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91.
Vijay Alla Bhavani S. Kowtharapu David Engelmann Stephan Emmrich Ulf Schmitz Marc Steder Brigitte M. Pützer 《Cell cycle (Georgetown, Tex.)》2012,11(16):3067-3078
Resistance to anti-neoplastic agents is the major cause of therapy failure, leading to disease recurrence and metastasis. E2F1 is a strong inducer of apoptosis in response to DNA damage through its capacity to activate p53/p73 death pathways. Recent evidence, however, showed that E2F1, which is aberrantly expressed in advanced malignant melanomas together with antagonistic p73 family members, drives cancer progression. Investigating mechanisms responsible for dysregulated E2F1 losing its apoptotic function, we searched for genomic signatures in primary and late clinical tumor stages to allow the prediction of downstream effectors associated with apoptosis resistance and survival of aggressive melanoma cells. We identified miR-205 as specific target of p73 and found that upon genotoxic stress, its expression is sufficiently abrogated by endogenous DNp73. Significantly, metastatic cells can be rescued from drug resistance by selective knockdown of DNp73 or overexpression of miR-205 in p73-depleted cells, leading to increased apoptosis and the reduction of tumor growth in vivo. Our data delineate an autoregulatory circuit, involving high levels of E2F1 and DNp73 to downregulate miR-205, which, in turn, controls E2F1 accumulation. Finally, drug resistance associated to this genetic signature is mediated by removing the inhibitory effect of miR-205 on the expression of Bcl-2 and the ATP-binding cassette transporters A2 (ABCA2) and A5 (ABCA5) related to multi-drug resistance and malignant progression. These results define the E2F1-p73/DNp73-miR-205 axis as a crucial mechanism for chemoresistance and, thus, as a target for metastasis prevention. 相似文献
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93.
External sucrose, supplied by the endosperm in vivo, is the physiological source of sucrose for Ricinus communis L. seedlings. It is taken up by the cotyledons and exported via the sieve tubes to the growing hypocotyl and root. Two parallel
pathways of external sucrose to the sieve tubes, directly via the apoplasm and indirectly after transit through the mesophyll,
have already been established (G. Orlich and E. Komor, 1992). In this study, we analysed whether a symplasmic flow of sucrose
contributes to phloem loading. Uptake of external sucrose into the mesophyll and into the sieve tubes, and export of total
sucrose were measured with intact and exuding seedlings in the presence of p-chloromercuribenzenesulfonic acid (PCMBS). Sucrose uptake into the mesophyll and into the sieve tubes was inhibited by 80–90%.
Consequently, export of total sucrose slowed down. However, after the addition of PCMBS, sucrose was transiently exported
in such a high amount that could not be accounted for by the residual uptake activity nor by the amount of sucrose confined
to the sieve element-companion cell complex (seccc). From the results, we conclude that most of the sucrose exported transiently
had moved to the sieve tubes from a symplasmic domain larger than the seccc, comprising at least all the cells of the bundle
including the bundle sheath. We suggest that the symplasmic flow of sucrose observed is a mass flow driven by a turgor pressure.
As a structural prerequisite for a symplasmic flow, plasmodesmata interconnect all the cells from the bundle sheath to the
sieve tubes and also occur between the bundle sheath and the mesophyll. The phloem loading pathway of Ricinus cotyledons can thus be classified as a combination of three different routes.
Received: 17 October 1997 / Accepted: 9 March 1998 相似文献
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95.
水杨酸和茉莉酸甲酯对丹参幼苗叶片显微结构、光合及非结构糖积累的影响 总被引:1,自引:0,他引:1
研究了水杨酸(SA)和茉莉酸甲酯(MeJA)处理对丹参(Salvia miltiorrhiza Bunge)幼苗叶片显微结构、叶片光合能力及幼苗中非结构糖积累的影响.结果显示:SA处理增加了丹参幼苗叶片气孔密度;叶肉细胞排列紧密、体积减小,叶肉细胞内叶绿体数目减少,但叶绿体体积增大,叶绿体基粒片层结构的数目增加;叶片中叶绿素a、b含量、叶气孔导度、蒸腾速率以及净光合速率均增加;同时,幼苗根中和叶片中酸性转化酶活性降低,幼苗地上部分蔗糖含量及可溶性糖总量显著高于对照.MeJA处理减少了叶片气孔密度,气孔发育畸形;叶肉细胞间隙增大,栅栏细胞层数减少,叶肉细胞内叶绿体数目减少,叶绿体体积减小,叶绿体基粒片层结构被破坏;叶片中叶绿素a及类胡萝卜素含量、叶片的净光合速率低于对照,叶气孔导度、蒸腾速率增强;同时,幼苗根中及叶中酸性转化酶活性增加,幼苗根中蔗糖含量及可溶性糖总量显著低于对照.可见,SA处理能促进植物叶片显微结构发育,增强叶片光合能力,抑制蔗糖降解并促进蔗糖积累;而MeJA处理则破坏了植物叶片显微结构,降低了叶片光合能力,促进了蔗糖降解并减少蔗糖积累. 相似文献
96.
甘蔗蔗汁品质性状的回归分析及模型 总被引:8,自引:1,他引:8
本文对47份不同甘蔗基因型的蔗汁品质性状进行简单回归和逐步回归分析.结果表明,蔗汁蔗糖分(Suc)与锤度(BX)、温度校正后锤度(BX′)、蔗汁旋光读数(0Z)以及转光度(pol)之间均呈线性回归,简单回归模型均达极显著水平(P<0.01),决定系数(R2)分别为0.9393、0.9199、0.9861及0.9839.通过逐步回归分析和残差分析建立多重线性回归方程为Suc=0.05706 0.21488BX 0.181030Z,方差分析表明多重线性回归模型达极显著水平(P<0.01),决定系数为0.9931.t测验表明,蔗汁蔗糖分的模型预测值与实测值间的差异不显著,相对误差平均为0.49%. 相似文献
97.
