23 resultados para Mangifera indica

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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本文以桃(Prunus persica L. cv. Bayuecui.)栽培种‘八月脆’和芒果(Mangifera indica L.)栽培种‘圣心’为材料,研究外源草酸对采后果实的生理生化效应及其作用机理,为果实贮藏保鲜提供新方法。采后桃果实用1、5 mM的草酸溶液浸果10 min,以浸水10 min为对照,然后在常温下贮藏,测定果实在贮藏期间对草酸处理的一些生理生化反应。芒果经采后杀菌剂(post- P)、采后草酸(post-OA)、采前+采后草酸(pre-OA + post-OA)、采前Ca + 采后草酸处理(pre-Ca + post-OA)处理,以采后浸水为对照,然后分别将果实在常温(25 C)、低温(14 C)和控制性气调(3% CO2 + 2% O2 ,14 ± 1 C)下贮藏,测定草酸处理对芒果的成熟进程、病情发展及其相关生理指标的影响。研究结果表明如下: 1.与对照相比,草酸处理的桃果实在贮藏期间果实的电解质渗漏量和呼吸速率降低、果实硬度高、果实的抗氧化酶(超氧化物岐化酶、SOD;过氧化物酶,POD;过氧化氢酶、CAT;抗坏血酸过氧化物酶、APX)和多酚氧化酶(PPO)活性提高、脂氧合酶(LOX)活性降低。同时,在贮藏后期,果实的活性氧自由基(ROS)产量(超氧阴离子、O2.;过氧化氢、H2O2)和丙二醛(MDA)含量降低。草酸的这些生理效应有利于保持膜的完整性和延缓桃果实的成熟;草酸诱导POD、SOD、PPO活性可能有助于提高采后果实的抗病性。 2.外源5、10 mM浓度的草酸(pH值中和或不中和)对芒果炭疽病原菌(Colletotrichum gloeosporioides)孢子萌发和菌丝生长均表现出显著的抑制作用。这种作用不仅与草酸降低培养基(PDA)的pH值相关,而且与草酸独特的化学特性相关。 3.在常温、低温和控制性气调贮藏下,采后草酸、采前 + 采后草酸、采前Ca + 采后草酸处理均能有效减缓芒果果实的软化速率,延缓芒果的成熟进程,降低芒果的病情指数,同时改善芒果成熟时的表皮着色,对果实完全后熟时的可溶性固形物(SSC)、可滴定酸(TA)含量、果肉口感均没有产生负面的影响。 4.草酸处理增强芒果细胞膜的稳定性,诱导提高芒果抗氧化酶活性,特别是提高果皮SOD、APX活性,降低LOX活性,以及降低果皮O2.、H2O2 和果肉H2O2含量,抑制采后果实的乙烯生物合成。这些生理生化效应与延缓芒果的成熟衰老和提高果实的抗病性相关。 5. 采后草酸、采前 + 采后草酸和采前Ca + 采后草酸处理表现出高效低廉、无毒无副作用、易操作等优点,是芒果采后贮藏保鲜的可供选、具有实际应用前景的新方法。

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The phytoremediation of triazophos (O, O-diethyl-O-(1-phenyl-1, 2, 4-triazole-3-base) sulfur phosphate, TAP) by Canna indica Linn. in a hydroponic system was studied. After 21 d of exposure, the removal kinetic constant (K) of TAP was 0.0229-0.0339 d(-1) and the removal percentage of TAP was 41-55% in the plant system and the K and removal percentage of TAP were about 0.002 d(-1) and 1%, respectively, in darkness and disinfected control. However, the K and removal percentage of TAP were 0.006 d(-1) and approximately 11%, respectively, in the treatment with eluate from the media of constructed wetland. The contribution of plant to the remediation of TAP was 74% and C. indica played the most important role in the hydroponic system. Under the stress of TAP and without inorganic phosphorus nutrient, the activity of phosphatase in the plant system increased and phytodegradation was observed. The production and release of phosphatase is seen as the key mechanism for C. indica to degrade TAP. C. indica, which showed the potential of phytoremediation of TAP, and is commonly used in constructed wetland, so the technique of phytoremediation of TAP from contaminated water can be developed with the combination of constructed wetland.

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The effects of cadmium (Cd2+) on growth status, chlorophyll (Chl) content, photochemical efficiency, and photosynthetic intensity were studied on Canna indica Linn. Plant specimens that were produced from a constructed wetland and precultivated hydroponically in 20 L of 1/10 Hoagland solution under greenhouse conditions for I week were exposed to cadmium in concentrations of 0, 0.4, 0.8, 1.6 and 3.2 mg L- Cd2+, respectively. The results show that leaves were injured in the Cd2+ solution by the third day of exposure and the injury became more serious with an increase in the applied heavy metal. Under 3.2 mg L-1 Cd2+ treatment, growth retardation, the decrease of chlorophyll content from 0.70 to 0.43 mg g(-1) FW, and a decrease in Chl a/b ratio from 2.0 to 1.2 were observed. Chl a was more sensitive than Chl b to Cd2+ stress. The decrease was the same with photochemical efficiency. Photosynthetic intensity decreased by 13.3% from 1.5X10(4) mumol m(-2)s(-1) CO2 in control to 1.3x10(4) mumol m(2)s(-1) CO2 in the treatment of 3.2 mg L-1. Because Canna species are used in heavy metal phytoremediation, these results show that C. indica can tolerate 0.4 to 0.8 mg L-1 Cd2+. Therefore, it is a potential species for phytoremediation of cadmium with some limitations only at higher concentrations.

