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1.
采用盆栽方法研究了氮素形态对不同专用型小麦开花后氮素同化关键酶活性及籽粒蛋白质含量的影响。结果表明:不同专用型小麦氮素同化关键酶硝酸还原酶、谷氨酰胺合成酶和谷氨酸合酶对氮素形态的反应不同。强筋小麦豫麦34施用酰胺态氮对旗叶硝酸还原酶和谷氨酰胺合成酶活性、籽粒谷氨酰胺合成酶和谷氨酸合酶活性具有明显的促进作用,最终籽粒蛋白质含量较高;中筋小麦豫麦4 9在施用铵态氮时,3种氮素同化关键酶活性均有较大增强,籽粒蛋白质含量最高;弱筋小麦豫麦5 0硝酸还原酶活性以铵态氮处理最高,而籽粒和旗叶谷氨酰胺合成酶和谷氨酸合酶活性在酰胺态氮处理下明显增强,酰胺态氮对籽粒中蛋白质含量的增加具有明显的促进作用。相关性分析表明,籽粒蛋白质含量与旗叶GS活性和籽粒GOGAT活性呈显著或极显著正相关,与旗叶NR活性和GS活性、籽粒GOGAT活性相关性不显著  相似文献   

2.
缺氮和复氮对菘蓝幼苗生长及氮代谢的影响   总被引:1,自引:0,他引:1  
对基质育苗后水培的菘蓝进行缺氮与复氮处理,分析其生长情况及氮代谢产物含量的变化,探讨缺氮和复氮对菘蓝幼苗生长及氮代谢的影响,以提高菘蓝产量和品质以及栽培过程中的氮素利用效率。结果显示:(1)正常供氮条件下,菘蓝幼苗的叶绿素含量、谷氨酰胺合成酶(GS)活性、硝态氮含量、靛玉红含量为最高,而其株高、主根直径、根的鲜重与干重、叶的鲜重与干重、根系活力均最小。(2)缺氮处理增加了菘蓝幼苗的主根直径和根干重,提高其根系活力和硝酸还原酶(NR)活性,促进游离氨基酸在叶中的积累;但降低了GS的活性,也降低了叶中硝态氮、可溶性蛋白、靛玉红及根中游离氨基酸的含量;缺氮对叶中靛蓝的含量无明显影响。(3)复氮处理增加了菘蓝幼苗的株高、主根长、根鲜重、叶鲜重、叶干重,提高了其根系活力,降低了NR和GS的活性;与对照相比,复氮降低了叶中硝态氮含量,提高了叶中可溶性蛋白、靛蓝及根中游离氨基酸的含量,但对叶中游离氨基酸和靛玉红含量影响较小。研究表明,缺氮后再复氮有利于菘蓝幼苗叶的生长,同时有利于增加其叶内靛蓝含量,从而提高其产量和品质。  相似文献   

3.
采用盆栽方法,设置5种氮素营养水平(N0、N1、N2、N3、N4,分别为0、2.5、5、10、15 mmol·L-1),以苗期菘蓝的生物量、光合参数、氮同化物含量、氮代谢酶活性、叶中靛蓝、靛玉红、总黄酮含量以及根中(R,S)-告依春含量等作为指标,研究氮营养对苗期菘蓝生长及活性成分的影响。结果表明:N0—N3处理组菘蓝的株高、主根直径及单株干重显著降低,根冠比增加。随着氮素水平降低,菘蓝叶片的叶绿素、类胡萝卜素含量以及净光合速率、蒸腾速率、气孔导度均呈逐渐降低趋势,胞间二氧化碳浓度呈升高趋势。低氮营养使菘蓝叶片中可溶性蛋白、硝态氮、游离氨基酸含量降低,抑制了硝酸还原酶活性、谷氨酰胺合成酶活性。N0—N2处理组菘蓝叶片中的靛玉红及总黄酮含量较高,靛蓝含量在氮素水平为0~10 mmol·L-1范围内随着氮水平的降低而减小,(R,S)-告依春含量在N0处理时显著低于其余处理。综合分析认为,较低的供氮水平显著影响苗期菘蓝的生长及部分生理指标,降低叶片中的靛蓝与根中的(R,S)-告依春含量,但促进叶中靛玉红及总黄酮的积累。综合考虑苗期菘蓝的生物量与活性成分含量,将氮素水平控制在10~15 mmol·L-1范围内,可以获得产量稳定、活性成分含量较高的药材。  相似文献   

