2.1、clt-1基因mRNA变化。在高氧环境中,干扰0.25 mg/mL维生素C饲养线虫daf-2、daf-16基因表达检测线虫的存活情况,观察0.25 mg/mL维生素C饲养线虫DAF-16入核情况。结果:0.25 mg/mL的维生素C提高秀丽隐杆线虫体内SOD和CAT活力,在高氧环境中,0.25 mg/mL的维生素C降低age-1、daf-2基因表达,提高daf-16基因表达,同时增加DAF-16蛋白入核。结论:维生素C通过DAF-16胰岛素信号通路增强秀丽隐杆线虫抗氧化作用。  相似文献   

11.
Abstract: Mutations in the unc-9 gene of the nematode Caenorhabditis elegans cause abnormal forward locomotion and an egg-retention phenotype. unc-9 mutations also reduce the worms' sensitivity to avermectin and block a form of hypersensitivity to volatile anesthetics. We report here the cloning and molecular characterization of unc-9 and show that it encodes a member of the OPUS family of proteins that is 56% identical to another OPUS protein, UNC-7. It is significant that unc-9 mutants share all phenotypes with unc-7 mutants. Mutants in another gene, unc-124 , also share all tested phenotypes with unc-9 mutants, including identical locomotory and egg-laying defects, suggesting that multiple genes are required for the same biochemical function. OPUS proteins are implicated in the function of invertebrate gap junctions, and, based on a new alignment including 24 members from C. elegans , we present a refined model for the structure of OPUS proteins suggesting that oligomers could form a hydrophilic pore. We also show that alteration of highly conserved proline residues in UNC-9 leads to a cold sensitivity that likely affects a step in protein expression rather than function. Finally, we speculate on the basis of the avermectin resistance and anesthetic response phenotypes.  相似文献   

12.
The UNC-119 proteins, found in all metazoans examined, are highly conserved at both the sequence and functional levels. In the invertebrates Caenorhabditis elegans and Drosophila melanogaster, unc-119 genes are expressed pan-neurally. Loss of function of the unc-119 gene in C. elegans results in a disorganized neural architecture and paralysis. The function of UNC-119 proteins has been conserved throughout evolution, as transgenic expression of the human UNC119 gene in C. elegans unc-119 mutants restores a wild-type phenotype. However, the nature of the conserved molecular function of UNC-119 proteins is poorly understood. Although unc-119 genes are expressed throughout the nervous system of the worm and fly, the analysis of these genes in vertebrates has focused on their function in the photoreceptor cells of the retina. Here we report the characterization of an unc-119 homolog in the zebrafish. The Unc119 protein is expressed in various neural tissues in the developing zebrafish embryo and larva. Morpholino oligonucleotide (MO)-mediated knockdown of Unc119 protein results in a "curly tail down" phenotype. Examination of neural patterning demonstrates that these "curly tail down" zebrafish experience a constellation of neuronal defects similar to those seen in C. elegans unc-119 mutants: missing or misplaced cell bodies, process defasciculation, axon pathfinding errors, and aberrant axonal branching. These findings suggest that UNC-119 proteins may play an important role in the development and/or function of the vertebrate nervous system.  相似文献   

13.
In Caenorhabditis elegans, the gene unc-1 controls anesthetic sensitivity and normal locomotion. The protein UNC-1 is a close homolog of the mammalian protein stomatin and is expressed primarily in the nervous system. Genetic studies in C. elegans have shown that the UNC-1 protein interacts with a sodium channel subunit, UNC-8. In humans, absence of stomatin is associated with abnormal sodium and potassium levels in red blood cells. Stomatin also has been postulated to participate in the formation of lipid rafts, which are membrane microdomains associated with protein complexes, cholesterol, and sphingolipids. In this study, we isolated a low-density, detergent-resistant fraction from cell membranes of C. elegans. This fraction contains cholesterol, sphingolipids, and protein consistent with their identification as lipid rafts. We then probed Western blots of protein from the rafts and found that the UNC-1 protein is almost totally restricted to this fraction. The UNC-8 protein is also found in rafts and coimmunoprecipitates UNC-1. A second stomatin-like protein, UNC-24, also affects anesthetic sensitivity, is found in lipid rafts, and regulates UNC-1 distribution. Mutations in the unc-24 gene alter the distribution of UNC-1 in lipid rafts. Each of these mutations alters anesthetic sensitivity in C. elegans. Because lipid rafts contain many of the putative targets of volatile anesthetics, they may represent a novel class of targets for volatile anesthetics.  相似文献   

