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1.
周璇  高鹏华  鄢波 《广西植物》2023,43(2):347-356
晚期胚胎发育丰富蛋白(late embryogenesis abundant,LEA),广泛存在于生物体内,与植物抗逆性密切相关,可在干旱胁迫下保护植物细胞,减少植物损伤。垫状卷柏(Selaginella pulvinata)是一种在干旱胁迫下生存能力极强的蕨类植物,具有很强的恢复能力。为探究垫状卷柏SpLEA1基因在耐旱植物中的分子机制与表达特征,该研究以高耐旱性植物垫状卷柏为实验材料,基于转录组测序结果,采用RT-PCR技术获得SpLEA1基因cDNA序列,采用HiTail-PCR技术获得启动子序列,利用生物信息学对序列进行了分析,并采用qRT-PCR技术分析了SpLEA1基因在干旱胁迫下的表达模式。结果表明:(1)垫状卷柏SpLEA1全长为476 bp,开放阅读框(ORF)为279 bp,共编码92个氨基酸,通过在线工具预测到蛋白分子量为9 491.46 Da, 等电点为5.45,蛋白结构预测分析表明该蛋白为亲水性蛋白,含有10个磷酸化位点,二级结构以α-螺旋和无规则卷曲为主。(2)预测到SpLEA1蛋白的保守结构域为Lea-5,来源于LEA1家族。基于系统发生树和遗传距离矩阵,发现垫状卷柏SpLEA1与来自鹰嘴豆(Cicer arietinum )和红车轴草(Trifolium pratense)的Lea-5蛋白同源性较高。(3)对启动子序列进行顺式作用元件的预测分析发现SpLEA1基因启动子含有5类激素响应元件和与干旱胁迫响应有关的功能元件。(4)在自然干旱处理下SpLEA1基因表达上调,并在12 h时达到峰值,在24 h干旱后进行复水处理,表达量显著下调。综上所述,SpLEA1基因在垫状卷柏中很可能参与了干旱胁迫响应机制的相关调控。该结果为进一步研究垫状卷柏SpLEA1基因在干旱胁迫下的功能及其表达调控机制提供了参考。  相似文献   

2.
海藻糖-6-磷酸合成酶(trehalose-6-phosphate synthase, TPS)是昆虫海藻糖合成途径中的关键酶之一。本研究通过对葱蝇Delia antiqua海藻糖-6-磷酸合成酶基因的克隆、 序列分析及滞育相关表达的分析, 旨在证明该基因在能源合成以及抵御高温和低温环境方面发挥重要作用, 为进一步弄清葱蝇滞育分子机制提供理论依据。根据葱蝇抑制消减杂交文库中的EST序列信息, 设计特异性引物, 并通过RACE技术克隆了葱蝇海藻糖-6-磷酸合成酶基因全长cDNA, 命名为DaTPS1 (GenBank登录号: JX681124), 其全长为2 904 bp, 开放阅读框2 448 bp, 编码815个氨基酸, 推测其相对分子质量为91.2 kD, 等电点为5.96。生物信息学分析表明, 该基因编码的氨基酸序列具有两个保守结构域, 与其他物种TPS具有较高的同源性, 其中和黑腹果蝇Drosophila melanogaster亲缘关系最近, 氨基酸序列一致性为92.1%; 其蛋白质三维结构有15条大的α螺旋和11股反向平行的β链折叠。RT-PCR分析表明, DaTPS1在葱蝇非滞育、 夏滞育和冬滞育期蛹中都有表达, 但是非滞育期各时期表达量基本没有变化, 而在夏滞育和冬滞育蛹的滞育前期表达量较高, 滞育保持期表达量较低, 滞育期后期表达量又有所升高。推断在葱蝇蛹夏滞育和冬滞育期前期, TPS1开始催化合成较多的海藻糖以提高滞育期抵御不良环境的能力, 滞育保持期蛹的新陈代谢降低, 所需能量较少, 所以TPS1处于低水平表达状态, 而滞育期结束后, 蛹生长发育逐渐恢复, 所需能量有所增加, TPS1的表达量再次升高。本研究对揭示昆虫TPS在能量代谢通路中的作用及昆虫滞育的分子机理具有一定的科学意义。  相似文献   