4.
以3种不同类型的甘薯(Ipomoea batatas (L.) Lam.)为实验材料,根据氮素的3种形态设置5个配比处理(N1~N5),分别在栽秧后15、25和35 d取样测定甘薯不同器官的氮含量、功能叶氮代谢酶活性变化以及酶调控基因表达情况。结果显示:在同一生育期,N4和N5处理铵态氮和硝态氮配施下植株氮素的积累量明显高于其它处理;在甘薯生长发育前期,叶片含氮量先降低后上升,茎、须根和膨大根以及全株含氮量均呈上升趋势; N4处理能够显著提高硝酸还原酶(NR)、谷氨酰胺合成酶(GS)和谷氨酸脱氢酶(GDH)活性; N3处理能够明显提高谷氨酸合成酶(GOGAT)的活性; NR活性随肥料中硝态氮比例的增加而提高;增加肥料配比中硝态氮比例可使调控NR活性的基因上调表达,N4和N5处理可使GS调控基因上调表达,但抑制GOGAT调控基因的表达。酰胺态氮在前期对氮代谢相关酶调控基因无显著影响。研究结果表明,在甘薯生长发育前期,硝态氮和铵态氮配施能够显著提高氮素积累量、代谢酶活性和调控基因表达量,铵态氮∶硝态氮∶酰胺态氮=1∶2∶0的配施方案为本实验条件下的最佳配施组合。  相似文献   

5.
不同小麦品种氮效率与氮吸收对氮素供应的响应及生理机制   总被引:13,自引:0,他引:13  
以具有典型特征的不同氮效率小麦品种为材料,研究了低氮和高氮条件下小麦的生物学性状、生理参数和氮同化代谢酶活性.结果表明:低氮条件下,不同氮效率小麦品种根系干质量、茎叶干质量、植株氮累积量基本上为氮高效品种>中效品种>低效品种.低氮条件下,氮吸收高效品种(冀97-6360)的根系活跃吸附面积、TTC还原力、叶片硝酸还原酶活性和叶片NO3-含量最大;生理高效品种(石新5418)具有较高的叶片亚硝酸还原酶活性和谷氨酰胺合成酶活性,较低的植株全氮含量、叶片NO3-含量和硝酸还原酶活性.低氮条件下植株氮利用效率与氮吸收系数显著相关.不同小麦品种在高氮条件下的生物学性状、生理参数和氮同化代谢酶活性与低氮条件下不尽一致.  相似文献   

6.
以郑单958为材料,在高产田和中产田两种地力水平下,利用15N标记法研究了施氮量对夏玉米氮素分配率、利用率和碳氮代谢的影响.结果表明:高产田适量施氮可以提高玉米产量,过量施氮没有表现出进一步增产效果,其氮肥利用率较低(29 04%).中产田随施氮量的增加产量提高,但氮素利用率却降低.各个器官15N积累量依次为籽粒>叶片>茎>根>叶鞘>穗轴.在高产田,当施氮量超过300kg·hm-2时,玉米籽粒和叶片中积累15N有所下降,而茎和根中积累15N的量随施N量的增加而增加;在中产田,随着施N量的增加,籽粒和穗轴积累15N量均相应增加.高产田叶片的硝酸还原酶活性、谷氨酰胺合成酶活性和蔗糖磷酸合成酶活性以及籽粒中蔗糖合成酶活性和酸性转化酶活性均是施氮300kg·hm-2时最大,施氮450 kg·hm-2则抑制了其活性的增强,而中产田的各个酶活性则随着施氮量的增加而增加.  相似文献   

