904 resultados para squalene synthase


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Chrysanthemyl diphosphate synthase (CPPase) catalyzes the condensation of two molecules of dimethylallyl diphosphate to produce chrysanthemyl diphosphate (CPP), a monoterpene with a non-head-to-tail or irregular c1′-2-3 linkage between isoprenoid units. Irregular monoterpenes are common in Chrysanthemum cinerariaefolium and related members of the Asteraceae family. In C. cinerariaefolium, CPP is an intermediate in the biosynthesis of the pyrethrin ester insecticides. CPPase was purified from immature chrysanthemum flowers, and the N terminus of the protein was sequenced. A C. cinerariaefolium λ cDNA library was screened by using degenerate oligonucleotide probes based on the amino acid sequence to identify a CPPase clone that encoded a 45-kDa preprotein. The first 50 aa of the ORF constitute a putative plastidial targeting sequence. Recombinant CPPase bearing an N-terminal polyhistidine affinity tag in place of the targeting sequence was purified to homogeneity from an overproducing Escherichia coli strain by Ni2+ chromatography. Incubation of recombinant CPPase with dimethylallyl diphosphate produced CPP. The diphosphate ester was hydrolyzed by alkaline phosphatase, and the resulting monoterpene alcohol was analyzed by GC/MS to confirm its structure. The amino acid sequence of CPPase aligns closely with that of the chain elongation prenyltransferase farnesyl diphosphate synthase rather than squalene synthase or phytoene synthase, which catalyze c1′-2-3 cyclopropanation reactions similar to the CPPase reaction.

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利用反义技术研究生物代谢途径以及对其生物合成进行调控成为植物次生代谢研究领域内一个重要手段之一,并与新兴的RNAi技术一起成为本领域内重要的研究热点。在植物类异戊二烯代谢途径中存在着羟甲基戊二酰辅酶A还原酶(HMGR)、法呢基焦磷酸合酶(FPS)和鲨烯合酶(SQS)等几种关键的分支酶,他们被认为在异戊二烯类的生物合成中发挥着关键的调节作用。其中,鲨烯合酶处于HMGR和FPS的下游,并与倍半萜合酶等利用共同的前体-法呢基二磷酸(FPP),以FPP起始合成一系列的下游产物。因此,FPP成为类异戊二烯途径中的关键调节点之一。本论文基于此目的,利用反义技术研究了FPP合成鲨烯这一途径受到抑制对其他以FPP为生物合成前体的代谢支路的影响。 利用植物双元转化载体pBI121,将青蒿中鲨烯合酶基因的cDNA(约1.5kb)序列插入到pBI121中,取代原有的GUS序列,构建成植物转化载体pBIASS。以根癌农杆菌为介导,将青蒿鲨烯合酶反义基因序列导入到烟草,整合到其基因组中 ,成功获得转基因植株。对转基因烟草进行分子检测表明,外源鲨烯合酶基因的序列已经稳定整合到烟草基因组中,并对内源的烟草鲨烯合酶基因表达产生影响。转基因烟草中检测到内源鲨烯合酶基因的mRNA的水平降低。对鲨烯合酶下游产物之一的胆固醇的含量分析显示,活性减低的鲨烯合酶使胆固醇的生物合成下降约40%左右。同时,另一条以FPP为共同前体的二萜代谢途径产物之一GA3的含量得到了提高,比对照提高约30%。

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利用反义技术研究生物代谢途径以及对其生物合成进行调控成为植物次生代谢研究领域内一个重要手段之一,并与新兴的RNAi技术一起成为本领域内重要的研究热点。在植物类异戊二烯代谢途径中存在着羟甲基戊二酰辅酶A还原酶(HMGR)、法呢基焦磷酸合酶(FPS)和鲨烯合酶(SQS)等几种关键的分支酶,他们被认为在异戊二烯类的生物合成中发挥着关键的调节作用。其中,鲨烯合酶处于HMGR和FPS的下游,并与倍半萜合酶等利用共同的前体-法呢基二磷酸(FPP),以FPP起始合成一系列的下游产物。因此,FPP成为类异戊二烯途径中的关键调节点之一。本论文基于此目的,利用反义技术研究了FPP合成鲨烯这一途径受到抑制对其他以FPP为生物合成前体的代谢支路的影响。 利用植物双元转化载体pBI121,将青蒿中鲨烯合酶基因的cDNA(约1.5kb)序列插入到pBI121中,取代原有的GUS序列,构建成植物转化载体pBIASS。以根癌农杆菌为介导,将青蒿鲨烯合酶反义基因序列导入到烟草,整合到其基因组中 ,成功获得转基因植株。对转基因烟草进行分子检测表明,外源鲨烯合酶基因的序列已经稳定整合到烟草基因组中,并对内源的烟草鲨烯合酶基因表达产生影响。转基因烟草中检测到内源鲨烯合酶基因的mRNA的水平降低。对鲨烯合酶下游产物之一的胆固醇的含量分析显示,活性减低的鲨烯合酶使胆固醇的生物合成下降约40%左右。同时,另一条以FPP为共同前体的二萜代谢途径产物之一GA3的含量得到了提高,比对照提高约30%。