3.
海藻糖广泛存在于细菌、真菌、昆虫、无脊椎动物和植物等大量生物中。它不仅可以作为昆虫的能量来源,而且在抗逆等方面起着重要作用。海藻糖合成酶(Trehalose-6-phosphate synthase,TPS)是海藻糖合成过程中的一个关键酶。目前细菌、真菌和植物中都已经被发现和克隆,但其不存在于哺乳动物中。海藻糖是昆虫的"血糖",主要通过海藻糖合成酶和海藻糖-6-磷酸脂酶(Trehalose-6-phosphate phosphatase,TPP)在脂肪体中催化合成。TPS基因所编码的蛋白序列一般都包含两个保守的结构域:TPS和TPP,分别对应着酵母中的Ots A和Ots B基因。昆虫海藻糖合成酶的基因表达和酶活性的变化与昆虫的多项生理过程有着密切的关系,海藻糖合成酶有可能成为控制害虫的新靶标。  相似文献   

4.
通过气相色谱法(GC)快速分析8种真菌的脂肪酸成分,发现匍枝根霉(Rhizopus stolonifer)具有较高的γ-亚麻酸含量,利用RT-PCR和RACE方法获得了全长为1475bp的匍枝根霉△6-脂肪酸脱氢酶基因的cDNA序列,其中开放阅读框为1380bp,编码459个氨基酸。生物信息学分析所克隆的基因具有△6-脂肪酸脱氢酶的典型结构:N端具有细胞色素b5结构、具有3个保守的组氨酸区序列和跨膜结构;把该基因的开放阅读框序列连接到表达载体pYES2.0上,构建重组表达载体pYRnD6D,并将其转入缺陷型酿酒酵母INVScl中进行表达。GC分析表明,该序列在酵母中获得了表达,表达产物表现出△6-脂肪酸脱氢酶的酶学活性,能将底物亚油酸转化为γ-亚麻酸。新生成的γ-亚麻酸占酵母细胞总脂肪酸的12.25%。  相似文献   

5.
甘油-3-磷酸酰基转移酶是植物生物合成储存油脂过程中的关键酶,对油料作物种子含油量具有重要的限制作用。本研究以植物甘油-3-磷酸酰基转移酶同源基因的保守区域序列为基础,设计简并引物,结合RACE技术,从能源植物小桐子种子中克隆获得JcGPAT基因的cDNA全长序列(GenBank登录号HQ395225)。JcGPAT cDNA核苷酸序列长度为1672bp,开放阅读框为1125bp,编码375个氨基酸。该基因具有明显的GPAT基因结构域,其编码的氨基酸序列与油桐、蓖麻等植物具有很高的同源性。RT-PCR表达分析表明,该基因在小桐子发育的种子、叶、根尖等多个组织表达。  相似文献   

6.
运用SMART RACE RT-PCR技术与DNA步移技术,首次从球孢白僵菌中克隆出完整的海藻糖-6-磷酸磷酸酯酶TPS2的基因编码区序列及上游序列。该基因cDNA全长3219 bp,其中开放阅读框(ORF)2619 bp,编码872个氨基酸。成熟蛋白理论分子量为97.8 kD,理论等电点为6.32。编码框结构基因的全长为2821 bp,有两个长度分别为140 bp和62 bp的内含子。分析表明,上游序列中含有TATA-box、CAAT-box和GC-box,并且也存在GATA元件等启动子顺式调控元件。本文结果将为进一步研究海藻糖在虫生真菌中的生理合成以及抗逆调控机制奠定坚实的基础。  相似文献   