7.
降水和氮沉降增加对草地土壤酶活性的影响   总被引:7,自引:0,他引:7  
为探究降水和氮沉降增加对草地生态系统土壤酶活性的影响,于2014年生长季在内蒙古温带典型羊草草原开展了野外原位控制实验。试验共设置降水(对照,W0,自然降水;W15,增加15%的年均降水量)、施氮(对照,CK,0 kg N hm~(-2)a~(-1);低氮,LN,25 kg N hm~(-2)a~(-1);中氮,MN,50 kg N hm~(-2)a~(-1);高氮,HN,100 kg N hm~(-2)a~(-1))及其交互作用等8个不同的处理水平来模拟降水和氮沉降增加的全球变化情景,分别定量探讨了不同水、氮添加条件下草地表层土壤中与氮循环相关的蛋白酶,脲酶,硝酸还原酶,亚硝酸还原酶活性的月动态变化及其与土壤理化性质之间的相关性。研究结果表明:在自然降水条件下,不同施氮水平蛋白酶、脲酶和硝酸还原酶活性无显著差异,亚硝酸还原酶活性相比于对照显著降低;在增加降水条件下,不同施氮水平对蛋白酶和硝酸还原酶活性未产生显著性影响,高氮水平显著降低脲酶和亚硝酸还原酶活性。不同施氮水平是否添加降水对亚硝酸还原酶活性无影响,而增添降水使低氮处理的蛋白酶活性和中、高氮处理水平的硝酸还原酶活性增加、高氮处理的脲酶活性降低。降水在影响蛋白酶和硝酸还原酶活性方面具有主效应,氮沉降在影响亚硝酸还原酶活性方面具有主效应,而降水和施氮处理未表现出明显地交互作用。土壤亚硝酸还原酶活性与土壤碳氮比和NH~+_4-N含量极显著正相关,与NO-3-N含量显著正相关。  相似文献   

8.
硝态氮是作物吸收无机氮素的主要形态,硝酸盐转运蛋白2(nitrate transporter 2,NRT2)作为高亲和性的转运蛋白,以硝酸盐作为特异性底物,在可利用的硝酸盐受限时,高亲和性转运系统被激活,在硝酸盐吸收、转运过程中发挥着重要作用。大多数NRT2不能单独转运硝酸盐,需在硝酸盐同化相关蛋白2(nitrate assimilation related protein 2,NAR2)的协助下才能完成硝酸盐的吸收或转运。作物氮利用效率受环境条件影响,品种间存在差异,因此培育高氮素利用效率品种有重大意义。高粱(Sorghum bicolor)具有耐贫瘠特性,对土壤中的氮素吸收和利用效率较高。本研究结合高粱基因组数据库对NRT2/3基因家族成员基因结构、染色体定位、理化性质、二级结构与跨膜结构域、信号肽与亚细胞定位、启动子区顺式作用元件、系统进化、单核苷酸多态性(single nucleotide polymorphism,SNP)的识别与注释及选择压力进行了全面分析。通过生物信息学分析,筛选出5个NRT2s(命名为SbNRT2-1a、2-1b、SbNRT2-2–4)基因和2个NAR2s(SbNRT3-1–2)基因,较谷子略少。分布在3条染色体上,分为4个亚家族,同一亚族中基因结构高度相似;高粱NRT2/3亲水性平均值均为正值,表明均为疏水性蛋白;α-螺旋和无规则卷曲占二级结构总量的比例大于70%;亚细胞定位均在质膜上,其中NRT2s蛋白不含信号肽,NRT3s蛋白含信号肽;进一步对其跨膜结构域进行分析,发现NRT2s家族成员跨膜结构域个数均大于10个,而NRT3s家族成员跨膜结构域个数为2个;高粱与玉米(Zea mays)NRT2/3s的共线性较好;蛋白结构域显示存在MFS_1和NAR2蛋白结构域,可执行高亲和力硝酸盐转运;系统进化树分析可知,高粱与玉米和谷子的NRT2/3基因亲缘关系更近;基因启动子顺式作用元件分析发现,SbNRT2/3基因的启动子区均具有数个植物激素和逆境应答元件,可以响应高粱生长和环境变化;基因表达热图显示低氮条件下在根诱导表达的是SbNRT2-1a、SbNRT2-1b和SbNRT3-1,推测可在高粱根部表达并调控对硝酸盐的吸收或转运过程。在SbNRT2-4和SbNRT2-1a等发现多个非同义SNP变异;选择压力分析表明,高粱NRT2/3基因家族在进化过程中受纯化选择作用。SbNRT2/3基因表达及蚜虫侵染影响与基因在不同组织中的表达分析结果一致,SbNRT2-1b和SbNRT3-1在感染蚜虫品系5-27sug根部表达显著,高粱蚜虫侵染叶片显著降低了SbNRT2-3、SbNRT2-4和SbNRT3-2的表达水平。本研究初步对高粱全基因组NRT2/3基因家族进行鉴定、表达与DNA变异分析,为高粱氮高效研究提供了基础。  相似文献   