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青蒿素是从中药青蒿中提取的新型抗疟药物,然而,青蒿素在青蒿中的含量非常低。近年来,随着青蒿素生物合成途径相关酶基因的克隆,基因工程成为提高青蒿素含量的有效途径之一。在对青蒿进行遗传转化过程中,高效稳定的丛生芽诱导体系是青蒿转化成功的关键。然而,随着继代次数的增多,青蒿丛生芽诱导能力存在退化现象。本文首先研究了滤纸对青蒿丛生芽诱导的影响和在遗传转化中的应用,进而研究了反义鲨烯合酶基因表达对青蒿素生物合成的影响。主要结果如下: 研究了在丛生芽诱导培养基上加铺滤纸对青蒿丛生芽诱导的影响,结果发现,加铺滤纸后青蒿丛生芽诱导率显著提高,丛生芽诱导率能够达到97%左右。在此高效丛生芽诱导体系的基础上,我们进一步探讨了滤纸在青蒿遗传转化中的应用。结果表明,在筛选培养基上加铺一层滤纸,青蒿的抗性丛生芽诱导率能够达到59.7%,其中在12.5%的抗性丛生芽中能够得到抗性生根植株,生根植株PCR检测均为阳性,在部分PCR检测阳性的植株中检测到了GUS的稳定表达。 利用上述改进的青蒿遗传转化体系,我们得到了反义鲨烯合酶基因的青蒿转化植株。PCR检测和Southern杂交检测结果证明了反义鲨烯合酶基因已经整合到青蒿基因组中。RT-PCR检测发现,在转基因株系ASQ3和ASQ5中鲨烯合酶基因在mRNA水平上得到部分抑制,鲨烯含量比对照降低了20%左右;青蒿素的含量分别提高了23.2%和21.5%,结果表明抑制鲨烯合酶表达能够有效促进青蒿中青蒿素的生物合成。

