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1.
The vertebrate 2-5A system is part of the innate immune response and central to cellular antiviral activities. Upon activation by viral double-stranded RNA, 5′-triphosphorylated, 2′-5′-linked oligoadenylate polyribonucleotides (2-5As) are synthesized by one of several 2′-5′ oligoadenylate synthetases. The 2-5As bind and activate RNase L, an unspecific endoribonuclease, resulting in viral and cellular RNA decay. Given that most endogenous RNAs are degraded by RNase L, continued enzyme activity will eventually lead to cell growth arrest and cell death. This is averted, when 2-5As and their 5′-dephosphorylated forms, the so-called 2-5A core molecules, are cleaved and thus inactivated by 2′-5′-specific nuclease(s), e.g. phosphodiesterase 12, thereby turning RNase L into its latent form. In this study, we have characterized the human phosphodiesterase 12 in vitro focusing on its ability to degrade 2-5As and 2-5A core molecules. We have found that the enzyme activity is distributive and is influenced by temperature, pH and divalent cations. This allowed us to determine Vmax and Km kinetic parameters for the enzyme. We have also identified a novel 2′-5′-oligoadenylate nuclease; the human plasma membrane-bound ectonucleotide pyrophosphatase/phosphodiesterase 1, suggesting that 2-5A catabolism may be a multienzyme-regulated process.  相似文献   

2.
The demonstration that double-stranded (ds) RNA inhibits protein synthesis in cell-free systems prepared from interferon-treated cells, lead to the discovery of the two interferon-induced, dsRNA-dependent enzymes: the serine/threonine protein kinase that is referred to as PKR and the 2′,5′-oligoadenylate synthetase (2′,5′-OAS), which converts ATP to 2′,5′-linked oligoadenylates with the unusual 2′-5′ instead of 3′-5′ phosphodiesterase bond. We raised monoclonal and polyclonal antibodies against human PKR and the two larger forms of the 2′,5′-OAS. Such specific antibodies proved to be indispensable for the detailed characterization of these enzyme and the cloning of cDNAs corresponding to the human PKR and the 69–71 and 100 kDa forms of the 2′,5′-OAS. When activated by dsRNA, PKR becomes autophosphorylated and catalyzes phosphorylation of the protein synthesis initiation factor eIF2, whereas the 2′-5′OAS forms 2′,5′-oligoadenylates that activate the latent endoribonuclease, the RNAse L. By inhibiting initiation of protein synthesis or by degrading RNA, these enzymes play key roles in two independent pathways that regulate overall protein synthesis and the mechanism of the antiviral action of interferon. In addition, these enzymes are now shown to regulate other cellular events, such as gene induction, normal control of cell growth, differentiation and apoptosis.  相似文献   

3.
真核生物除了传统的帽依赖型翻译机制外,还存在内部核糖体进入位点(internal ribosome entry site, IRES)介导的翻译机制。雌激素受体2(estrogen receptor 2, ESR2)是雌激素受体家族成员之一,其编码的蛋白质在许多肿瘤中发挥重要的作用。ESR2蛋白的异常表达会导致众多肿瘤的发生,但其蛋白质翻译水平的调控机制至今仍不清楚。研究发现,在药物刺激的条件下,乳腺癌细胞MCF7/WT中ESR2蛋白的表达提高,但是其转录水平基本未见发生改变。猜测ESR2 mRNA 5′非翻译区(5′ untranslated region, 5′ UTR)具有IRES活性。为了验证ESR2 mRNA 5′ UTR是否具有IRES元件,将ESR2 mRNA 5′ UTR插入到双顺反子报告基因载体(pRF)中,构建pRL-ESR2-FL重组质粒载体,将其瞬时转染到HEK293细胞。结果发现,ESR2 mRNA 5′ UTR有假定的IRES活性。并且通过3个排除实验验证了ESR2 IRES活性与其5′ UTR中的内部潜在启动子(P<0.0001)、内部剪切位点以及核糖体通读无关。进一步对其序列进行截短研究发现,ESR2 IRES活性发挥的关键区域是3′端的439~468 nt,且ESR2 IRES最大活性的发挥依赖于5′ UTR序列的完整性。并且发现,ESR2 IRES活性的发挥不但需要特定的一级核酸序列,还要有稳定的二级茎环结构。此研究有望为ESR2蛋白调控的相关疾病提供新的药物治疗靶点。  相似文献   

