998 resultados para PR mRNA


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细胞分裂素是一类重要的植物激素,它参与调节许多植物的生命活动过程。本文从几个方面研究了细胞分裂素的作用。 在细胞分裂素的活性测定中,通过改进尾穗蔸苋红素合成法建立了一种简便、准确的生物试法,同时还建立了根据物理化学和免疫学原理而测定细胞分裂素的HPLC和ELISA方法,使得细胞分裂素的定量更加准确。经过对上述三种方法的相互验证实验表明,同时采用二种方法可以保证细胞分裂素分析的准确和可靠。 细胞分裂素可以促进黄瓜子叶的扩张。利用离体黄瓜子叶,分析BA诱发其扩张与子叶内源细胞分裂素之间的关系,实验证明,BA能促进玉米素及其核苷的迅速积累,进而诱发子叶的扩张。上述结果还表明,黄瓜子叶可能具有合成细胞分裂素的能力。 荸荠球茎是一种贮藏器官,但实验测定发现其中含有细胞分裂素的生理活性形式——异戊烯基腺嘌呤核苷(iPA),而且合成它的前体腺嘌呤的含量也十分丰富,考虑到球茎与种子的类似之处,推测它可能做为合成细胞分裂素的一个源,而且其合成途径可能有别于植物其它组织。 农杆菌中的异戊烯基转移酶(ipt)基因是负责细胞分裂素生物合成的关键基因。将ipt基因克隆后对其启动子进行了改造,分别构建了如下三种基因:(1) ipt启动子+ipt编码区和3,区(ipt),(2)磷酸核酮糖羧化酶小亚基启动子SSU 301+ipt编码区和3,区(SSU -ipt),(3)豌豆种子特异性启动子viciln+ipt编码区和3,区(vic-ipt)。上述三种基因经农杆菌介导转化烟草,获得了16株再生植株,经Southern杂交证明其中15株的基因组上含有正常整合的ipt基因。Northern杂交表明有13株转基因烟草中的ipt基因能转录出大小正常的ipt mRNA并促进了细胞分裂素的生物合成。 实验表明,转基因烟草中ipt基因的表达受到多种因素的调控。首先启动子决定了ipt基因的表达模式,SSU -ipt基因的表达受光的诱导,黑暗中这种基因的转录完全停止,而vic-ipt基因的表达是种子特异性的,它不在烟草营养生长器官如根、茎、叶和愈伤组织中表达。第二,生长素能降低ipt基因的表达活性。第三,在整体植物的根中,存在某些反式因子,能够控制ipt基因的过量表达,这其中可能涉及到细胞内的蛋白因子、基因的甲基化作用及细胞分裂素的反馈调节等。 vic-ipt基因在烟草种子中的特异性表达导致种子内形成了一个细胞分裂素合成的源(source)。对种子中营养物质积累的研究表明,ipt基因的表达促进了种子干物质的积累,其中作用最明显的是增加种子内蛋白质的合成。转入vic-ipt基因后的烟草种子其萌发率没有显著变化,但幼苗的生长速率明显加快,这表明细胞分裂素能调节植株的生长。 通过Northern杂交检测转基因烟草中基因表达的调控,实验证明,ipt基因的表达明显抑制一组植物病理相关蛋白(PR)基因的转录活性,这组基因编码:几丁质酶,β-1,3一葡萄糖苷酶,伸展蛋白和渗调蛋白。对这些调控作用的生理学意义还有待进一步探索。 上述结果表明,在高等植物中,除了传统上认为根是合成细胞分裂素的部位之外,其它组织和器官也具有合成细胞分裂素的能力,其中合成能力最强的是一些离体组织和贮藏器官。农杆菌中的细胞分裂素生物合成基因(ipt)能够在高等植物的基因组中正常的整合和表达,并受到植物体内生理、发育等多种因素的调控,而与整体植物的正常生理过程协调一致。ipt基因的表达还能够调节植物体的生长和发育,包括种子发育时营养物质的积累、幼苗的生长和某些相关基因的表达。对上述问题的深入研究,必将促进细胞分裂素及其相关生理学和发育学研究的进展。