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从中国传统药用植物青蒿(Artemisia annua L.)中提取的青蒿素及其半合成衍生物如蒿甲醚等是一类新型的抗疟特效药,特别是对抗氯喹的恶性疟疾和脑型疟疾有很好的疗效。由于青蒿素在植物中的含量极低,使得其价格很高,特别是对于亚非拉等第三世界国家来说。因此如何提高青蒿素的产量成为近年来研究的热点。各种传统的育种、生理生化手段和细胞培养技术均未取得较好的结果,因此,利用植物基因工程技术提高青蒿素产量已成为研究的重点之一。 本论文围绕青蒿素的生物合成途径开展了以下的工作: 一、中药青蒿紫穗槐二烯合酶的大肠杆菌表达、纯化与功能鉴定 利用RT-PCR方法,从中药青蒿高产株系001中克隆到的中药青蒿紫穗槐二烯合酶(ADS) cDNA, 其推测编码蛋白与前人报道的有两个位点的突变。将其开放阅读框插入到原核表达载体pET30a(+)的BamHⅠ和XhoⅠ酶切位点之间,构建N端携带有HIS6表达标签的紫穗槐二烯合酶重组表达载体pETADS。将pETADS转入大肠杆菌BL21(DE3), IPTG (Isopropyl-beta -D-thiogalactoside)诱导重组紫穗槐二烯合酶的表达。表达产物经镍琼脂糖柱纯化。纯化蛋白加入酶促反应体系(含FPP),GC-MS分析酶促反应体系的正己烷萃取物,结果显示重组紫穗槐二烯合酶可以催化FPP向紫穗槐二烯的转化。体外酶促动力学分析表明,两个位点的氨基酸突变,并没有影响到青蒿紫穗槐二烯合酶的催化活性。基因组DNA杂交表明,紫穗槐二烯合酶基因在001株系基因组中至少有4个拷贝。 二、中药青蒿鲨烯合酶的大肠杆菌表达、纯化与功能鉴定 将经RACE方法克隆到的中药青蒿鲨烯合酶cDNA(AF302464) 开放阅读框的3'末端截短99 bp,插入到原核表达载体pET30a(+)的NcoⅠ和BamHⅠ酶切位点之间,构建N端和C端均携带有HIS6表达标签的鲨烯合酶重组表达载体pETSSA。将pETSSA转入大肠杆菌BL21(DE3), IPTG (Isopropyl-beta-D-thio galactoside)诱导重组鲨烯合酶的表达。表达产物经镍琼脂糖柱纯化。纯化蛋白加入酶促反应体系(含FPP和NADPH),GC-MS分析酶促反应体系的正己烷萃取物,结果显示重组鲨烯合酶可以催化FPP向鲨烯的转化。青蒿鲨烯合酶的功能鉴定,为进一步利用反义或RNAi技术限制甾类生物合成,从而提高青蒿中的青蒿素含量提供了基础。 三、中药青蒿法呢醇合酶原核表达、纯化与功能鉴定 将经RACE方法克隆到的中药青蒿倍半萜合酶cDNA ( AF304444) 开放阅读框插入到原核表达载体pET30a(+)的NcoⅠ和BamHⅠ酶切位点之间,构建N端和C端均携带有HIS6表达标签的重组表达载体pET30SESQ。将pET30SESQ转入大肠杆菌BL21(DE3), IPTG (Isopropyl-beta-D-thioga lactoside)诱导蛋白表达,表达产物经镍琼脂糖柱纯化。纯化蛋白加入酶促反应体系(FPP),GC-MS分析酶促反应体系的正己烷萃取物,结果显示此重组酶可以催化FPP向法呢醇的转化。 四、中药青蒿FPS、ADS双功能酶基因的构建、表达与功能鉴定 将青蒿素生物合成途径中催化两步连续反应的酶:法呢基焦磷酸合酶和紫穗槐二烯合酶的基因进行融合,经大肠杆菌表达后鉴定融合蛋白的功能,结果表明融合蛋白具有了双功能酶活性。进一步将融合酶基因转入酿酒酵母中,发酵后检测紫穗槐二烯的含量,并与同时转入法呢基焦磷酸合酶和紫穗槐二烯合酶单个基因的酵母、单独转入紫穗槐二烯合酶基因的酵母进行了比较,结果表明,转入双功能酶的酵母发酵获得的紫穗槐二烯含量要比两个对照酵母高,这表明,获得的双功能酶的催化效率要比两个单独酶的催化效率高。 五、过量表达青蒿紫穗槐二烯合酶对青蒿中青蒿素及其前体物含量的影响 利用根癌农杆菌介导,将青蒿紫穗槐二烯合酶转入青蒿株系001,分子检测证明,紫穗槐二烯合酶整合到了青蒿基因组中并在mRNA水平得到了高效表达。部分转基因青蒿的青蒿素含量有明显增加,最多的比001株系提高了41%。青蒿酸和二氢青蒿酸含量测定表明,转基因青蒿株系的青蒿酸和二氢青蒿酸含量最多的比对照分别提高了47%和79%。这些结果表明,紫穗槐二烯合成在青蒿素生物合成途径中是一个限速步骤,同时,也显示青蒿酸或二氢青蒿酸的进一步转化也可能是青蒿素生物合成中下游的限速步骤。