4.
Angioteinsin I-converting enzyme (ACE) inhibitory peptide was isolated from marine sponge (Stylotella aurantium) hydrolysate prepared by various hydrolysis enzymes. The peptic hydrolysate exhibited highest ACE inhibitory activity among them and was fractionated into three ranges of molecular weight. The below 5 kDa fraction showed the highest ACE inhibitory activity and was used for subsequent purification steps. The amino acid sequences of the purified peptides were identified to be Tyr-Arg (337.2 Da), and Ile-Arg (287.2 Da). The purified peptides from marine sponge had an IC50 value of 237.2 μM and 306.4 μM, respectively. The molecular docking study revealed that ACE inhibitory activity of the purified peptides was mainly attributed to the hydrogen bond interactions and Pi interaction between the dipeptides and ACE. The results suggest that marine sponge, S. aurantium would be an attractive raw material for the manufacture of anti-hypertensive nutraceutical ingredients.  相似文献   

5.
环磷酸腺苷(cAMP)作为第二信使参与多种生理生化过程的调节,是人体内重要的生理活性物质。本文采用水浸提和6 000 Da超滤膜过滤方法对大枣进行预处理,从5种树脂中选型最合适的树脂,并对提取工艺进行确定。结果表明,大枣在小颗粒状(0.3 cm)捣碎状态下,60℃水浸提12 h,cAMP提取效果最好。通过考察SD5、SD8、D01、D05和D13五种型号离子交换树脂,发现D13型树脂提取大枣中cAMP效果最佳。选用的洗脱剂为0.05 mol/L HCl,流速为1.5 mL/min。得到产品产率为65.0%,其中cAMP含量37.5%。  相似文献   

6.
7.
NPCEDRG基因是采用基因定位候选克隆策略获得的1个鼻咽癌候选抑瘤基因. NPCEDRG在鼻咽癌细胞和组织中表达下调,重新恢复NPCEDRG基因在CNE2细胞系的表达,可部分逆转CNE2 的恶性表型. 本研究对CNE2细胞所表达的NPCEDRG基因mRNA剪接变异体克隆、鉴定,发现NPCEDRG基因至少有7个转录起始位点,其中NM_032316的TSS位于ATG上游-85 nt处,AF538150和AK094248的TSS位于-25 nt处;AF538150不存在第2外显子中6核苷酸序列(5′-TTGCAG-3′)的缺失,其CDs为516 bp,编码1种由171个氨基酸组成的蛋白质(而非GenBank中公布的CDs为510 bp,1种由169个氨基酸组成的蛋白质). 本研究成功克隆得到1种新的NPCEDRG基因的mRNA剪接变异体V2,其TSS位于-23 nt处,其CDs为297 bp,编码1种由98个氨基酸组成的蛋白质.  相似文献   

8.
为更好地理解连接酶的接合机制,研究了2′-氟取代核苷酸(2′-fluorinated nucleotide, FN)对T7 DNA连接酶接合特性的影响。利用分子信标的荧光信号变化来检测连接酶接合活性。结果显示,在连接酶作用的分子信标缺口处的5′端和3′端分别进行F取代时,对T7 DNA连接酶的接合效果分别阻滞(48.7±6.7)%和(70.6±4.0)%。在取代同时发生在5′端和3′端时,接合效果被阻滞(76.6±1.3)%。动力学参数的回归显示,FN取代会导致连接反应最大速率(Vmax)降低,同时导致米氏常数Km增大,说明酶和底物之间的亲和力在取代后减小。缺口两端的碱基错配也对酶接合反应效果产生一定的阻滞效应。本研究的结果和结论使对氟取代后,T7 DNA连接酶的接合特性有了更进一步的认识,为更好地应用T7 DNA连接酶接合活性提供有力的实用依据。  相似文献   