14.
In Caenorhabditis elegans collagens comprise a dispersed family of 40-150 genes, the majority of which probably code for collagen proteins found in the animal's cuticle. The conserved (Gly-X-Y)n triple helix coding sequence of collagen genes has facilitated the isolation of a large number of C. elegans collagen genes by recombinant DNA methods. We have begun a study of the chromosomal organization of these genes by screening laboratory strains of C. elegans for DNA polymorphisms in the regions surrounding collagen genes. Polymorphisms near seven genes have been identified and have been used as phenotypic markers in genetic crosses to assign the genes to linkage groups II, III, IV, and X. Four genes are shown by multifactor crosses to map to a 2-3 map unit interval between unc-24 and unc-22 on chromosome IV.  相似文献   

15.
Phenotypic reversion of the rubber-band, muscle-defective phenotype conferred by unc-93(e1500) was used to determine the utility of N-ethyl-N-nitrosourea (ENU) as a mutagen for genetic research in Caenorhabditis elegans. In this system, ENU produces revertants at a frequency of 3 X 10(-4), equivalent to that of the commonly used mutagen, EMS. The gene identity of 154 ENU-induced revertants shows that the distribution of alleles between three possible suppressor genes differs from that induced by EMS. A higher percentage of revertants are alleles of unc-93 and many fewer are alleles of sup-9 and sup-10. Three revertants complement the three known suppressor genes; they may therefore identify a new gene product(s) involved in this system of excitation-contraction coupling in C. elegans. Molecular characterization of putative unc-93 null alleles reveals that the base changes induced by ENU are quite different from those induced by EMS; specifically we see an increased frequency of A/T -> G/C transitions. The frequency of ENU-induced intragenic deletions is found to be 13%. We suggest that ENU, at concentrations below 5 mM, will be a superior mutagen for studies of protein function in C. elegans.  相似文献   

16.
The authors tested whether mutant strains of Caenorhabditis elegans with altered sensitivity to volatile anesthetics have altered responses to GABA or GABA-agonists. They determined the ED50s of the wild-type strain N2 and two mutant strains of C. elegans to a GABA-mimetic ivermectin (IVM) and to GABA. unc-79, a strain with increased sensitivity to halothane, was more sensitive than N2 to IVM and GABA. unc-9, a strain that suppresses the increased sensitivity of unc-79 to halothane, was less sensitive than N2 to IVM and GABA. The authors also tested whether doses of GABA or IVM and volatile anesthetics were additive in their effects on C. elegans. Halothane (2.1%) did not shift the ED50 of IVM, but was antagonistic to GABA. Enflurane (4%) was antagonistic to both IVM and GABA. However, ED50s of halothane and enflurane were unchanged in the presence of IVM (35 nM) or GABA (150 mM). The authors conclude that GABA by itself does not appear to mediate halothane or enflurane sensitivity in C. elegans.  相似文献   

