906 resultados para yeast complementation
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Empleo de la técnica BiFC para estudiar la interacción entre los canales Kv7.2 y la CaM. Para ello se realizan clonajes, se co-transfectan distintas combinaciones de éstos en células de mamífero y se analiza y cuantifica la intensidad de fluorescencia obtenida mediante microscopía confocal.
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日益加剧的重金属污染已经危害到了全球的生态环境以及人类健康。在分子水平上阐明植物中的重金属抗性机制并应用于环境修复和绿色农业是植物科学和环境科学以及农业科学的交叉点和新的生长点。为了了解植物重金属抗性的分子机制,我们的研究主要是从重金属抗性植物材料大蒜(Allium sativumL.)和绊根草(Cynodon dactylon)中分离重金属抗性相关基因,并研究它们在重金属抗性机制中的功能。 在高等植物中有迹象表明,一种富含半胱氨酸的低分子量蛋白.类金属硫蛋白 (Metallothioneins Like,MTs Like)和一类具有Y-(Glu-Cys) n-Gly特殊结构的多肽一植物络合素(Phytochelatins,PCs)在重金属抗性机制中占有重要地位。然而人们对于同一种植物中这两种重金属结合肽作用的相互关系还缺乏了解,同时对于MT Like基因以及PCs合酶基因在同一种植物中的表达模式如金属离子专一性、时空表达特点等,还投有文献报道,因此本文将首先以这两个基因为切入点进行研究。 本研究采用RACE的方法,从大蒜中分离得到了类金属硫蛋白(MT-Like)的cDNA序列(GenBank Accession No.AY050510),PCR和SoutheLrn Blot分析表明,大蒜基因组中不仅存在类金属硫蛋白基因,而且可能以基因家族的形式存在。对获得的MT Like cDNA进行的序列分析及同源性分析表明,大蒜MT Like cDNA含有一个完整的开放阅读框架,编码73个氨基酸,其中12个为半胱氨酸,占氨基酸总数的1 6.4%,并与其他植物如水稻、小麦、紫羊茅草中的类金属硫蛋白基因同源性较高,其中最高达89%。对该基因编码的氨基酸序列和结构分析表明在N-端、c-端结构域中分别含有3个典型的金属硫蛋白的结构模式Cys-Xaa-Cys,属于典型的Type-1类金属硫蛋白。这些Cys-Xaa-Cys特征结构表明大蒜MT Like基因编码的蛋白可以结合二价金属离子。重金属胁迫下大蒜根中MT Like基因在转录水平的表达检测表明,MT Like基因的表达受重金属离子Cu2+、Cd2+的诱导,暗示MT Like基因在大蒜对重金属的抗性中有重要作用。此外,用能谱电镜技术研究大蒜中重金属的积累与分布,以及用组织原位杂交技术分析MT Like基因的表达定位与重金属的积累、转运的关系已在进行之中。 植物络合素也是富含巯基的多肽化合物,在重金属抗性中起重要作用。由植物络合素结构中存在的Y一酰胺键或β-Ala可知PCs不是基因表达的直接产物,而是以GSH为前体的酶促反应产物。目前已知y一谷氨酰半胱氨酸二肽转肽酶(简称为PCs合酶,phytochelatin synthase,PCS)是PCs合成途径的关键酶,编码这一关键酶的基因目前已在小麦、拟南芥菜和裂殖酵母中克隆。由于这一基因在不同物种中的保守性较低,其克隆较困难。本研究通过设计植物络合素台酶基因简并引物,从大蒜中扩增得到了345bp的cDNA序列。序列分析和推测的氨基酸序列同源性比较表明,此序列的翻译产物与已知的植物络合素合酶同源性最高,此cDNA序列应为大蒜植物络合素合酶基因的部分cDNA序列(GenBank Accession No.AF384110)。目前大蒜植物络台素合酶基因的全长序列的扩增,以及这两种与重金属抗性有关的基因(MT Like,PCS)的表达模式仍在研究中。 本文还尝试了利用酵母重金属敏感突变株M379/8功能互补的方法从重金属抗性植物绊根革中分离新的重金属抗性相关基因。构建了用于转化的酵母质粒表达文库,探索了酵母转化体系建立的条件。曾尝试多种转化方法,并对其中的条件进行了优化改进。下一步的工作将集中在合适的酵母突变体的筛选或穿梭表达载体的选择标记基因替换上