9.
转基因抗虫棉苗期氮代谢   总被引:2,自引:0,他引:2  
以3种不同转基因抗虫棉及其亲本对照为材料,研究了盆栽条件下不同品种棉花苗期氮代谢特征。结果表明与非转基因棉花比较,转Bt基因棉Z30叶片内的硝酸还原酶活性、肽酶活性、游离氨基酸含量均没有明显变化,但转氨酶活性显著增加(增幅为14.03%),可溶性蛋白含量显著减少(降幅为26.29%)。双价转基因棉花CCRI41叶片内除可溶性蛋白含量没有明显变化,其它所测指标均发生了显著的改变。双价转基因棉花SGK321叶片内硝酸还原酶活性、转氨酶活性、氨基酸含量没有明显变化,但肽酶活性和可溶性蛋白含量均显著增加(增幅分别为7.01%和121.32%)。随着转入基因的多样化,其可能引发转基因棉花产生的非预期效应更加不确定与复杂。  相似文献   

10.
用蛭石与石英砂作为混合固体培养介质研究了低磷 (PO4 3 -)胁迫和部分根系供氮 (NO-3 )对水稻 (O ryzasativaL .)苗期根系生长的影响。结果表明 :低磷胁迫和供氮均能诱导水稻不定根和不定根上侧根的伸长。细胞分裂的进程受依赖细胞周期蛋白的蛋白激酶(CDKs)的调控 ,在缺磷和供氮条件下 ,细胞周期蛋白激酶cdc2Os 1在根系表达都增强 ,而cdc2Os 2的表达无明显变化。cdc2Os 1的这种表达模式与这两种处理下根系的加速伸长具一致性 ,表明在磷缺乏和供氮处理下 ,cdc2Os 1基因在根系表达的增强 ,可能促进了根细胞的分裂活性 ,从而加速不定根和侧根的伸长  相似文献   

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12.
氮素水平对花生氮素代谢及相关酶活性的影响   总被引:10,自引:0,他引:10       下载免费PDF全文
 在大田高产条件下研究了氮素水平对花生(Arachis hypogaea)可溶性蛋白质、游离氨基酸含量及氮代谢相关酶活性的影响, 结果表明, 适当提高氮素水平既能增加花生各器官中可溶性蛋白质和游离氨基酸的含量, 又能提高硝酸还原酶、谷氨酰胺合成酶和谷氨酸脱氢酶等氮素同化酶的活性, 使其达到同步增加; 氮素水平过高虽能提高硝酸还原酶和籽仁蛋白质含量, 但谷氨酰胺合成酶(GS)和谷氨酸脱氢酶(GDH)的活性下降; N素施肥水平不改变花生植株各器官中可溶性蛋白质、游离氨基酸含量以及硝酸还原酶(NR)、谷氨酰胺合成酶、谷氨酸脱氢酶活性的变化趋势, 但适量施N (A2和A3处理)使花生各营养器官中GS、GDH活性提高; 氮素水平对花生各叶片和籽仁中GS、GDH活性的高低影响较大, 但对茎和根中GDH活性大小的影响较小。  相似文献   