Zinc deficiency tolerance in maize is associated with the up‐regulation of Zn transporter genes and antioxidant activities 下载免费PDF全文
M. A. Khatun M. M. Hossain M. A. Bari K. M. Abdullahil M. S. Parvez M. F. Alam A. H. Kabir 《Plant biology (Stuttgart, Germany)》2018,20(4):765-770
- Zinc (Zn) is an essential micronutrient for the growth and development of plants. However, Zn deficiency is a common abiotic stress causing yield loss in crop plants. This study elucidates the mechanisms of Zn deficiency tolerance in maize through physiological and molecular techniques.
- Maize lines tolerant (PAC) and sensitive (DAC) to Zn deficiency were examined physiologically and by atomic absorption spectrometry (AAS). Proteins, H2O2, SOD, POD, membrane permeability and gene expression (using real‐time PCR) of roots and shoots of both maize lines were assessed.
- Zn deficiency had no significant effect on root parameters compared with control plants in PAC and DAC but showed a substantial reduction in shoot parameters in DAC. AAS showed a significant decrease in Zn concentrations in both roots and shoots of DAC but not PAC under Zn deficiency, implying that Zn deficiency tolerance mechanisms exist in PAC. Consistently, total protein and membrane permeability were significantly reduced in DAC but not PAC in both roots and shoots under Zn deficiency in comparison with Zn‐sufficient plants. Real‐time PCR showed that expression of ZmZIP1, ZmZIP4 and ZmIRT1 transporter genes significantly increased in roots of PAC, but not in DAC due to Zn deficiency compared with controls. The H2O2 concentration dramatically increased in roots of DAC but not PAC. Moreover, tolerant PAC showed a significant increase in POD and SOD activity due to Zn deficiency, suggesting that POD‐ and SOD‐mediated antioxidant defence might provide tolerance, at least in part, under Zn deficiency in PAC.
- This study provides an essential background for improving Zn biofortification of maize.
98.
Uptake of organic nitrogen by plants 总被引:10,自引:0,他引:10
99.
Effect of iron concentration on hydrogen fermentation 总被引:11,自引:0,他引:11
The effect of the iron concentration in the external environment on hydrogen production was studied using sucrose solution and the mixed microorganisms from a soybean-meal silo. The iron concentration ranged from 0 to 4000 mgFeCl2 l−1. The temperature was maintained at 37°C. The maximum specific hydrogen production rate was found to be 24.0 mlg−1 VSSh−1 at 4000 mgFeCl2 l−1. The specific production rate of butyrate increased with increasing iron concentration from 0 to 20 mgFeCl2 l−1, and decreased with increasing iron concentration from 20 to 4000 mgFeCl2 l−1. The maximum specific production rates of ethanol (682 mgg−1 VSSh−1) and butanol (47.0 mgg−1 VSSh−1) were obtained at iron concentrations of 5 and 3 mgFeCl2 l−1, respectively. The maximum hydrogen production yield of 131.9 mlg−1 sucrose was obtained at the iron concentration of 800 mgFeCl2 l−1. The maximum yields of acetate (389.3 mgg−1 sucrose), propionate (37.8 mgg−1 sucrose), and butyrate (196.5 mg g−1 sucros) were obtained at iron concentrations of 3, 200 and 200 mgFeCl2 l−1, respectively. The sucrose degradation efficiencies were close to 1.0 when iron concentrations were between 200 and 800 mgFeCl2 l−1. The maximum biomass production yield was 0.283 gVSSg−1 sucrose at an iron concentration of 3000 mgFeCl2 l−1. 相似文献
100.
1,2-Propanediol and 3-aryloxy/alkyloxy derivatives thereof are bulk commodities produced directly from glycerol. Glycosylation is a promising route for their functional diversification into useful fine chemicals. Regioselective glucosylation of the secondary hydroxyl in different 1,2-propanediols was achieved by a sucrose phosphorylase-catalyzed transfer reaction where sucrose is the substrate and 2-O-α-d-glucopyranosyl products are exclusively obtained. Systematic investigation for optimization of the biocatalytic synthesis included prevention of sucrose hydrolysis, which occurs in the process as a side reaction of the phosphorylase. In addition to ‘nonproductive’ depletion of donor substrate, the hydrolysis also resulted in formation of maltose and kojibiose (up to 45%) due to secondary enzymatic glucosylation of the glucose thus produced. Using 3-ethoxy-1,2-propanediol as the acceptor substrate (1.0 M), the desired transfer product was obtained in about 65% yield when employing a moderate (1.5-fold) excess of sucrose donor. Loss of the glucosyl substrate to ‘glucobiose’ by-products was minimal (<7.5%) under these conditions. The reactivity of other acceptors decreased in the order, 3-methoxy-1,2-propanediol > 1,2-propanediol > 3-allyloxy-1,2-propanediol > 3-(o-methoxyphenoxy)-1,2-propanediol > 3-tert-butoxy-1,2-propanediol. Glucosylated 1,2-propanediols were not detectably hydrolyzed by sucrose phosphorylase so that their synthesis by transglucosylation occurred simply under quasi-equilibrium reaction conditions. 相似文献