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本研究利用酵母功能互补方法和RACE的方法从具有较强抗逆能力的绊根草中克隆了9个与重金属抗性相关的克隆,并对部分基因的表达调控及功能进行了初步研究。同时还利用细胞工程技术筛选到了具有较强的耐受火箭推进齐-偏二甲肼(UDMH)的芦苇的变异株系,为以后用人工湿地系统处理受偏二甲肼污染的废水奠定了基础。 本研究通过酵母功能互补法克隆到了五个基因,分别为CdSRP、CdTETH、 CdASP、CdMT2和CdTER1。CdSRP可能是一种衰老相关基因;CdTETH编码的产物可能是组成TRAPP复合体的一个亚基;CdASP是一个功能未知的基因;CdMT2是一个编码Type Ⅱ型金属硫蛋白基因;CdTER1可能是编码一个TERl-like家族蛋白成员的基因。用这五个基因分别转化因Acr基因缺失而对As敏感的酵母菌株FD236-6A,所获得的转化子对As的抗性均有提高,其中以CdMT2、CdTER1和CdASP的作用最为明显。这些基因的表达调控方式以及与其它重金属抗性的关系正在研究中。 本研究还利用RACE的方法克隆了一个谷胱甘肽S-转移酶基因,CdGSTFl;两个植物络合素合酶基因,CdPCSI和CdPCSⅡ,和一个TypeⅠ型金属硫蛋白基因CdMT1。CdGSTF1属于phi类GST基因,Northern-blotting分析表明,CdGSTF1在绊根草根部的表达受Cd2+的诱导,暗示其可能具有解除氧自由基或氢过氧化物的毒性的作用。CdPCSI和CdPCSⅡ的同源性较高,表明绊根草含有两个以上的PCs合酶的基因。参照前人的方法对CdPCSI和CdPCSII的氨基酸序列进行分析,发现它们含有六个非常相近的Cd2+结合位点,这两个基因的功能及其调控方式有何差异尚需进一步的研究。cdMT1与用酵母功能互补法克隆到的CdMT2属于不同类型的MT基因,对它们之间很可能存在的功能、组织特异性等方面的差异性进行了讨论。 四氧化二氮/偏二甲肼是常用的航天器双组元液体推进剂。偏二甲肼易挥发,有致癌、致畸、致突变的毒性。在推进剂贮存、运输、转注、火箭发动机试车、火箭发射、管道及设备冲洗中产生的含有偏二甲肼的废水能够对卫星发射基地的地下水源和空气造成污染。因此迫切需要培育能够净化偏二甲肼污水的植物。 本研究利用生长在卫星发射基地的野生芦苇的种子诱导愈伤组织,进而通过逐步提高偏二甲肼筛选压力的方式从中筛选出具有较强抗性的愈伤组织,然后诱导其分化。目前已经得到能够在含有1.63 mmol/L和3.26 mmol/L偏二甲肼的分化培养基中生长良好的芦苇再生苗,并已成功转移至温室中。抗性分化苗对污水的处理效果和耐受偏二甲肼的机理正在研究中。
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Mitochondria are essential for cellular energy production in most eukaryotic organisms. However, when glucose is abundant, yeast species that underwent whole-genome duplication (WGD) mostly conduct fermentation even under aerobic conditions, and most can
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Recent transcription profiling studies have revealed an unexpectedly large proportion of antisense transcripts in eukaryotic genomes. These antisense genes seem to regulate gene expression by interacting with sense genes. Previous studies have focused on the non-coding antisense genes, but the possible regulatory role of the antisense protein is poorly understood. In this study, we found that a protein encoded by the antisense gene ADF1 acts as a transcription suppressor, regulating the expression of sense gene MDF1 in Saccharomyces cerevisiae. Based on the evolutionary, genetic, cytological and biochemical evidence, we show that the protein-coding sense gene MDF1 most likely originated de novo from a previously non-coding sequence and can significantly suppress the mating efficiency of baker's yeast in rich medium by binding MAT alpha 2 and thus promote vegetative growth. These results shed new light on several important issues, including a new sense-antisense interaction mechanism, the de novo origination of a functional gene, and the regulation of yeast mating pathway.