17.
Rajaram S  Spangler TL  Sedensky MM  Morgan PG 《Genetics》1999,153(4):1673-1682
The mechanism of action of volatile anesthetics is unknown. In Caenorhabditis elegans, mutations in the gene unc-1 alter anesthetic sensitivity. The protein UNC-1 is a close homologue of the mammalian protein stomatin. Mammalian stomatin is thought to interact with an as-yet-unknown ion channel to control sodium flux. Using both reporter constructs and translational fusion constructs for UNC-1 and green fluorescent protein (GFP), we have shown that UNC-1 is expressed primarily within the nervous system. The expression pattern of UNC-1 is similar to that of UNC-8, a sodium channel homologue. We examined the interaction of multiple alleles of unc-1 and unc-8 with each other and with other genes affecting anesthetic sensitivity. The data indicate that the protein products of these genes interact, and that an UNC-1/UNC-8 complex is a possible anesthetic target. We propose that membrane-associated protein complexes may represent a general target for volatile anesthetics.  相似文献   

18.
Hawasli AH  Saifee O  Liu C  Nonet ML  Crowder CM 《Genetics》2004,168(2):831-843
The molecular mechanisms whereby volatile general anesthetics (VAs) disrupt behavior remain undefined. In Caenorhabditis elegans mutations in the gene unc-64, which encodes the presynaptic protein syntaxin 1A, produce large allele-specific differences in VA sensitivity. UNC-64 syntaxin normally functions to mediate fusion of neurotransmitter vesicles with the presynaptic membrane. The precise role of syntaxin in the VA mechanism is as yet unclear, but a variety of results suggests that a protein interacting with syntaxin to regulate neurotransmitter release is essential for VA action in C. elegans. To identify additional proteins that function with syntaxin to control neurotransmitter release and VA action, we screened for suppressors of the phenotypes produced by unc-64 reduction of function. Loss-of-function mutations in slo-1, which encodes a Ca(2+)-activated K+ channel, and in unc-43, which encodes CaM-kinase II, and a gain-of-function mutation in egl-30, which encodes Gqalpha, were isolated as syntaxin suppressors. The slo-1 and egl-30 mutations conferred resistance to VAs, but unc-43 mutations did not. The effects of slo-1 and egl-30 on VA sensitivity can be explained by their actions upstream or parallel to syntaxin to increase the level of excitatory neurotransmitter release. These results strengthen the link between transmitter release and VA action.  相似文献   

19.
In 1990, the discovery of three Caenorhabditis elegans genes (unc5, unc6, unc40) involved in pioneer axon guidance and cell migration marked a significant advancement in neuroscience research [Hedgecock EM, Culotti JG, Hall DH. The unc-5, unc-6, and unc-40 genes guide circumferential migrations of pioneer axons and mesodermal cells on the epidermis in C. elegans. Neuron 1990;4:61-85]. The importance of this molecular guidance system was exemplified in 1994, when the vertebrate orthologue of Unc6, Netrin-1, was discovered to be a key guidance cue for commissural axons projecting toward the ventral midline in the rodent embryonic spinal cord [Serafini T, Kennedy TE, Galko MJ, Mirzayan C, Jessell TM, Tessier-Lavigne M. The netrins define a family of axon outgrowth-promoting proteins homologous to C. elegans UNC-6. Cell 1994;78:409-424]. Since then, Netrin-1 has been found to be a critical component of embryonic development with functions in axon guidance, cell migration, morphogenesis and angiogenesis. Netrin-1 also plays a role in the adult brain, suggesting that manipulating netrin signals may have novel therapeutic applications.  相似文献   

20.
Abstract: We report here the positional cloning and molecular characterization of the unc-24 gene of Caenorhabditis elegans . This gene is required for normal locomotion and interacts with genes that affect the worm's response to volatile anesthetics. The predicted gene product contains a domain similar to part of two ion channel regulators (the erythrocyte integral membrane protein stomatin and the C. elegans neuronal protein MEC-2) juxtaposed to a domain similar to nonspecific lipid transfer protein (nsLTP; also called sterol carrier protein 2). Sequence analysis suggests that the nsLTP-like domain of UNC-24 provides lipid carrier function and is tethered to the plasma membrane by the stomatin-like domain, which may be regulatory. We postulate that UNC-24 may be involved in lipid transfer between closely apposed membranes.  相似文献   

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