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为了探讨虎耳草总酚(TP)与抑制五步蛇毒中磷脂酶A2(PLA2)之间的关系,本研究通过单因素试验及Box-Behnken试验对虎耳草TP的提取条件与抑制五步蛇毒中PLA2活性进行优化,考察各试验因素对超声辅助提取虎耳草TP得率及其对五步蛇毒PLA2活性抑制率(PIR)的作用,并对虎耳草TP含量与PIR的相关性进行分析。结果表明,响应面法提取虎耳草TP和PIR的最佳工艺条件为:粒径为60目,料液比为1∶50,超声功率为250 W,超声时间为1.8 h。此优化工艺条件下虎耳草TP得率为(8.69±0.46) mg·g-1,PIR为(40.91±0.21)%;相关性分析结果显示虎耳草TP含量与PIR具有极显著正相关(P<0.01),说明TP可能为虎耳草抑制五步蛇毒中PLA2活性的物质基础。  相似文献   
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【背景】北京欧文氏菌(Erwinia beijingensis)引起的刺芹侧耳细菌性软腐病(bacterial soft rot)给企业带来了严重的经济损失。wbnH2糖基转移酶基因在北京欧文氏菌中的生物学功能尚不明确。【目的】构建wbnH2基因的缺失株Δ-wbnH2和回补株C-wbnH2,探究wbnH2基因对北京欧文氏菌致病性的影响。【方法】采用同源重组方法构建北京欧文氏菌LMG 27579TwbnH2基因缺失突变株Δ-wbnH2,并对基因缺失菌株的致病性、生长速度、运动能力、生物膜形成能力、黏附能力等生物学特性与野生型菌株进行比较分析;采用广宿主质粒pBBR1MCS2构建回补株C-wbnH2,排除了极性效应引起的突变株表型变化。【结果】与野生型菌株相比,基因缺失株Δ-wbnH2的生长速度无明显差别。但是wbnH2基因的缺失导致多糖分泌、生物膜形成能力、黏附能力、致病能力明显下降。【结论】wbnH2基因影响北京欧文氏菌多糖分泌、生物膜的形成能力、黏附能力及致病力,表明该基因在北京欧文氏菌致病过程中起重要作用,本研究为软腐病的防控提供了理论基础。  相似文献   
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Dong L  Zhang X  Liu D  Fan H  Sun J  Zhang Z  Qin H  Li B  Hao S  Li Z  Wang D  Zhang A  Ling HQ 《PloS one》2010,5(10):e13548
The bread-making quality of wheat is strongly influenced by multiple low molecular weight glutenin subunit (LMW-GS) proteins expressed in the seeds. However, the organization, recombination and expression of LMW-GS genes and their functional mechanism in bread-making are not well understood. Here we report a systematic molecular analysis of LMW-GS genes located at the orthologous Glu-3 loci (Glu-A3, B3 and D3) of bread wheat using complementary approaches (genome wide characterization of gene members, expression profiling, proteomic analysis). Fourteen unique LMW-GS genes were identified for Xiaoyan 54 (with superior bread-making quality). Molecular mapping and recombination analyses revealed that the three Glu-3 loci of Xiaoyan 54 harbored dissimilar numbers of LMW-GS genes and covered different genetic distances. The number of expressed LMW-GS in the seeds was higher in Xiaoyan 54 than in Jing 411 (with relatively poor bread-making quality). This correlated with the finding of higher numbers of active LMW-GS genes at the A3 and D3 loci in Xiaoyan 54. Association analysis using recombinant inbred lines suggested that positive interactions, conferred by genetic combinations of the Glu-3 locus alleles with more numerous active LMW-GS genes, were generally important for the recombinant progenies to attain high Zeleny sedimentation value (ZSV), an important indicator of bread-making quality. A higher number of active LMW-GS genes tended to lead to a more elevated ZSV, although this tendency was influenced by genetic background. This work provides substantial new insights into the genomic organization and expression of LMW-GS genes, and molecular genetic evidence suggesting that these genes contribute quantitatively to bread-making quality in hexaploid wheat. Our analysis also indicates that selection for high numbers of active LMW-GS genes can be used for improvement of bread-making quality in wheat breeding.  相似文献   
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During plant embryogenesis, a simple body plan consisting of shoot and root meristem that are connected by the embryo axis is set up by the first few rounds of cell divisions after fertilization. Postembryonically, the elaborate architecture of plants is created from stem cell populations of both meristems. Here, we address how the main axis (apical-basal) of the plant embryo is established from the single-celled zygote and the role that the asymmetric division of the zygote plays in this process. We will mainly draw on examples from the model plant Arabidopsis, for which several key regulators have been identified during the last years.  相似文献   
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Maize(Zea mays L.) root morphology exhibits a high degree of phenotypic plasticity to nitrogen(N) de ficiency,but the underlying genetic architecture remains to be investigated Using an advanced BC_4F_3 population,we investigated the root growth plasticity under two contrasted N levels and identi fied the quantitative trait loci(QTLs) with QTL-environment(Q×E)interaction effects. Principal components analysis(PCA) on changes of root traits to N de ficiency(D LN-HN) showed that root length and biomass contributed for 45.8% in the same magnitude and direction on the first PC,while root traits scattered highly on PC_2 and PC_3. Hierarchical cluster analysis on traits for D LN-HN further assigned the BC_4F_3 lines into six groups,in which the special phenotypic responses to N de ficiency was presented These results revealed the complicated root plasticity of maize in response to N de ficiency that can be caused by genotype environment(G×E) interactions. Furthermore,QTL mapping using a multi-environment analysis identi fied 35 QTLs for root traits. Nine of these QTLs exhibited signi ficant Q×E interaction effects. Taken together,our findings contribute to understanding the phenotypic and genotypic pattern of root plasticity to N de ficiency,which will be useful for developing maize tolerance cultivars to N de ficiency.  相似文献   
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