7.
通过对柿ζ-胡萝卜素脱氢酶(-ζCarotene desaturase,ZDS)基因的克隆及序列分析,旨在为改良柿果实品质奠定基础。根据GenBank中其他植物ZDS基因的保守序列设计了两条PCR扩增引物,以柿果实中所提取的RNA为模板,采用RACE技术扩增出一条约为500bp的条带。经过序列分析,其长578bp,不含内含子,具有部分开放阅读框(177bp)、终止密码子(TGA)和poly(A)尾巴(11bp),共编码58个氨基酸。该序列及其所编码的氨基酸与其他植物ζ-胡萝卜素脱氢酶基因均具有较高的同源性。该基因已提交GenBank数据库,登录号为GU075728。  相似文献   

8.
利用日本DDBJ数据库电子克隆了条斑紫菜的6-磷酸海藻糖合成酶基因(pytps),得到全长cDNA序列2727bp;经过ORF finder分析,获得了相应蛋白质的全长序列908Aa,分子量约为101.8kD。将条斑紫菜的6-磷酸海藻糖合成酶与多种模式生物大肠杆菌、裂殖酵母、拟南芥、水稻、秀丽隐杆线虫、黑腹果蝇的同源蛋白进行序列比对得到了聚类分析图表明它们之间具有一定的进化相关性功能结构域预测分析显示PyTPS拥有两个功能结构域Glyco.transf 20 domain和Trehalose.PPase domain,这对于进一步分析蛋白质结构与功能的关系将有很大的启示。  相似文献   

9.
根据真菌Δ6-脂肪酸脱氢酶基因保守的组氨酸Ⅱ区和Ⅲ区附近保守序列设计兼并引物进行RT-PCR,得到雅致枝霉(Thamnidium elegans)As3.2806Δ6-脂肪酸脱氢酶基因459bp部分cDNA序列,然后通过快速扩增cDNA末端技术(RACE)向两端延伸得到1504bp的Δ6-脂肪酸脱氢酶基因全长cDNA序列。序列分析表明有一个1377bp、编码459个氨基酸的开放阅读框TED6。推测的氨基酸序列与已知其他真菌的Δ6-脂肪酸脱氢酶基因的氨基酸序列比对,具有3个组氨酸保守区、2个疏水区及N末端细胞色素b5融合区。将此编码区序列亚克隆到酿酒酵母缺陷型菌株INVSc1的表达载体pYES2.0中,构建表达载体pYTED6,并在酿酒酵母INVSc1中异源表达。通过气相色谱(GC)和气相色谱/质谱(GC-MS)分析表明,该序列在酿酒酵母中获得表达,产生γ-亚麻酸(GLA)的含量占酵母总脂肪酸的7.5%。证明此序列编码的蛋白能将外加的亚油酸转化为γ-亚麻酸,是一个新的有功能的Δ6-脂肪酸脱氢酶基因(GenBank,AY941161)。  相似文献   

10.
运用RT-PCR和RACE技术,以粘虫(Mythimna separata(Walker))cDNA为模板,对甘油醛-3-磷酸脱氢酶(glyceraldehyde-3-phosphate dehydrogenase,GAPDH)基因进行克隆获得全长cDNA序列,并利用生物信息学方法,对GAPDH全长cDNA序列及推测得到的GAPDH蛋白序列进行分析.结果表明,获得的粘虫GAPDH基因cDNA序列长度为1 317 bp,其中包括80 bp的5′非编码区、238 bp的3′非编码区和999 bp的开放阅读框(Open Reading Frame,ORF),编码一个332个氨基酸蛋白,具有GAPDH蛋白家族的两个功能结构域.该GAPDH蛋白理论相对分子质量为35.498 6 kDa,等电点为7.63,富含6种类型的特定功能位点.该蛋白序列与其他动物GAPDH蛋白序列具有77.4%~92.9%高度同源性.GAPDH基因表达量检测结果显示GAPDH在粘虫6种不同组织间表达量无显著差异(P0.05),表明GAPDH可作为研究粘虫功能基因表达量分析的可靠内参基因.该基因的cDNA序列已经递交GenBank并获得登录号为HM055756.  相似文献   

