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1.
水稻根表铁氧化物胶膜对水稻吸收磷的影响   总被引:19,自引:2,他引:19  
本文采用营养液培养方法研究了根表铁氧化物胶膜对水稻吸收磷的影响。结果表明,水稻报表的铁氧化物胶膜随营养液中Fe2+浓度的增加而增加。铁氧化物胶膜可富集生长介质中的磷,根表铁膜数量越多,富集的磷量也越多。根表铁股可促进水稻对磷的吸收,但这种促进作用的大小依赖于根表铁膜数量。根表铁膜数量为24570mp/kg时,促进作用达到最大,此后随着铁膜数量的增加,水稻吸收磷的数量下降,但仍高于根表没有铁膜的水稻。因此,水稻根表形成的铁氧化物胶膜在一定程度上是一个磷富集库,对水稻吸收磷起促进作用。在此过程中,缺铁条件下水稻根分泌物中的植物铁载体对淀积铁氧化物胶膜的水稻根系吸收磷没有明显的作用。  相似文献   

2.
铅污染土壤中根表铁膜对宽叶香蒲利用磷的影响   总被引:1,自引:0,他引:1  
为研究铅污染土壤中根表铁膜对宽叶香蒲(Typha latifolia L.)磷利用效率的影响,利用根袋培养方法在两个Fe2+水平(20、100 mg/L)下诱导根表形成铁膜的宽叶香蒲移栽于土壤中,经4个Pb2+浓度(0、100、500、1000 mg/kg)处理后淹水培养4周,分析根表铁膜和植物体内磷含量。结果表明,地上部生物量随着铅污染强度的增加呈降低趋势但差异不显著(P0.05);低铁(20 mg/L)诱导处理的地上部和地下部生物量分别比相应高铁(100 mg/L)诱导的高3.5%~19.6%和7.6%~39.8%,且铁对地上部生物量的影响达到极显著差异(P0.01)。根表铁膜量随铅污染程度的增加而下降;高铁诱导处理宽叶香蒲的新根形成的铁膜量以及其吸附的磷均高于低铁诱导处理的植株。除1000 mg/kg铅处理外,低铁诱导后植株中磷的含量均比高铁诱导的植株高。本试验条件下,铅污染土壤中植物利用磷为低铁膜量大于高铁膜量。  相似文献   

3.
缺磷对不同作物根系形态及体内养分含量浓度的影响   总被引:3,自引:1,他引:2  
采用营养液培养方法,以水稻、 小麦、 玉米和大豆为试验材料,研究了短期缺磷(2周)诱导根表沉积铁氧化物是否为水稻特有的性质,以及缺磷对不同作物根系形态及其吸收钾、 钙、 铁、 锰、 铜、 锌营养元素的影响。结果表明,供磷和缺磷处理并没有影响小麦、 玉米和大豆3种作物根系的颜色,而缺磷处理水稻根表沉积了铁氧化物而呈红(黄)棕色,且铁氧化物不均匀地富集在根细胞壁的孔隙中; 缺磷促进了水稻,小麦,玉米和大豆根系的生长,分别比供磷处理伸长了11%、 11%、 20%和11%(P0.05)。此外,缺磷胁迫下水稻根表铁氧化物增强了钙、 铁、 锰、 铜和锌在根表的富集而成为其进入根系的缓冲层。缺磷处理水稻根中铁浓度明显高于供磷处理(P0.05),而地上部铁的浓度仅为磷营养正常水稻植株的18%,这说明缺磷诱导的铁氧化物促进了根系对铁的吸收但抑制了铁由根系向地上部的转运。短期缺磷对其他养分在水稻根中和地上部的浓度没有明显影响。对于其他 3 种作物,短期缺磷没有明显影响钾、 钙、 铁、 锰、 铜和锌在其根表富集及在植物体内的浓度。因此,在供试的4 种作物中,由于磷胁迫诱导根表形成铁氧化物是水稻特有的性质,铁氧化物的沉积可促进铁的吸收但抑制了铁向地上部的转运,而短期缺磷并没有影响其他3种作物对钾、 钙、 铁、 锰、 铜和锌养分的吸收和转运。  相似文献   

