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水稻粉质皱缩胚乳突变体fse4的表型分析与基因克隆 被引量:4
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作者 杜溢墨 潘天 +6 位作者 田云录 刘世家 刘喜 江玲 张文伟 王益华 万建民 《中国水稻科学》 CAS CSCD 北大核心 2019年第6期499-512,共14页
【目的】水稻种子主要以淀粉形式储藏能量。淀粉合成需要多种酶类和调控因子参与,机制较为复杂。本研究利用水稻胚乳发育缺陷突变体,克隆和鉴定新的调控淀粉合成相关基因,旨在为研究淀粉合成及其调控提供理论依据。【方法】从化学诱变... 【目的】水稻种子主要以淀粉形式储藏能量。淀粉合成需要多种酶类和调控因子参与,机制较为复杂。本研究利用水稻胚乳发育缺陷突变体,克隆和鉴定新的调控淀粉合成相关基因,旨在为研究淀粉合成及其调控提供理论依据。【方法】从化学诱变剂甲基亚硝基脲(1-methyl-1-nitroso-urea, MNU)处理的宁粳3号(Ningjing 3, WT)突变体库中筛选到一个能稳定遗传的胚乳粉质皱缩突变体,命名为fse4 (floury and shrunken 4)。与籼稻品种Dular杂交获得F1种子(F2),通过图位克隆的策略确定FSE4候选基因。利用杂合植株(FSE4fse4)分离出的粉质种子,观察形态学特征,分析其理化性质。使用扫描电镜和半薄切片技术观察胚乳结构。使用q RT-PCR和免疫印迹分析淀粉合成相关基因表达模式和淀粉合成相关酶类的蛋白积累量。利用全自动氨基酸分析仪测定成熟胚乳各氨基酸含量。【结果】突变体fse4籽粒宽度、厚度以及千粒重显著下降,同时胚乳中总淀粉、总蛋白、直链淀粉含量亦显著下降,而脂肪含量显著上升;淀粉黏度、崩解值和消减值显著低于野生型。突变体fse4中多为单粒型淀粉颗粒,且排列分散。FSE4定位于第5染色体长臂约252kb的区间内,测序发现编码Δ1-吡咯啉-5-羧酸合成酶基因(Delta 1-pyrroline-5-carboxylate synthetase, P5CS)第1外显子上发生单碱基替换,导致一保守的氨基酸发生变异。突变体fse4中大部分淀粉合成相关基因表达量下调,多种淀粉合成相关蛋白积累量减少。突变体fse4米粉中多种氨基酸含量发生显著变化,游离氨基酸含量是其野生型的3.6倍。此外,外源喷施脯氨酸能部分恢复突变体fse4种子萌发缺陷表型。【结论】FSE4编码脯氨酸合成关键限速酶P5CS,该基因对胚乳中氨基酸的合成及代谢起重要的调控作用,并影响淀粉的合成与积累。 展开更多
关键词 粉质胚乳 淀粉合成 基因克隆 Δ1-吡咯啉-5-羧酸合成酶 氨基酸合成与代谢
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Development of Alfalfa (Medicago sativa L.) Regeneration System and Agrobacterium-Mediated Genetic Transformation 被引量:10
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作者 ZHANG He HUANG Qi-man SU Jin 《Agricultural Sciences in China》 CAS CSCD 2010年第2期170-178,共9页
The regeneration ability of four alfalfa (Medicago sativa L.) cultivars, Xinjiang Daye, Longdong, Gannong 1 and Gannong 3, was studied, and the effects of various cultivars, explant sources and medium recipes on reg... The regeneration ability of four alfalfa (Medicago sativa L.) cultivars, Xinjiang Daye, Longdong, Gannong 1 and Gannong 3, was studied, and the effects of various cultivars, explant sources and medium recipes on regeneration were compared. The better callus forming frequency obtained from hypocotyls of Xinjiang Daye is 88.5% and regeneration frequency is 9.8% in our initial experiments. To further optimize regeneration system for genetic transformation, we therefore changed concentrations of plant growth regulators and supplemented with glutamine into callus-induction and shoot-regeneration media. Callus forming frequency and shoot differentiation frequency were increased to 100%. The time taken to generate transgenic plants (16 weeks) was shorter than that for previouse procedure (25 weeks) and regeneration frequency was promoted to 15.1%. The results show that addition of glutamine is particularly important for shortening period of regeneration and promoting regeneration frequency. For study of genetic transformation of alfalfa, Agrobacterium tumefaciens-mediated transformation of Xinjiang Daye was developed based on this optimized regeneration system. The plant expression vector carrying two glutamine synthetases (GS 1 and GS2) and △1-pyrroline-5-carboxylate synthetase (P5CS) gene was used for alfalfa in vitro transformation. Six transgenic alfalfa plantlets with resistance to PPT were obtained. The introduction of foreign genes into plants was assessed in the transformants by PCR analysis and Southern hybridizations. 展开更多
关键词 alfalf glutamine synthetases △1-pyrroline-5-carboxylate synthetase Agrobacterium tumefaciens-mediated transformation transgenic alfalfa
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Drought-induced responses of organic osmolytes and proline metabolism during pre-flowering stage in leaves of peanut (Arachis hypogaea L.) 被引量:4
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作者 ZHANG Ming WANG Li-feng +2 位作者 ZHANG Kun LIU Feng-zhen WAN Yong-shan 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2017年第10期2197-2205,共9页