9.
蛋白质翻译起始通常有两种机制,一是依赖帽结构的翻译,另一种是依赖5′非翻译区的内部核糖体进入位点(IRES).在后一种方式中,在某些IRES反式作用因子,如La蛋白、多聚嘧啶串结合蛋白1等的参与下,直接招募核糖体小亚基到mRNA的翻译起始位点,启始翻译.研究发现,参与细胞生长、分化、细胞周期进程、凋亡和压力调控的相关蛋白中通常含有IRES元件.基于功能,我们提出假说:转录激活因子1(ATF1)的5′-UTR可能具有IRES活性.为验证假说,首先构建了含全长ATF1 5′-UTR的双荧光素酶报告质粒|质粒转染结合报告酶活性分析显示,ATF1 5′-UTR在Bel7402、HCT-8和HEK293细胞中表现出不同的IRES活性|而此IRES活性与5′-UTR中的隐藏启动子无关.同时还发现,ATF1 5′-UTR在NIH3T3细胞中却没有IRES活性.与此结果相一致,Western印迹检测ATF1在这几种细胞系中的表达.结果显示,Bel7402、HCT 8和HEK293中ATF1蛋白质表达水平较高,而在NIH3T3中却极低. ATF1 5′-UTR的系列5′-删除突变及报告酶分析证明,ATF1 5′-UTR的完整性对其IRES活性大小发挥重要作用|其中5′端的204 bp序列对其IRES活性贡献较大. RNA-蛋白免疫共沉淀实验揭示,ATF1 5′-UTR可与La和PTBP1蛋白结合|抑制La和PTBP1蛋白质的表达,并可减低HEK293细胞中ATF1蛋白质表达水平.这些结果提示,La和PTBP1蛋白(两种ITAFs)为ATF1 5′-UTR发挥IRES活性所必需.总之,上述结果证明,ATF1 5′-UTR具有IRES活性,其活性发挥依赖与La和PTBP1蛋白的结合.上述发现为进一步研究La和PTBP1表达及亚细胞定位对ATF1 IRES调控机制的影响奠定了基础.  相似文献   

10.
11.

Background

In recent years there has been a global increase in reports of disease affecting marine sponges. While disease outbreaks have the potential to seriously impact on the survival of sponge populations, the ecology of the marine environment and the health of associated invertebrates, our understanding of sponge disease is extremely limited.

Methodology/Principal Findings

A collagenolytic enzyme suspected to enhance pathogenicity of bacterial strain NW4327 against the sponge Rhopaloeides odorabile was purified using combinations of size exclusion and anion exchange chromatography. After achieving a 77-fold increase in specific activity, continued purification decreased the yield to 21-fold with 7.2% recovery (specific activity 2575 collagen degrading units mg−1protein) possibly due to removal of co-factors. SDS-PAGE of the partially pure enzyme showed two proteins weighing approximately 116 and 45 kDa with the heavier band being similar to reported molecular weights of collagenases from Clostridium and marine Vibrios. The enzyme degraded tissue fibres of several sponge genera suggesting that NW4327 could be deleterious to other sponge species. Activity towards casein and bird feather keratin indicates that the partially purified collagenase is either a non-selective protease able to digest collagen or is contaminated with non-specific proteases. Enzyme activity was highest at pH 5 (the internal pH of R. odorabile) and 30°C (the average ambient seawater temperature). Activity under partially anaerobic conditions also supports the role of this enzyme in the degradation of the spongin tissue. Cultivation of NW4327 in the presence of collagen increased production of collagenase by 30%. Enhanced enzyme activity when NW4327 was cultivated in media formulated in sterile natural seawater indicates the presence of other factors that influence enzyme synthesis.