11.
肌醇 1 磷酸 (I 1 P)合成酶 (EC5 .5 .1 .4,INPS)是肌醇生物合成中的关键酶 ,催化葡萄糖 6 磷酸 (G 6 P)到I 1 P的反应。从该实验室已构建的NaCl40 0mmol/L处理的盐地碱蓬 (Suaedasal sa)cDNA文库中克隆了肌醇 1 磷酸合成酶的全长cDNA (S .salsamyo inositol 1 phosphatesynthase,SsINPS) ,基因注册号为AF43 3 879。SsINPS全长约 1 986bp ,含有开放式阅读框架 1 5 3 0bp ,3′和 5′的非翻译区分别为 1 3 9bp和 3 1 7bp ;推导的氨基酸序列全长 5 1 0个氨基酸残基 ,分子量约为 5 6 .7kD ,pI值为 5 .3 5。BLAST同源性分析表明 ,该cDNA与已报告的冰叶日中花 (Mesembryanthemumcrys tallinum)的INPS基因同源性最高 ,其中 ,核苷酸水平的同源性为 91 % ,氨基酸水平上的同源性为84%。以SsINPS全长cDNA为探针进行的South ern杂交结果表明 ,SsINPS基因在盐地碱蓬基因组中只有一个拷贝 ;Northern结果表明 ,在盐处理(40 0mmol/L的NaCl)下 ,SsINPS在叶中的表达量有显著的增加。从而说明SsINPS在盐胁迫下是上升调节的  相似文献   

12.
Trehalose is a non-reducing disaccharide of glucose that functions as a compatible solute in the stabilization of biological structures under heat and desiccation stress in bacteria, fungi, and some “resurrection plants”. In the plant kingdom, trehalose is biosynthesized by trehalose-6-phosphate synthase (TPS) and trehalose-6-phosphate phosphatase (TPP). Over-expression of exogenous and endogenous genes encoding TPS and TPP is reported to be effective for improving abiotic stress tolerance in tobacco, potato, tomato, rice, and Arabidopsis. On the basis of bioinformatics prediction, we cloned a fragment containing an open reading frame of 2,820 bp from maize, which encodes a protein of 939 amino acids. Phylogenetic analysis showed that this gene belongs to the class I subfamily of the TPS gene family. Analysis of conserved domains revealed the presence of a TPS domain and a TPP domain. Yeast complementation with TPS and TPP mutants demonstrated that this protein has the activity of trehalose-6-phosphate synthase. Semi-quantitative RT-PCR and real-time quantitative PCR indicated that the expression of this gene is upregulated in response to both salt and cold stress.  相似文献   

13.
Abstract A DNA fragment of 550 bp was specifically amplified by PCR with primers based on the N-terminal sequence of the purified 3-hexulose-6-phosphate synthase from Methylomonas aminofaciens 77a and on that of a lysyl endopep(idase-derived peptide. Using this PCR product as a probe, a gene coding for 3-hexulose-6-phosphate synthase in M. aminofaciens 77a chromosomal DNA was cloned in Escherichia coli JM109. Sequencing analysis revealed that the gene encoding 3-hexulose-6-phosphate synthase contained a 624-bp open reading frame, encoding a protein composed of 208 amino acid residues with a calculated relative molecular mass of 21 224.  相似文献   

14.
Sachadyn  Pawel 《Mycopathologia》1998,142(2):67-70
The 3' part of the glucosamine-6-phosphate synthase gene from Histoplasma capsulatum was PCR amplified using degenerate primers designed from the known glucosamine-6-phosphate synthase gene sequences, cloned and sequenced. The computer analysis of the 676 bp sequence revealed the presence of two introns. The identities of the deduced amino acid sequence to the corresponding Saccharomyces cerevisiae and Candida albicans fragment are 65 and 63.8%, respectively. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