Peanut (Arachis hypogaea L.), an improtant oil crop, usually encounters drought stress in the process of growth and development, especially at pre-flowering stage. In order to gain insight into the drought tolerance... Peanut (Arachis hypogaea L.), an improtant oil crop, usually encounters drought stress in the process of growth and development, especially at pre-flowering stage. In order to gain insight into the drought tolerance potentials based on osmolyte accumulation and metabolism of proline aspects of peanut, pot experiments were conducted with a split-plot design in Tai'an, Shangdong Province, China in 2013 and 2014. Pre-flowering drought (PFD) stress and optinum irrigation (control, CK) were served as the main plots and the two peanut cultivars Shanhua 11 and Hua 17 served as sub-plots. Shanhua 11 was drought-tolerant cultivar and Hua 17 was drought-sensitive. The content of soluble sugars, soluble protein, free proline and other free amino acids, the activities of enzymes involved in proline metabolism, and malondialdehyde (MDA) content and ion leakage were all investigated in the two cultivars at pre-flowering stage. Results showed that PFD stress significantly increased the levels of soluble protein, free proline and free amino acid, and increased Al-pyrroline-5-car- boxylate synthetase (P-5-CS, EC 2.7.2.11) activity in the leaves of drought-tolerant and drought-sensitive cultivars. The activity of proline dehydrogenase (proDH) (EC 1.5.99.8) decreased under PFD stress in both cultivars. The leaves of the tolerant cultivar maintained higher increments of osmolyte levels, lower increments of MDA content and ion leakage, as well as a higher increased proportion of P-5-CS activity and higher inhibited proportion of proDH activity under water stress compared with the drought-sensitive cultivar. The study suggests that proline accumulation in peanut leaves under PFD can be explained by the higher enhanced activities of P-5-CS and higher inhibition of proDH. The results will provide useful information for genetic improvement of peanut under drought tolerance. 展开更多
关键词 drought stress peanut (Arachis hypogaea L.) △1-pyrroline-5-carboxylate synthetase (P-5-CS) 5-ornithinetransaminase (OAT) proline dehydrogenase (proDH)
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Arbuscular mycorrhizal fungi and endophytic fungi differentially modulate polyamines or proline of peach in response to soil flooding
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作者 Shengmin LIANG Yingning ZOU +1 位作者 Bo SHU Qiangsheng WU 《Pedosphere》 SCIE CAS CSCD 2024年第2期460-472,共13页
Symbiotic fungi are involved in plant flooding tolerance,while the underlying mechanism is not yet known.Since polyamines(PAs)and proline are also associated with stress tolerance,it is hypothesized that the enhanceme... Symbiotic fungi are involved in plant flooding tolerance,while the underlying mechanism is not yet known.Since polyamines(PAs)and proline are also associated with stress tolerance,it is hypothesized that the enhancement of stress resistance by symbiotic fungi is associated with changes in PAs and/or proline.The aim of this study was to analyze the effect of inoculation with Funneliformis mosseae and Serendipita indica on plant growth,PAs,and proline and the metabolisms in peach(Prunus persica)under flooding.Two-week flooding did not affect root colonization frequence of F.mosseae,while it promoted root colonization frequence of S.indica.Under flooding,plants inoculated with F.mosseae and S.indica maintained relatively higher growth rates than uninoculated plants.Funneliformis mosseae promoted root ornithine(Orn)contentration and arginine(Arg)and Orn decarboxylase activities under flooding,which promoted putrescine(Put),cadaverine(Cad),and spermidine(Spd)contentrations.Conversely,S.indica decreased contentrations of Arg,Orn,and agmatine and Arg decarboxylase activities,thus decreasing PA contentrations under flooding.Polyamines were negatively correlated with the expression of PA uptake transporter genes,PpPUT1 and PpPUT2,in peach.Polyamine transporter genes of F.mosseae(FmTPO)and S.indica(SiTPO)were regulated by flooding,of which FmTPO1 was positively correlated with Put,Cad,and Spd,along with positive correlations of Spd with SiTPO1,SiTPO2,and SiTPO4.Under flooding,F.mosseae decreased proline concentration,while S.indica increased proline concentration and correlated with expression of a△^(1)-pyrroline-5-carboxylate synthetase gene,PpP5CS2.It was thus concluded that F.mosseae modulated polyamine accumulation,while S.indica induced proline accumulation to tolerate flooding. 展开更多
关键词 △^(1)-pyrroline-5-carboxylate synthetase flooding tolerance Funneliformis mosseae ornithine aminotransferase root colonization Serendipita indica SPERMIDINE transporter
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