Conclusions/Significance

Several aspects of the sponge disease etiology were revealed, particularly the strong correlation with the internal tissue chemistry and environmental temperature. This research provides a platform for further investigations into the virulence mechanisms of sponge pathogens.  相似文献   

12.
Phosphorus-32 labeled polyphosphoric acid was used to phosphorylate the 2′,3′-O-isopropylidene derivaties of purine and pyrimidine ribonucleosides. The reaction mixture, which contained isopropylidene ribonucleoside 5′-phosphates, was subjected to selective hydrolysis, which removed the isopropylidene protecting group. The polyphosphate chains remained intact. Chromatography revealed the presence of ribonucleoside 5′-mono-, di-, tri-, tetra-, and higher phosphates. The distribution of radioactive label was established by liquid scintillation counting and enzyme assay. The triply labeled adenosine triphosphate prepared in this manner proved to be enzymically active and gave a positive firefly bioluminescence response.  相似文献   

13.
DNA克隆技术,作为最基本的现代分子生物学实验技术之一, 已经成为生物医学研究领域的重要研究手段。传统的分子克隆方法需要经过限制性内切酶酶切和DNA连接酶连接的步骤,是否存在合适的酶切位点和DNA连接酶的效率成为影响克隆的重要限制因素。本文描述了一种由外切核酸酶Ⅲ介导的,以3′-5′外切核酸酶活性和细菌细胞内DNA修复机制为理论基础的DNA分子克隆方法,称为不依赖连接酶的分子克隆(ligation-independent cloning, LIC)|证明了该方法的高效性和可靠性,并进一步对酶的用量、反应温度、反应时间、片段载体比例和量等多个参数进行了优化,建立了一种快速、简便和高效的DNA克隆方法。  相似文献   

14.
柯萨奇病毒B组(Coxsackievirus B,CVB)感染细胞时其基因组RNA存在不稳定现象,但产生机制尚不清楚。本研究将柯萨奇病毒B组3型(CVB3)感染细胞后,利用5′ cDNA末端快速扩增技术(5′ rapid amplification of cDNA ends,5′ RACE)扩增并克隆细胞内CVB3基因组片段,并对每条序列及其5′端的二级结构进行分析。结果获得的20条CVB3基因组片段,长度为 2 067~5 547 bp,片段断端主要分布于2Apro和2C编码区。RNAfold分析显示,这些片段多数在5′断点端形成二级茎-环结构。本研究显示,CVB在宿主细胞感染时可形成大量不完整基因组RNA片段,这些片段可在5′断点端形成局部双链结构,提示片段不是随机产生,可能是RNA酶剪切产物。此发现有助于理解CVB基因组不稳定的机制。  相似文献   

15.
The proteins of the pancreatic ribonuclease A (RNase A) family catalyze the cleavage of the RNA polymer chain. The development of RNase inhibitors is of significant interest, as some of these compounds may have a therapeutic effect in pathological conditions associated with these proteins. The most potent low molecular weight inhibitor of RNase reported to date is the compound 5′-phospho-2′-deoxyuridine-3-pyrophosphate (P→5)-adenosine-3-phosphate (pdUppA-3′-p). The 3′,5′-pyrophosphate group of this compound increases its affinity and introduces structural features which seem to be unique in pyrophosphate-containing ligands bound to RNase A, such as the adoption of a syn conformation by the adenosine base at RNase subsite B2 and the placement of the 5′-β-phosphate of the adenylate (instead of the α-phosphate) at subsite P1 where the phosphodiester bond cleavage occurs. In this work, we study by multi-ns molecular dynamics simulations the structural properties of RNase A complexes with the ligand pdUppA-3′-p and the related weaker inhibitor dUppA, which lacks the 3′ and 5′ terminal phosphate groups of pdUppA-3′-p. The simulations show that the adenylate 5′-β-phosphate binding position and the adenosine syn orientation constitute robust structural features in both complexes, stabilized by persistent interactions with specific active-site residues of subsites P1 and B2. The simulation structures are used in conjunction with a continuum-electrostatics (Poisson-Boltzmann) model, to evaluate the relative binding affinity of the two complexes. The computed relative affinity of pdUppA-3′-p varies between −7.9 kcal/mol and −2.8 kcal/mol for a range of protein/ligand dielectric constants (εp) 2–20, in good agreement with the experimental value (−3.6 kcal/mol); the agreement becomes exact with εp = 8. The success of the continuum-electrostatics model suggests that the differences in affinity of the two ligands originate mainly from electrostatic interactions. A residue decomposition of the electrostatic free energies shows that the terminal phosphate groups of pdUppA-3′-p make increased interactions with residues Lys7 and Lys66 of the more remote sites P2 and P0, and His119 of site P1.  相似文献   