4.
  【目的】  小麦是磷肥需求量最大的作物之一。为了探索小麦对磷的高效利用机制,本研究评价了不同磷效率基因型小麦在缺磷条件下的差异响应。  【方法】  本研究选取一个磷高效小麦基因型‘小偃54’和一个低效率型‘中国春’作为试验材料,设置正常供磷(+P)、缺磷(?P)和缺磷7天后恢复正常供磷(RP) 3个处理进行小麦水培试验,调查分析了小麦幼苗的表型、生理以及缺磷响应基因的表达随缺磷时间的变化趋势,及它们在不同磷效率小麦基因型间的异同。  【结果】  缺磷胁迫明显增加了两个小麦基因型的根冠比,但无论缺磷与否,磷高效基因型‘小偃54’的根冠比均大于磷低效基因型‘中国春’。随着缺磷时间的延长,小麦幼苗地上、地下部无机磷和总磷浓度逐渐降低,但不同基因型之间无明显差异。对缺磷的小麦幼苗恢复供磷后,磷耗竭的小麦幼苗体内无机磷含量迅速增加,‘小偃54’地上、地下部的无机磷含量均明显高于‘中国春’。缺磷响应信号基因TaIPS1和TaSPX3在缺磷6 h即被诱导表达,随着缺磷时间的延长表达量逐渐升高,且恢复供磷后表达量显著降低;缺磷早期‘中国春’中TaIPS1和TaSPX3的表达量比小偃54高,但在长期缺磷和缺磷后恢复供磷处理下又比‘小偃54’低,表明磷低效小麦基因型‘中国春’可能对体内磷稳态变化更为敏感。然而,两个根系特异表达的高亲和磷转运子TaPHT1.1/9 和TaPHT1.10均表现出缺磷早期表达受到抑制,而长期缺磷被诱导升高表达。未预料到的是,二者在复磷处理后的表达量明显高于缺磷处理。长期缺磷处理下,‘中国春’中TaPHT1.1/9的表达量明显低于‘小偃54’,但其TaPHT1.10的表达与‘小偃54’无显著差异,表明不同磷效率基因型小麦幼苗缺磷诱导表达的磷吸收转运子可能存在差异。除此以外,缺磷胁迫显著增加了‘中国春’根系DCB-Fe含量,但对‘小偃54’无明显影响。  【结论】  磷高效基因型小麦幼苗(‘小偃54’)比磷低效型(‘中国春’)具有更大的根冠比和更强的磷吸收能力。‘小偃54’根系中的磷转运子基因TaPHT1.1/9的表达也明显高于‘中国春’。然而,缺磷明显促进了磷低效基因型小麦根表铁的富集。今后将进一步研究小麦根表铁的富集对小麦幼苗磷高效吸收和利用的影响。  相似文献   

5.
磷饥饿诱导水稻根表铁膜形成机理初探   总被引:11,自引:1,他引:10  
采用溶液培养的方法,初步探索了磷饥饿诱导水稻根表铁膜形成的机理。磷饥饿24h后水稻的根表出现了明显的红棕色物质的沉积,扫描电镜的能谱分析结果显示,红棕色物质是铁的氧化物。针对这一现象,首先研究了没有水稻生长的正常磷营养液和缺磷营养液的变化,结果表明二者之间全波长的扫描图谱没有出现差异。采用酸碱混合指示剂的琼脂染色方法,观察了水稻根系表面及根际pH值的变化情况,并分别测定了正常磷营养(P)和缺磷(P0)2种条件下水稻的根系活力。结果看出,缺磷时水稻根系活力高于磷营养正常的处理,尤其是基因型Jin23A,其P和P0处理间根系活力差异极显著。水稻根表三价铁的浓度高于二价铁,并且缺磷根系表面三价铁和二价铁浓度均明显高于供磷处理;缺磷处理水稻根质外体沉积的铁浓度也明显高于供磷处理。因此,初步确定磷饥饿诱导水稻根表铁膜形成是生物学基础上的化学反应过程。  相似文献   

6.
不同供磷水平对饭豆体内铁有效性的影响   总被引:1,自引:0,他引:1  
采用溶液培养试验研究了低铁条件下(1 μmol/L FeEDTA)不同供磷水平P 3、30和300 μmol/L对饭豆叶绿素含量、生物量、铁含量以及质外体铁的影响。结果表明,饭豆叶片叶绿素含量及根系干重均随磷处理浓度的增加而显著降低; 低磷处理的植株地上部的铁含量明显高于中磷和高磷处理。随着供磷水平的增加,地上部和根系总铁量的比值呈降低趋势,说明铁由根系向地上部的转运显著减少,从而加剧了植株缺铁症状。进一步分析发现,低磷处理的根系质外体铁含量显著低于中磷和高磷处理。说明在铁吸收过程中,供磷水平增加促使铁在根系质外体空间中的固定,不利于根系中的铁转运至地上部,这可能是磷是对铁产生拮抗作用造成植物铁营养不利的原因之一。  相似文献   