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  青蒿素是存在于中药青蒿(Artemisia annua L.)中的一种含有过氧桥的倍半萜内酯化合物,是中国科学家研发出的当今最有潜力的抗疟药剂,较传统抗疟药很少或无毒副作用,因此青蒿素的生产备受人们关注。目前,青蒿素的生产主要以植物提取为主,但由于青蒿植株中青蒿素的含量很低(约占干重的0.01%~0.8%),从而导致青蒿素价格昂贵,使许多贫困地区的疟疾患者无法得到医治,故提高青蒿植株中青蒿素的含量或扩大青蒿素的来源,降低生产青蒿素的成本具有重要的意义。     本论文基于扩大青蒿素的来源和提高青蒿植株中青蒿素含量的目的,开展了以下两方面的工作: 一、紫穗槐二烯在烟草中组合生物合成的研究   紫穗槐二烯合酶(amorpha-4,11-diene synthase,ADS)是青蒿素生物合成的关键酶之一,为了能在烟草中合成青蒿素的前体,本研究将青蒿的紫穗槐二烯合酶基因置于CaMV 35S启动子控制下,通过根癌农杆菌介导转入烟草(Nicotiana tobacum L.),并获得了转ADS基因烟草植株。经PCR及Southern杂交分析表明,ADS基因已经整合到转基因烟草基因组中;RT-PCR及对转基因烟草中ADS酶活性和产物中紫穗槐二烯和植物甾醇的测定分析,进一步证明整合的ADS基因在转录、翻译水平上均已经表达。上述结果表明,利用基因工程将青蒿素生物合成途径的关键酶基因导入植物,转基因植物中能够合成青蒿素的前体,这一研究结果为利用转基因植物生产青蒿素或其前体奠定了基础。 二、青蒿鲨烯合酶双链干涉基因对烟草的遗传转化研究   鲨烯合酶(squalene synthase, SQS)是甾醇类生物合成分支途径的关键酶之一,利用RNA干扰技术(RNA interference,RNAi)抑制目标基因表达的技术已日趋成熟。本文根据植物中hpRNA(hairpin RNA)的原理,在与烟草SQS同源性高达80%的青蒿ASQS序列的5/端保守区选择622 bp作为构建RNAi的序列,借助中间克隆载体,经过三次亚克隆,最后形成含ASQS-RNAi表达盒的双元表达载体pART27-ASQS,并转入农杆菌EHA105。采用农杆菌介导的烟草叶盘转化法,共获得了12棵转基因植株。转基因植株经过PCR和PCR-Southern blotting 检测,证实外源ASQS基因已经导入烟草中,并已经成功整合到烟草基因组中;通过RT-PCR分析说明,转基因烟草中SQS基因的表达已被成功抑制,部分转基因植株中内源SQS的干扰效果高达90%以上。对SQS的直接产物鲨烯和最终产物植物甾醇的检测显示,转基因烟草的植物甾醇和鲨烯的含量明显低于对照。本实验的结果为下一步将此RNA干扰载体导入青蒿,抑制青蒿中ASQS基因的表达,从而提高青蒿素的含量提供了可能。

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Previous complementation and mapping of mutations that change the usual yellow color of the Zygomycete Phycomyces blakesleeanus to white or red led to the definition of two structural genes for carotene biosynthesis. We have cloned one of these genes, carRA, by taking advantage of its close linkage to the other, carB, responsible for phytoene dehydrogenase. The sequences of the wild type and six mutants have been established, compared with sequences in other organisms, and correlated with the mutant phenotypes. The carRA and carB coding sequences are separated by 1,381 untranslated nucleotides and are divergently transcribed. Gene carRA contains separate domains for two enzymes, lycopene cyclase and phytoene synthase, and regulates the overall activity of the pathway and its response to physical and chemical stimuli from the environment. The lycopene cyclase domain of carRA derived from a duplication of a gene from a common ancestor of fungi and Brevibacterium linens; the phytoene synthase domain is similar to the phytoene and squalene synthases of many organisms; but the regulatory functions appear to be specific to Phycomyces.