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A novel bombesin-related peptide was isolated from skin secretions of Chinese red belly toad Bombina maxima. Its primary structure was established as pGlu-Lys-Lys-Pro-Pro-Arg-Pro-Pro-Gln-Trp-Ala-Val-Gly-His-Phe-Met-NH2. The amino-terminal (N-terminal) 8-residue segment comprising four prolines and three basic residues is extensively different from bombesins from other Bombina species. The peptide was thus named proline rich bombesin (PR-bombesin). PR-bumbesin was found to elicit concentration-dependent contractile effects in the rat stomach strip, with both increased potency and intrinsic activity as compared with those of [Leu(13)]bombesin. Analysis of different bombesin cDNA structures revealed that an 8 to 14- nucleotide fragment replacement in the peptide coding region (TGGGGAAT in the cDNAs of multiple bombesin forms from Bombina orientalis and CACCCCGGCCACCC in the cDNA of PR-bombesin) resulted in an unusual Pro-Pro-Arg-Pro-Pro motif in the N-terminal part of PR-bombesin. (C) 2002 Elsevier Science Inc. All rights reserved.

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PR-bombesin is a bombesin-like peptide derived from the skin of tile Chinese red belly toad, Bombina maxima. The 8-residue segment of N-terminal of RP-bombesin, comprising four prolines and three basic residues, is extensively different front other bombes

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A polymerase chain reaction-based restriction fragment length polymorphism (RFLP) approach is used to examine Sarcocystis cruzi-like taxa from the atypical intermediate host, water buffalo, in Yunnan, People's Republic of China. The loci examined lie with

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Here we report the codon bias and the mRNA secondary structural features of the hemagglutinin (HA) cleavage site basic amino acid regions of avian influenza virus H5N1 subtypes. We have developed a dynamic extended folding strategy to predict RNA secondar

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以H5N2亚型禽流感病毒毒株血凝素蛋白裂解位点碱性氨基酸为研究对象,对其密码子偏好性和对应mRNA序列的折叠二级结构特点进行研究和分析.旨在探讨裂解位点氨基酸对应mRNA核苷酸片段的二级结构与病毒致病力的关系,希望能对禽流感病毒的研究提供一些基础性信息.将mRNA样本按照序列等步长递增的方法,用RNAstructure 4.1程序预测这些样本的动态延伸折叠二级结构.序列和结构的分析结果:裂解位点的碱性氨基酸对富含腺嘌呤的密码子有强烈偏好;与碱性氨基酸对应的mRNA片段上的核苷酸主要位于折叠二级结构的单链环区,少数位于配对螺旋区.结果表明:裂解位点氨基酸对应的mRNA核苷酸形成发夹端环的大小与其碱性氨基酸的多少具有正相关性.

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目的:探讨HIV-1感染是否影响细胞中UNG2的表达.方法:采用四步法SYBR green Ⅰ实时定量RT-PCR,对HIV-1感染者的T和B淋巴细胞,以及HIV-1感染的C8166细胞核内UNG2 mRNA的表达进行测定.结果:UNG2 mRNA的表达在HIV-1感染者的T细胞和HIV-1感染的C8166细胞中被明显上调,分别是对照的8.76倍和8.14倍,而在HIV-1感染者的B细胞中却没有被上调.结论:HIV-1感染导致的UNG2表达上调,可能通过减少TCR的多样性削弱Th的功能,另一方面可能有利于病毒对UNG2的包装.

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下载PDF阅读器已知导入未编辑atp9 mRNA的烟草表现细胞质雄性不育(CMS),因此认为线粒体基因atp9是引起高等植物CMS的主要基因.为了解atp9在CMS中的作用机制,从3对烟草不育系及其同型保持系中提取atp9,利用实验与理论结合来分析其mRNA在编辑前后以及在不育系及其同型保持系中的一维、三维信息差别.结果表明,atp9 mRNA一维信息方面的差异,更重要的是二级结构的差异和稳定性,可能是影响ATP合成而导致CMS的根本原因.