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Two-month-old jack pine ( Pinus banksiana Lamb.) seedlings were placed in a greenhouse where both nitrogen source and light level were varied. After 4 months, whole seedling biomass, leaf biomass and relative growth rate were greatest in seedlings grown with NH+4/NO/NO3-N and full light (FL) and least in seedlings grown with NO 3-N and low light (LL). NO 3-seedlings grown under full light and NH+4/NO3-seedlings grown under low light were approximately equal. This indicates that the extra carbon costs of assimilating only NO3-N were similar to the reduction of carbon fixation resulting from a 50% decrease in photon flux density. Percentage and total nitrogen content of needles were greater in seedlings grown under low light independent of nitrogen fertilization. Percentage and total nitrogen content of roots were higher under low light and lower when fertilized with NO3.
Nitrate reductase (NR) activity was higher in roots than in needles, while glutamine synthetase (GS) activity was higher in needles than in roots. Low light resulted in decreased NR activity (mg N)−1 in needles, but not in roots. However, no nitrate was detected in the needles in any treatment. GS activity, on the other hand, was greater under low light in both needles and roots. GS activity in needles is most likely involved with the reassimilation rather than the initial assimilation of ammonium. Some implications of these shifts in enzymatic activity for ecological phenomena in forests are discussed.  相似文献   

15.
Glutamine synthetase (GS) exists as two main isoforms in plants, a cytosolic form (GSI) and a chloroplast or plastidie form (GS2). Fifty-five species of legume, representing a phylogenetically diverse group of tropical and temperate species, were screened by western blotting for the presence of GS2 in their roots. A remarkably strong correlation was found between the climatic origin of the species and the presence or absence of a GS2-like polypeptide in the root. Root GS2 was found in all 31 temperate species examined (30 papilionoids, one caesalpinoid), but was not detected in any of the 17 tropical papilionoid species. It was also absent in the roots of four out of seven tropical non-papil-ionoid species. The ‘in vivo’ NR activities of roots, stems and leaves of 46 of the legume species were analysed to establish their major site of nitrate reduction, and the ratio of nitrate: reduced N in the xylem sap was determined for some species, but no clear correlation between possession of a root GS2 and a preference for root nitrate assimilation was found. We discuss the possibility that expression of GS2 in the root was part of a more extensive physiological adaptation to root nitrate assimilation that evolved in temperate species to suit the alkaline, nitrate rich soils found in the centres of origin in temperate latitudes.  相似文献   

16.
不同施氮量对杂交酸模叶片光合电子流分配的影响   总被引:4,自引:0,他引:4  
研究了不同施氮量对高蛋白含量植物杂交酸模(Rumex patientiaxR.tianschanicus)叶片中总光合电子流和分配在碳同化、光呼吸、Mehler反应以及氮代谢上的光合电子流的影响,并研究了不同施氮量对硝酸还原酶(NR)和谷氨酰胺合成酶(GS)的活性、叶片的蛋白质含量及叶绿素含量的影响。结果表明随着施氮量的增加,硝酸还原酶和谷氨酰胺合成酶的活性都显著提高,同时更多的光合电子流分配到氮代谢和光呼吸。氮代谢所需光合电子流约占总光合电子流的15%~21%。缺氮并没有造成光合电子流向Mehler反应分配的增加。  相似文献   