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形成真核生物mRNA 3^末端的多聚腺苷(poly (A))作用涉及前体mRNA下游的三个元件:效率元件(EE)、定位元件(PE)以及实际的剪切和poly(A)作用位点,实验研究提出了一些EE和PE的碱基序列组成。对180个Yeast基因下游(终止密码子后200个碱基)二级结构进行的详细分析显示,约86%的EE、89%的PE与二级结构中碱基非配对的环(发夹环、膨胀环、内环或多分支环)区或连接单链区有关。这个结果提示,反式因子对EE和PE的识别和作用在一定程度上有赖于EE和PE的二级结构特征。借助mRNA二级结构可以提高对EE和PE位点预测的准确性。
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We have cloned a mouse homologue (designated Myak) of the yeast protein kinase YAK1. The 1210 aa open reading frame contains a putative protein kinase domain, nuclear localization sequences and PEST sequences. Myak appears to be a member of a growing family of YAK1-related genes that include Drosophila and human Minibrain as well as a recently identified rat gene ANPK that encode a steroid hormone receptor interacting protein. RNA blot analysis revealed that Myak is expressed at low levels ubiquitously but at high levels in reproductive tissues, including testis, epididymis, ovary, uterus, and mammary gland, as well as in brain and kidney. In situ hybridization analysis on selected tissues revealed that Myak is particularly abundant in the hormonally modulated epithelia of the epididymis, mammary gland, and uterus, in round spermatids in the testis, and in the corpora lutea in the ovary, Myak is also highly expressed in the aqueduct of the adult brain and in the brain and spinal cord of day 12.5 embryos, Mol. Reprod. Dev. 55:372-378, 2000. (C) 2000 Wiley-Liss, Inc.
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Polyadenylation of 3 ' -forming in eukaryote concerns three elements located in precursor mRNA downstream region: efficiency element (EE), position element (PE) and the actual site for cleavage and polyadenylation. Several base sequences of EE and PE have
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A comparative analysis on the intron sequence oligonucleotide usages in two sets of yeast genes with higher and lower transcription frequencies, respectively, has shown that the intron sequence structures of the two sets of genes are different. There are more potential binding sites for transcription factors in the introns of the genes with high transcription frequencies. So it is speculated that introns regulate the transcription of genes. But more evidences are needed to favor this speculation. The detailed comparative analyses on the distribution ( length and position) of introns and exons in the two sets of gene sequences also show that there is an obvious boundary between the lengths of the two sets of introns. There is no boundary between the lengths of the two sets of exons, although the means of their lengths are of discrepancy. The situation of the gene lengths ( length of intron and exon) is similar to exon lengths. As far as the relative position, the introns in two sets of genes all have a bias toward the 5' ends of genes. But as the actual position is considered, more introns in high transcription genes have a tendency to be located toward the 5' ends of genes, some even located at 5'-UTR. These results suggest that the gene transcription rates are related to the length of intron, but not to the lengths of exons and genes sequences. The positions of introns may also influence the transcription rates. The transcriptional regulation of introns may be correlative with the transcriptional regulation of the upstream of genes, or be its continuous action.
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A great deal of experimental studies have shown that many introns of eukaryotic genes function as regulators of transcription. However, comprehensive studies of this problem have not yet been conducted. After checking the transcription frequencies of some Saccharomyces cerevisiae (yeast), genes and their introns, a remarkable phenomenon was discovered that generally the introns of the genes with higher transcription frequencies are longer, and the introns of the genes with lower transcription frequencies are shorter. This suggests that the longer introns of genes with higher transcription frequencies may contain some characteristic sequence structures, which could enhance the transcription of genes. Therefore, two sets of introns of yeast genes were chosen for further study. The transcription frequencies of the first set of genes are higher (>30), and those of the second set of genes are lower (less than or equal to10). Some oligonucleotides are detected by statistically comparative analyses of the occurrence frequencies of oligonucleotides (mainly tetranucleotides and pentanucleotides), whose occurrence frequencies in the first set of introns; are significantly higher than those in the second set of introns, and are also significantly higher than those in the exons flanking the introns of the first set. Some of these extracted oligonucleotides are the same as the regulatory elements of transcription revealed by experimental analyses. Besides, the distributions of these extracted oligonucleotides in the two sets of introns and the exons show that the sequence structures of the first set of introns are favorable for transcription of genes.