15.
Improving stress tolerance and yield in crops are major goals for agriculture. Here, we show a new strategy to increase drought tolerance and yield in legumes by overexpressing trehalose-6-phosphate synthase in the symbiotic bacterium Rhizobium etli. Phaseolus vulgaris (common beans) plants inoculated with R. etli overexpressing trehalose-6-phosphate synthase gene had more nodules with increased nitrogenase activity and higher biomass compared with plants inoculated with wild-type R. etli. In contrast, plants inoculated with an R. etli mutant in trehalose-6-phosphate synthase gene had fewer nodules and less nitrogenase activity and biomass. Three-week-old plants subjected to drought stress fully recovered whereas plants inoculated with a wild-type or mutant strain wilted and died. The yield of bean plants inoculated with R. etli overexpressing trehalose-6-phosphate synthase gene and grown with constant irrigation increased more than 50%. Macroarray analysis of 7,200 expressed sequence tags from nodules of plants inoculated with the strain overexpressing trehalose-6-phosphate synthase gene revealed upregulation of genes involved in stress tolerance and carbon and nitrogen metabolism, suggesting a signaling mechanism for trehalose. Thus, trehalose metabolism in rhizobia is key for signaling plant growth, yield, and adaptation to abiotic stress, and its manipulation has a major agronomical impact on leguminous plants.  相似文献   

16.
17.
The impact of feed processing and in vitro ruminal cultures on the persistence of recombinant and canola-specific endogenous DNA was studied using various canola substrates (whole seed, cracked seed, meal and diet). For both, parental and genetically modified substrates, ribulose-1,5-bisphosphate carboxylase/oxygenase gene was amplifiable up to varying time points. Persistence of recombinant DNA, encoding 5-enolpyruvylshikimate-3-phosphate synthase (1,363 bp) was detected up to 8 h for meal and 4 h for mixed diet. Upon processing of canola, DNA large enough to contain intact plant genes remains. In an in vitro environment, plant DNA was rapidly degraded upon its release into rumen fluid.  相似文献   

18.
19.
Trehalose-6-phosphate (T6P), an intermediate in the trehalose biosynthesis pathway, is emerging as an important regulator of plant metabolism and development. T6P levels are potentially modulated by a group of trehalose-6-phosphate synthase (TPS) and trehalose-6-phosphate phosphatase (TPP) homologues. In this study, we have isolated 11 TPS genes encoding proteins with both TPS and TPP domains, from rice. Functional complement assays performed in yeast tps1 and tps2 mutants, revealed that only OsTPS1 encodes an active TPS enzyme and no OsTPS protein possesses TPP activity. By using a yeast two-hybrid analysis, a complicated interaction network occurred among OsTPS proteins, and the TPS domain might be essential for this interaction to occur. The interaction between OsTPS1 and OsTPS8 in vivo was confirmed by bimolecular fluorescence complementation and coimmunoprecipitation assays. Furthermore, our gel filtration assay showed that there may exist two forms of OsTPS1 (OsTPS1a and OsTPS1b) with different elution profiles in rice. OsTPS1b was particularly cofractionated with OsTPS5 and OsTPS8 in the 360 kDa complex, while OsTPS1a was predominantly incorporated into the complexes larger than 360 kDa. Collectively, these results suggest that OsTPS family members may form trehalose-6-phosphate synthase complexes and therefore potentially modify T6P levels to regulate plant development.  相似文献   

20.
The activation of glycogen synthase by insulin is in many instances stimulated by the presence of extracellular glucose. Previous observations in cell extracts, glycogen pellets and other crude systems suggest that this stimulation may be due to an increase in glucose 6-phosphate, which activates the dephosphorylation of glycogen synthase by protein phosphatases. Using purified rabbit muscle glycogen synthase D and protein phosphatases 1 and 2A, the types responsible for the activation of muscle synthase, it was found that glucose 6-phosphate, at low, physiological concentrations, stimulated the dephosphorylation of glycogen synthase. Both types of phosphatase were stimulated to the same extent when acting on glycogen synthase. The dephosphorylation of other protein substrates of the phosphatases was either not affected or inhibited by glucose 6-phosphate. It appears that the stimulatory effect of glucose 6-phosphate at physiological concentrations is apparently specific for glycogen synthase, and most likely due to an allosteric configuration change of this enzyme which facilitates its dephosphorylation. In addition, the effects of other reported modulators of glycogen synthase dephosphorylation, AMP, ATP and Mg2+, were studied in this 'in vitro' system.  相似文献   

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