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稻属Oryza隶属禾本科Poaceae,包括20多个野生种和2个栽培种(亚洲栽培稻O. sativa L和非洲栽培稻O. glaberrima Steud) ,广泛分布于全球热带和亚热带。稻属物种可划分为10个基因组(又称染色体组)类型:A, B, C, BC, CD, E, F, G, HJ 和 HK。栽培稻所属的A基因组是稻属中物种数目最多、地理分布最广的基因组类型,由8个种组成。由于栽培稻属于A基因组,故A基因组物种是栽培稻遗传改良的巨大基因源。数十年来,国际上许多学者对A基因组类群开展了大量涉及形态、细胞、同工酶和分子标记方面的研究,但由于A基因组物种间遗传关系十分接近,形态上差异小且地理分布重叠,使得A基因组物种的系统发育、物种起源和生物地理学等方面存在诸多悬而未决的问题,是稻属中分类和鉴定困难较多的类群。本文利用核基因内含子序列,结合转座子插入分析,重建了A基因组的系统发育,估测了各类群的分化时间;与此同时,基于多克隆测序和基因谱系分析,探讨了O. rufipogon和O. nivara遗传关系以及亚洲栽培稻起源。主要研究结果如下: 1. A基因组的系统发育 在水稻全基因组数据库搜索的基础上,测定了4个单拷贝核基因(Adh1 及3个未注释基因)的内含子序列,构建了稻属A基因组8个种的系统发育关系。基于最大简约法和贝叶斯法的系统发育分析表明:1)澳大利亚的O. meridionalis为A基因组的基部类群;2)亚洲栽培稻两个亚种O. sativa ssp. japonica 和 O. sativa ssp. indica分别和不同的野生类群聚为独立的两个分支,支持japonica 和 indica为多次起源;3)O. rufipogon和O. nivara在系统发育树上完全混在一起,显示出二者间不存在遗传分化;4)非洲一年生野生种O. barthii是非洲栽培稻O. glaberrima的祖先,而非洲多年生野生种O. longistaminata与O. glaberrima/O. barthii.亲缘关系较远;5)分子钟方法估测A基因组类群约在2百万年前(2.0MYA)开始分化,亚洲栽培稻和非洲栽培稻,以及亚洲栽培稻的两个亚种则分别在0.7和 0.4 MYA左右开始分化。此外,通过核基因内含子序列与其它常用片段如ITS,matK等对比分析表明,进化速率相对较快的核基因内含子序列可以有效地用于近缘类群的系统发育研究。 2. Oryza rufipogon 和O. nivara群体遗传研究及亚洲栽培稻起源 对于亚洲野生类群O. rufipogon和O. nivara是合并为一个种还是处理为两个独立的种一直存在争议。在系统发育研究基础上,我们选取4个核基因内含子或5’-UTR区(Waxy, LHS,CatA和1个未注释基因),对采自整个分布区的群体样品进行了多克隆测序,结果表明:1)检测到O. rufipogon和O. nivara均有较高的核苷酸多态性,4个位点上π值和θw值平均分别为0.011和0.014;2)且二者在遗传上没有明显分化,两个类群在4个核基因位点上均检测到大量共享多态(shared polymorphism),未发现固有差异(fixed difference),表明它们历史上可能属于一个大群体,支持将二者作为种内不同生态型或亚种处理;3)基因谱系树表明亚洲栽培稻的两个亚种indica和japonica分别和不同的O. rufipogon (包括O. nivara)群体聚在一起,进一步从基因谱系角度支持亚洲栽培稻多次起源假说。 3.转座子在群体遗传与系统发育研究中的应用 鉴于目前植物谱系地理学研究中缺乏具有足够信息量的分子标记用于检测种内遗传变异,我们选取3个核基因中的转座子,通过对取自O. rufipogon和O. nivara整个分布区的37份样品的克隆测序,探讨了进化速率快、信息含量丰富的转座子序列在群体遗传上的应用。结果表明:1)无论在物种水平还是群体水平,转座子能检测到比包括内含子在内的其它DNA区域高得多的遗传变异;2)在物种水平上,异交多年生的O. rufipogon和自交一年生的O. nivara多样性均较高,且2个种间相差很小,二者在3个位点上平均核苷酸多样性π值均为0.013,差别主要表现在O. rufipogon杂合位点比例(46.1%)明显高于O. nivara(9.1%),说明交配系统不同并不一定和物种多样性水平相关;3)是否发生转座子序列插入是有价值的系统发育信息,发生在不同染色体上3个基因中的转座子插入进一步证实A基因组基部类群是O. meridionalis;通过叶绿体中3个转座子的插入现象推断了稻族一些四倍体物种,如稻属BC基因组的一些类群的母本来源。