17.
The mixed effects of nitrogen nutrition and sulphate assimilation were investigated in barley plants (Hordeum vulgare var. Alfeo) that were subjected to long-term sulphur and/or nitrogen starvation, by measuring the O-acetylserine(thio)lyase (OASTL-EC 4.2.99.8) activity, changes in -SH compounds and amino acid levels.The growth of barley plants cultured in the hydroponic vessels was severely affected by altered nutrient levels. The barley plants grown in medium deprived of nitrogen and/or sulphur sources for 21 days showed increase in both root length and weight. In contrast, the shoot growth was reduced in nitrogen-starved plants and was unaffected by sulphur deprivation. Sulphur starvation affected the level of proteins in barley plants more than nitrogen deprivation. The decline in the protein levels observed under sulphur-deficient conditions was coupled with the accumulation of glutamine, asparagine and serine, mainly in the roots; additionally, a nitrogen deficiency in the roots promoted a decrease in both glutathione and cysteine levels.The simultaneous deprivation of nitrogen and sulphur in plants leads to an alteration in their metabolism; high levels of glutathione (GSH) in the shoots could signify the induction of a mechanism intended for coping with stressful conditions.Sulphate deprivation enhanced OASTL activity, mainly in the roots; on the other hand, OASTL increases observed under S deprivation were clearly dependent on the nitrogen availability in the culture medium. In fact, the nitrate supply to the N and S starved plants that showed OASTL activity very low, rapidly recovered the OASTL activities to the levels typical of control plants. Nevertheless, the ammonium supply had negligible effects on the OASTL activity only observed after three days in the roots.Our results support the hypothesis that in barley plants, a portion of S assimilation (up to cysteine biosynthesis) occurs in the roots, and a reciprocal influence of nitrogen assimilation on cysteine synthesis occurs.  相似文献   

18.
The literature on the relations between plant nitrogen (N) assimilation enzymes and plant/crop N assimilation, growth and yield is reviewed to assess if genetic manipulation of the activities of N assimilation enzymes can result in increased yield and/or increased N use efficiency. The available data indicate that (I) levels of N assimilation enzymes do not limit primary N assimilation and hence yield; (II) root or shoot nitrate assimilation can have advantages under specific environmental conditions; (III) for cereals, cytosolic glutamine synthetase (GS1) is a key enzyme in the mobilisation of N from senescing leaves and its activity in senescing leaves is positively related to yield; and (TV) for rice (Oryza sativd), NADH-glutamate synthase (NADH-GOGAT) is important in the utilisation of N in grain filling and its activity in developing grains is positively related to yield. In our opinion, selection of plants, from either a genetically manipulated population or genetic resources, with expression of nitrate reductase/nitrite reductase primarily in the root or shoot should increase plant/crop growth and hence yield under specific environmental conditions. In addition for cereals the selection of plants with high GS1 in senescing leaves and in some cases high NADH-GOGAT in developing grains could help maximise the retrieval of plant N in seeds.  相似文献   

19.
不同氮源对小麦幼苗谷氨酰胺合成酶的影响   总被引:21,自引:0,他引:21  
利用DEAE-纤维素柱层析、酶活性测定、Northern 分子杂交等技术,研究了小麦(Triticum aestivum L.)幼苗的根、叶和离体叶在不同氮源培养条件下谷氨酰胺合成酶(GS)活性和同工酶变化, 以及不同氮源对GS基因转录-GS-m RNA 的影响. 同时与硝酸还原酶(NR)活性进行比较, 结果表明∶当以NH+4 作唯一氮源时,小麦幼苗根谷氨酰胺合成酶(GSr)和叶细胞质谷氨酰胺合成酶(GS1)活性要比以NO-3 作唯一氮源的高.当以NO-3 为唯一氮源时, NO-3 则促进完整叶片和离体叶片叶绿体谷氨酰胺合成酶(GS2)活性. 从转录水平上看,NH+4 促进根GS-m RNA 的合成,而NO-3 促进叶GS-m RNA 的合成  相似文献   

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