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从GenBank获得大肠杆菌K-12MG1655株的全基因组序列,计算了与基因密码子偏好性相关的多个参数(Nc、CAI、GC、GC3s),对其mRNA编码区长度、形成二级结构倾向与密码子偏好性之间的关系进行了统计学分析,发现虽然翻译效率(包括翻译速度和翻译精度)是制约大肠杆菌高表达基因的密码子偏好性的主要因素,同时,mRNA编码区长度及其形成二级结构的倾向也是形成这种偏好性的不可忽略的原因,而且对偏好性有一定程度的削弱。另外对mRNA编码区形成二级结构倾向的生物学意义进行了讨论分析。

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利用置信度为95 的特征字研究了蛋白质二级结构以及其对应mRNA 二级结构, 发现 蛋白质二级结构和mRNA 二级结构有明显的相关性. 规则二级结构A2螺旋, B2折叠以及包含 有Turn 的边界明显倾向于mRNA 二级结构的茎区, 而避免出现在环区.

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 以UNCG, GNRA , CUU G (N = A , U , C 或G; R = G或A) 为端环能够形成稳定的、保 守的发夹结构. 它们具有特殊的结构特征, 并在体内发挥着重要的生物学功能. 这些稳定的发夹 广泛分布于体内rRNA , 催化RNA 和非编码mRNA 中. 但对人类88 个编码区mRNA 二级结构的 研究当中, 却没有发现C(UUCG) G发夹. 而且, 与rRNA 不同, 这些编码区mRNA 四环序列的 分布没有明显的偏好性.

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mRNA 所包含的核苷酸序列通过三联体密码子决定了蛋白质的氨基酸序列。但是, 由于对氨基酸同 义密码使用频率上的差异, 密码子与反密码子相互作用效率上的不同, 以及密码子上下文关系和mRNA 不同区 域二级结构上的差异, 造成了核糖体对mRNA 不同区域翻译速度上的差异, 加之共翻译折叠的作用, 使得mR2 NA 的序列和结构影响着蛋白质空间结构的形成。

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The forming mechanism of the three - dimensional structures of proteins,i.e.the mechanism of protein folding,is a basic problem in molecular biology which is still unsolved unitl now. In which a core problem is whether there is the three – dimensional genetic information that decide the three - dimensional structures of proteins. However, the research on this field has mot yet been reported. Recently,we made a comparative study on the folded structures of more than 70 mature messeneger RNAs (mRNAs) and the three - dimensional structures of the proteins encoded by them,it has been found that there exist marked correspondences between their featured structures in the following aspects: 1.The number of the structural units. An RNA molecule can form a secondary structure(stem and loop structure) by the folding and the base pairing of itself. The elementary structural unit of an RNA secondary structure is hairpin(or compound hair pin).The regular structural unit in the secondary structure of a protein is # alpha # - helix or #beta# - sheet . We have found that the hairpin number in the secondary structure of each mature mRNA is equal or approximately equal to the number of the regular secondary structural unis of the encoded protein. 2 .Turning region. Turn is a main structrual element in the secondary structure of a protein, which decides the backbone orientation of a protein molecule to some extent .Our analysis shows that the nucleotide sequence segments in an mRNA which encode the turns of the corresponding protein are overall situated in the turning regions of the mRNA secondary structure such as haipin,bulge loop or multibaranch loops. 3 .The arrangement of structural elements in space. In order to understand the backbone orientation of an RNA molecule and the arangement of its structural elements in space,we have modeled the three一dimensional structure of the mRNA molecule on SGI workstation based on its secondary structure.The result shows that the spatial arrangement of most of the nucleotide sequence segments encoding the structural elements of a protein is consistent with that of these stretural exements in the protein. For instance,the nucleotide sequences corresponding to each pleated sheet of a # beta # - sheet structure are close to each other in the mRNA secondary stucture and in the three - dimensional structure,although some of the nucleotide segments are far apart from each other in the one - dimensional sequence. For another instance,the two triplet codons of cysteines which form a disulphide bridge geneal1y are very close to each other in the mRNA folded structure. In addition,we also analyzed the locations of the codons proline - coding and the distrbution of the nucleotide sequences #alpha# - helix - coding in the folded structures of mRNAs . Some distribution laws have been found. All of these results suggest that the transfer of the genetic information from mRNA to protein not only is one – dimensional but also is three - dime ns ional. That is,there exists the genetic information that decide the three - dimensional structures of proteins. To a certain extent,we could say that the mRNA folding detemines the protein folding. Based on these results,it would be possible to predict the three - dimensional structures of proteins from the primary,secondary and tertiary structures of the m RNAs at a higher accuracy.And more important is that a new clue has been provided to uncover the“spatial coding" of the genetic information.