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Background Nitric oxide is released by immune, epithelial and endothelial cells, and plays an important part in the pathophysiology of asthma. Objective To investigate the association of inducible nitric oxide synthases (iNOS) gene repeat polymorphisms with asthma. Methods 230 families with asthma (842 individuals) were recruited to identify and establish the genetic association of iNOS repeats with asthma and associated phenotypes. Serum nitric oxide levels in selected individuals were measured and correlated with specific genotypes. Multiple logistic regression analysis was performed to determine the effect of age and sex. Results A total of four repeats—a (CCTTT)n promoter repeat, a novel intron 2 (GT)n repeat (BV680047), an intron 4 (GT)n repeat (AFM311ZB1) and an intron 5 (CA)n repeat (D17S1878)—were identified and genotyped. A significant transmission distortion to the probands with asthma was seen for allele 3 of the AFM311ZB1 gene (p = 0.006). This allele was also found to be significantly associated with percentage blood eosinophils (p<0.001) and asthma severity (p = 0.04). Moreover, it was functionally correlated with high serum nitric oxide levels (p = 0.006). Similarly, the promoter repeat was found to be associated with serum total immunoglobulin (Ig)E (p = 0.028). Individuals carrying allele 4 of this repeat have high serum IgE (p<0.001) and nitric oxide levels (p = 0.03). Conclusion This is the first study to identify the repeat polymorphisms in the iNOS gene that are associated with severity of asthma and eosinophils. The functional relevance of the associated alleles with serum nitric oxide levels was also shown. Therefore, these results could be valuable in elucidating the role of nitric oxide in asthma pathogenesis.

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Vitamin A deficiency (VAD) is a serious problem in developing countries, affecting approximately 127 million children of preschool age and 7.2 million pregnant women each year. However, this deficiency is readily treated and prevented through adequate nutrition. This can potentially be achieved through genetically engineered biofortification of staple food crops to enhance provitamin A (pVA) carotenoid content. Bananas are the fourth most important food crop with an annual production of 100 million tonnes and are widely consumed in areas affected by VAD. However, the fruit pVA content of most widely consumed banana cultivars is low (~ 0.2 to 0.5 ìg/g dry weight). This includes cultivars such as the East African highland banana (EAHB), the staple crop in countries such as Uganda, where annual banana consumption is approximately 250 kg per person. This fact, in addition to the agronomic properties of staple banana cultivars such as vegetative reproduction and continuous cropping, make bananas an ideal target for pVA enhancement through genetic engineering. Interestingly, there are banana varieties known with high fruit pVA content (up to 27.8 ìg/g dry weight), although they are not widely consumed due to factors such as cultural preference and availability. The genes involved in carotenoid accumulation during banana fruit ripening have not been well studied and an understanding of the molecular basis for the differential capacity of bananas to accumulate carotenoids may impact on the effective production of genetically engineered high pVA bananas. The production of phytoene by the enzyme phytoene synthase (PSY) has been shown to be an important rate limiting determinant of pVA accumulation in crop systems such as maize and rice. Manipulation of this gene in rice has been used successfully to produce Golden Rice, which exhibits higher seed endosperm pVA levels than wild type plants. Therefore, it was hypothesised that differences between high and low pVA accumulating bananas could be due either to differences in PSY enzyme activity or factors regulating the expression of the psy gene. Therefore, the aim of this thesis was to investigate the role of PSY in accumulation of pVA in banana fruit of representative high (Asupina) and low (Cavendish) pVA banana cultivars by comparing the nucleic acid and encoded amino acid sequences of the banana psy genes, in vivo enzyme activity of PSY in rice callus and expression of PSY through analysis of promoter activity and mRNA levels. Initially, partial sequences of the psy coding region from five banana cultivars were obtained using reverse transcriptase (RT)-PCR with degenerate primers designed to conserved amino acids in the coding region of available psy sequences from other plants. Based on phylogenetic analysis and comparison to maize psy sequences, it was found that in banana, psy occurs as a gene family of at least three members (psy1, psy2a and psy2b). Subsequent analysis of the complete coding regions of these genes from Asupina and Cavendish suggested that they were all capable of producing functional proteins due to high conservation in the catalytic domain. However, inability to obtain the complete mRNA sequences of Cavendish psy2a, and isolation of two non-functional Cavendish psy2a coding region variants, suggested that psy2a expression may be impaired in Cavendish. Sequence analysis indicated that these Cavendish psy2a coding region variants may have resulted from alternate splicing. Evidence of alternate splicing was also observed in one Asupina psy1 coding region variant, which was predicted to produce a functional PSY1 isoform. The complete mRNA sequence of the psy2b coding regions could not be isolated from either cultivar. Interestingly, psy1 was cloned predominantly from leaf while psy2 was obtained preferentially from fruit, suggesting some level of tissue-specific expression. The Asupina and Cavendish psy1 and psy2a coding regions were subsequently expressed in rice callus and the activity of the enzymes compared in vivo through visual observation and quantitative measurement of carotenoid accumulation. The maize B73 psy1 coding region was included as a positive control. After several weeks on selection, regenerating calli showed a range of colours from white to dark orange representing various levels of carotenoid accumulation. These results confirmed that the banana psy coding regions were all capable of producing functional enzymes. No statistically significant differences in levels of activity were observed between banana PSYs, suggesting that differences in PSY activity were not responsible for differences in the fruit pVA content of Asupina and Cavendish. The psy1 and psy2a promoter sequences were isolated from Asupina and Cavendish gDNA using a PCR-based genome walking strategy. Interestingly, three Cavendish psy2a promoter clones of different sizes, representing possible allelic variants, were identified while only single promoter sequences were obtained for the other Asupina and Cavendish psy genes. Bioinformatic analysis of these sequences identified motifs that were previously characterised in the Arabidopsis psy promoter. Notably, an ATCTA motif associated with basal expression in Arabidopsis was identified in all promoters with the exception of two of the Cavendish psy2a promoter clones (Cpsy2apr2 and Cpsy2apr3). G1 and G2 motifs, linked to light-regulated responses in Arabidopsis, appeared to be differentially distributed between psy1 and psy2a promoters. In the untranscribed regulatory regions, the G1 motifs were found only in psy1 promoters, while the G2 motifs were found only in psy2a. Interestingly, both ATCTA and G2 motifs were identified in the 5’ UTRs of Asupina and Cavendish psy1. Consistent with other monocot promoters, introns were present in the Asupina and Cavendish psy1 5’ UTRs, while none were observed in the psy2a 5’ UTRs. Promoters were cloned into expression constructs, driving the â-glucuronidase (GUS) reporter gene. Transient expression of the Asupina and Cavendish psy1 and psy2a promoters in both Cavendish embryogenic cells and Cavendish fruit demonstrated that all promoters were active, except Cpsy2apr2 and Cpsy2apr3. The functional Cavendish psy2a promoter (Cpsy2apr1) appeared to have activity similar to the Asupina psy2a promoter. The activities of the Asupina and Cavendish psy1 promoters were similar to each other, and comparable to those of the functional psy2a promoters. Semi-quantitative PCR analysis of Asupina and Cavendish psy1 and psy2a transcripts showed that psy2a levels were high in green fruit and decreased during ripening, reinforcing the hypothesis that fruit pVA levels were largely dependent on levels of psy2a expression. Additionally, semi-quantitative PCR using intron-spanning primers indicated that high levels of unprocessed psy2a and psy2b mRNA were present in the ripe fruit of Cavendish but not in Asupina. This raised the possibility that differences in intron processing may influence pVA accumulation in Asupina and Cavendish. In this study the role of PSY in banana pVA accumulation was analysed at a number of different levels. Both mRNA accumulation and promoter activity of psy genes studied were very similar between Asupina and Cavendish. However, in several experiments there was evidence of cryptic or alternate splicing that differed in Cavendish compared to Asupina, although these differences were not conclusively linked to the differences in fruit pVA accumulation between Asupina and Cavendish. Therefore, other carotenoid biosynthetic genes or regulatory mechanisms may be involved in determining pVA levels in these cultivars. This study has contributed to an increased understanding of the role of PSY in the production of pVA carotenoids in banana fruit, corroborating the importance of this enzyme in regulating carotenoid production. Ultimately, this work may serve to inform future research into pVA accumulation in important crop varieties such as the EAHB and the discovery of avenues to improve such crops through genetic modification.