16.
Apurinic/apyrimidinic endonuclease 1 (APE1) is the major mammalian enzyme in DNA base excision repair that cleaves the DNA phosphodiester backbone immediately 5′ to abasic sites. Recently, we identified APE1 as an endoribonuclease that cleaves a specific coding region of c-myc mRNA in vitro, regulating c-myc mRNA level and half-life in cells. Here, we further characterized the endoribonuclease activity of APE1, focusing on the active-site center of the enzyme previously defined for DNA nuclease activities. We found that most site-directed APE1 mutant proteins (N68A, D70A, Y171F, D210N, F266A, D308A, and H309S), which target amino acid residues constituting the abasic DNA endonuclease active-site pocket, showed significant decreases in endoribonuclease activity. Intriguingly, the D283N APE1 mutant protein retained endoribonuclease and abasic single-stranded RNA cleavage activities, with concurrent loss of apurinic/apyrimidinic (AP) site cleavage activities on double-stranded DNA and single-stranded DNA (ssDNA). The mutant proteins bound c-myc RNA equally well as wild-type (WT) APE1, with the exception of H309N, suggesting that most of these residues contributed primarily to RNA catalysis and not to RNA binding. Interestingly, both the endoribonuclease and the ssRNA AP site cleavage activities of WT APE1 were present in the absence of Mg2+, while ssDNA AP site cleavage required Mg2+ (optimally at 0.5-2.0 mM). We also found that a 2′-OH on the sugar moiety was absolutely required for RNA cleavage by WT APE1, consistent with APE1 leaving a 3′-PO42− group following cleavage of RNA. Altogether, our data support the notion that a common active site is shared for the endoribonuclease and other nuclease activities of APE1; however, we provide evidence that the mechanisms for cleaving RNA, abasic single-stranded RNA, and abasic DNA by APE1 are not identical, an observation that has implications for unraveling the endoribonuclease function of APE1 in vivo.  相似文献   

17.
12 S ribonucleoprotein (RNP) particles were separated from a 45 S RNP complex (Bachmann, M., Zahn, R.K. and Müller, W.E.G. (1983) J. Biol. Chem. 258, 7033–7040) isolated from calf thymus and L5178y cells. The particles were determined to be associated with an acidic endoribonuclease (pI 4.1; pH optimum 6.2). the enzyme requires Mg2+ and is sensitively inhibited by higher NaCl concentrations. The nuclease specifically degrades poly(U) and poly(C) in an endonucleolytic manner; the end-products are 3′-UMP (85%) and 2′,3′-cyclic UMP (12%). Poly(A) strongly inhibits the pI 4.1 endoribonuclease activity. The Michaelis constant (for poly(U)) was determined as 82 μM and the maximal reaction velocity was 0.54 μmol/μg per h. The endoribonuclease is distinguished from the known pyrimidine-specific ribonucleases (pancreatic ribonuclease and endoribonuclease VII) by further criteria, e.g., resistance to thiol reagents, inhibition by EDTA, Mg2+ requirement, pI and pH optimum. Using the techniques of counterimmunoelectrophoresis and immunoaffinity column chromatography it was shown that the pI 4.1 endoribonuclease-associated 12 S RNP particles display antigenicity to anti-Sm and anti-(U1)-RNP antibodies. An RNA component, isolated from the 12 S-45 S hypercomplex, was identified as U1-snRNA.  相似文献   

18.
A method is described for the estimation of adenosine 3′,5′-monophosphate (3′,5′-cyclic AMP) in rat brain by high-pressure liquid chromatography (HPLC). The nucleotide is purified initially by being passed through two columns, alumina and AG-1X2. The peak in HPLC was identified by a number of methods. Optimum parameters for HPLC were obtained by using 1 mm KH2PO4 buffer, pH 4.8, at a flow rate of 57 ml/hr at room temperature. Using this technique the concentration of 3′,5′-cyclic AMP in rat brain was found to be 2.53 ± 0.40 nmol/g (mean ± SD, n = 5).  相似文献   