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Carotenoids occur in all photosynthetic organisms where they protect photosystems from auto-oxidation, participate in photosynthetic energy-transfer and are secondary metabolites. Of the more than 600 known plant carotenoids, few can be converted into vitamin A by humans and so these pro-vitamin A carotenoids (pVAC) are important in human nutrition. Phytoene synthase (PSY) is a key enzyme in the biosynthetic pathway of pVACs and plays a central role in regulating pVAC accumulation in the edible portion of crop plants. Bananas are a major commercial crop and serve as a staple crop for more than 30 million people. There is natural variation in fruit pVAC content across different banana cultivars, but this is not well understood. Therefore, we isolated PSY genes from banana cultivars with relatively high (cv. Asupina) and low (cv. Cavendish) pVAC content. We provide evidence that PSY in banana is encoded by two paralogs (PSY1 and PSY2), each with a similar gene structure to homologous genes in other monocots. Further, we demonstrate that PSY2 is more highly expressed in fruit pulp compared to leaf. Functional analysis of PSY1 and PSY2 in rice callus and E. coli demonstrate that both genes encode functional enzymes, and that Asupina PSYs have approximately twice the enzymatic activity of the corresponding Cavendish PSYs. These results suggest that differences in PSY enzyme activity contribute significantly to the differences in Asupina and Cavendish fruit pVAC content. Importantly, Asupina PSY genes could potentially be used to generate new cisgenic or intragenic banana cultivars with enhanced pVAC content.

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Nitric oxide is known to be an important inflammatory mediator, and is implicated in the pathophysiology of a range of inflammatory disorders. The aim of this study was to determine the localization and distribution of endothelial NOS (NOS-II) in human gingival tissue, and to ascertain if human gingival fibroblasts express NOS-II when stimulated with interferon gamma (IFN-gamma) and bacterial lipopolysaccharide (LPS). The distribution of NOS-II in inflamed and non-inflamed specimens of human gingivae was studied using a monoclonal antibody against nitric oxide synthase II. Cultures of fibroblasts derived from healthy human gingivae were used for the cell culture experiments. The results from immunohistochemical staining of the tissues indicated an upregulation of NOS-II expression in inflamed compared to non-inflamed gingival tissue. Fibroblasts and inflammatory cells within the inflamed connective tissue were positively stained for NOS-II. In addition, basal keratinocytes also stained strongly for NOS-II, in both healthy and inflamed tissue sections. When cultured human gingival fibroblasts were stimulated by INF-gamma and Porphyromonas gingivalis LPS, NOS-II was more strongly expressed than when the cells were exposed to LPS or IFN-gamma alone. These data suggest that, as for other inflammatory diseases, NO plays a role in the pathophysiology of periodontitis.

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Multiple Sclerosis (MS) is a chronic neurological disease characterized by demyelination associated with infiltrating white blood cells in the central nervous system (CNS). Nitric oxide synthases (NOS) are a family of enzymes that control the production of nitric oxide. It is possible that neuronal NOS could be involved in MS pathophysiology and hence the nNOS gene is a potential candidate for involvement in disease susceptibility. The aim of this study was to determine whether allelic variation at the nNOS gene locus is associated with MS in an Australian cohort. DNA samples obtained from a Caucasian Australian population affected with MS and an unaffected control population, matched for gender, age and ethnicity, were genotyped for a microsatellite polymorphism in the promoter region of the nNOS gene. Allele frequencies were compared using chi-squared based statistical analyses with significance tested by Monte Carlo simulation. Allelic analysis of MS cases and controls produced a chi-squared value of 5.63 with simulated P = 0.96 (OR(max) = 1.41, 95% CI: 0.926-2.15). Similarly, a Mann-Whitney U analysis gave a non-significant P-value of 0.377 for allele distribution. No differences in allele frequencies were observed for gender or clinical course subtype (P > 0.05). Statistical analysis indicated that there is no association of this nNOS variant and MS and hence the gene does not appear to play a genetically significant role in disease susceptibility.

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Multiple sclerosis (MS) is a chronic inflammatory disease of the central nervous system (CNS) affecting most commonly the Caucasian population. Nitric oxide (NO) is a biological signaling and effector molecule and is especially important during inflammation. Inducible nitric oxide synthase (iNOS) is one of the three enzymes responsible for generating NO. It has been reported that there is an excessive production of NO in MS concordant with an increased expression of iNOS in MS lesions. This study investigated the role of a bi-allelic tetranucleotide polymorphism located in the promoter region of the human iNOS (NOS2A) gene in MS susceptibility. A group of MS patients (n = 101) were genotyped and compared to an age- and sex-matched group of healthy controls (n = 101). The MS group was subdivided into three subtypes, namely relapsing-remitting MS (RR-MS), secondary-progressive MS (SP-MS) and primary-progressive MS (PP-MS). Results of a chi-squared analysis and a Fisher's exact test revealed that allele and genotype distributions between cases and controls were not significantly different for the total population (chi(2) = 3.4, P(genotype) = 0.15; chi(2) = 3.4, P(allele) = 0.082) and for each subtype of MS (P > 0.05). This suggests that there is no direct association of this iNOS gene variant with MS susceptibility.