19.
2′,5′-Oligoadenylate synthetases (2-5A synthetases, OAS) are enzymes that play an important role in the interferon-induced antiviral defense mechanisms in mammals. Sponges, the evolutionarily lowest multicellular animals, also possess OAS; however, their function is presently unclear. Low homology between primary structures of 2-5A synthetases from vertebrates and sponges renders their evolutionary relationship obscure. The genomic structure of vertebrate OASs has been thoroughly examined, making it possible to elucidate molecular evolution and expansion of this gene family. Until now, no OAS gene structure was available from sponges to compare it with the corresponding genes from higher organisms. In the present work, we determined the exon/intron structure of the OAS gene from the marine sponge Geodia cydonium and found it to be completely different from the strictly conserved exon/intron pattern of the OAS genes from vertebrates. This finding was corroborated by the analysis of OAS genes from another sponge, Amphimedon queenslandica, whose genome was recently sequenced. Our data suggest that vertebrate and sponge OAS genes have no direct common intron-containing ancestor and two (sub)types of OAS may be discriminated. This study opens new perspectives for understanding the phylogenesis and evolution of 2-5A synthetases as well as functional aspects of this multigene family. Electronic supplementary material  The online version of this article (doi:) contains supplementary material, which is available to authorized users. Abbreviations  The nomenclature of particular OASs in the present paper is based on the level of their sequence similarities. OAS1 refers to the OAS consisting of a single OAS domain. Capital letters (OAS1X) are used to differentiate between OAS1 types with sequence homologies of less than 50%; their variants are additionally marked in small letters (OASXx, sequence homology ~70 to ~95%). Labels prime and double prime denote sponge OAS1Xx gene haplotypes (sequence homology close to 100%, a few amino acid substitutions).  相似文献   

20.
海藻糖酶是一种二糖水解酶,催化海藻糖转换为葡萄糖,为昆虫包括发育、壳多糖合成及飞翔代谢在内的多种生理过程所必需。尽管某些昆虫的海藻糖酶基因已被鉴定,但优雅蝈螽的海藻糖酶编码序列尚未见报告。本研究采用RACE结合多重PCR技术,分离鉴定优雅蝈螽的水溶性海藻糖酶(GgTre1)和类膜结合型海藻糖酶(GgTre2-like)的全长编码序列(cDNA),包括携带不同长度3′-非翻译区(3′-UTR)的3个GgTre1 cDNA 亚型(GenBank:No.KY400001-KY400003)和3个GgTre2-like cDNA 亚型(GenBank:No.KY400004-KY400006)。 3个GgTre1 cDNA序列分别为2 107,2 021和1 914 bp,具有相同长度的5′-UTR(33 bp),但3′-UTR 长度不同,分别为322,248和129 bp。GgTre1-2 cDNA含1 740 bp,编码579 个氨基酸残基组成的多肽链,分子量为67.29 kD;与之不同,根据cDNA演绎的GgTre1-1和GgTre1-3序列较GgTre1-2多4个氨基酸残基,多肽链的分子量为67.88 kD。3个GgTre2-like cDNA(GgTre2-like-1,-2和-3)序列全长分别为2 491,2 460 和2 381 bp。5′-UTR 均为284 bp,3′-UTR 分别为398,367和285 bp。GgTre2-like cDNA开阅读框为1 809 bp,编码602 氨基酸残基组成的多肽链,分子量为67.88 kD。实时定量PCR, 分析GgTre1和GgTre2-like基因在雌、雄个体(各20个)的组织特异性表达。结果显示,GgTre1 在卵巢和附腺表达量最高;GgTre2-like 主要在卵巢表达,在雄性肌肉和马氏管的表达量高于其他组织。上述结果表明,本研究从优雅蝈螽分离到3′-UTR长度不同的3个水溶性和3个类膜结合型海藻糖酶cDNA序列。结果还提示,GgTre1 在各组织的表达差异较大,而GgTre2-like 在各组织的表达相对稳定。不同长度3′-UTR的GgTre1 和 GgTre2-like 亚型的存在,以及不同长度的3′-UTR在翻译过程中的特殊作用,尚待今后研究证实。  相似文献   

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