7.
【目的】植株对介质中磷素的吸收及磷素在体内器官组织间的转运,是通过位于细胞质膜上的磷转运蛋白(PT)介导完成的。高亲和PT在介导植物对低磷逆境下的磷素吸收中发挥重要作用。本研究以小麦中国春遗传背景的整套B染色体双端体为材料,对小麦高亲和PT基因TaPht1;4的染色体定位特征及其与低磷下小麦品种磷效率的联系进行系统研究,旨在为今后小麦品种磷效率分子鉴定和磷高效遗传改良提供依据。【方法】采用水培法培养中国春(CS)及其遗传背景B染色体组双端体幼苗。三叶期时收获各供试材料根系,提取各材料基因组DNA,通过PCR特异扩增TaPht1;4,鉴定TaPht1;4在染色体上定位。通过对各供试材料三叶期幼苗进行24 h低磷胁迫获取丰缺磷处理根叶样本,采用半定量RT-PCR及实时定量PCR分析TaPht1;4在丰缺磷下的表达。采用上述幼苗培养、丰缺磷处理和基因表达分析技术,研究不同磷吸收效率小麦品种磷效率参数和TaPht1;4表达特征。【结果】1)与CS及其他双端体材料能特异扩增目标基因不同,在3BS中未扩增到目标基因TaPht1;4;采用半定量RT-PCR和qPCR对丰、缺磷下CS和各双端体根、叶中TaPht1;4的表达研究表明,丰磷下各供试材料根、叶中均检测不到TaPht1;4表达,缺磷下各供试材料叶片中也均未检测到TaPht1;4表达,但在根中除3BS未检测到TaPht1;4表达外,CS和其他双端体均具有较高的TaPht1;4表达水平。表明TaPht1;4定位在3B染色体长臂,呈低磷诱导和根系特异表达特征。2)丰磷下,3BS单株干重与CS没有差异;缺磷下,与CS相比,3BS单株干重显著降低。表明缺少TaPht1;4及所在3B染色体长臂后,植株干物质生产能力受到较大影响,这可能与因缺乏该染色体臂丧失TaPht1;4造成低磷下植株的磷素吸收能力降低密切相关。3)对丰、缺磷下不同磷吸收效率6个小麦品种TaPht1;4的表达水平以及单株干重、全磷含量、磷累积量和磷效率研究表明,缺磷下各小麦品种表现为随品种磷吸收效率提高,TaPht1;4表达水平也随之增高。表明TaPht1;4表达水平与低磷下小麦品种磷素吸收能力和干物质积累具有紧密联系。【结论】小麦高亲和PT基因TaPht1;4定位在3B长臂。低磷条件下,3BS的单株干重和磷累积量较CS显著降低。丰、缺磷下,不同磷吸收效率小麦品种TaPht1;4表达水平与植株干重和单株磷累积量密切相关。TaPht1;4能显著增强小麦在低磷下磷素吸收能力,可作为小麦品种耐低磷能力的参考分子评价指标。  相似文献   

8.
【目的】植株对介质中磷素的吸收及磷素在体内器官组织间的转运,是通过位于细胞质膜上的磷转运蛋白(PT)介导完成的。高亲和PT在介导植物对低磷逆境下的磷素吸收中发挥重要作用。本研究以小麦中国春遗传背景的整套B染色体双端体为材料,对小麦高亲和PT基因TaPht1; 4的染色体定位特征及其与低磷下小麦品种磷效率的联系进行系统研究,旨在为今后小麦品种磷效率分子鉴定和磷高效遗传改良提供依据。【方法】采用水培法培养中国春(CS)及其遗传背景B染色体组双端体幼苗。三叶期时收获各供试材料根系,提取各材料基因组DNA,通过PCR特异扩增TaPht1; 4,鉴定TaPht1; 4在染色体上定位。通过对各供试材料三叶期幼苗进行24 h低磷胁迫获取丰缺磷处理根叶样本,采用半定量RT-PCR及实时定量PCR分析TaPht1; 4在丰缺磷下的表达。采用上述幼苗培养、 丰缺磷处理和基因表达分析技术,研究不同磷吸收效率小麦品种磷效率参数和TaPht1; 4表达特征。【结果】 1)与CS及其他双端体材料能特异扩增目标基因不同,在3BS中未扩增到目标基因TaPht1; 4; 采用半定量RT-PCR和qPCR对丰、 缺磷下CS和各双端体根、 叶中TaPht1; 4的表达研究表明,丰磷下各供试材料根、 叶中均检测不到TaPht1; 4 表达,缺磷下各供试材料叶片中也均未检测到TaPht1; 4表达,但在根中除3BS未检测到TaPht1; 4 表达外,CS和其他双端体均具有较高的TaPht1; 4表达水平。表明TaPht1; 4定位在3B染色体长臂,呈低磷诱导和根系特异表达特征。2)丰磷下,3BS单株干重与CS没有差异; 缺磷下,与CS相比,3BS单株干重显著降低。表明缺少TaPht1; 4及所在3B染色体长臂后,植株干物质生产能力受到较大影响,这可能与因缺乏该染色体臂丧失TaPht1; 4造成低磷下植株的磷素吸收能力降低密切相关。3)对丰、 缺磷下不同磷吸收效率6个小麦品种TaPht1; 4 的表达水平以及单株干重、 全磷含量、 磷累积量和磷效率研究表明,缺磷下各小麦品种表现为随品种磷吸收效率提高,TaPht1; 4表达水平也随之增高。表明TaPht1; 4 表达水平与低磷下小麦品种磷素吸收能力和干物质积累具有紧密联系。【结论】小麦高亲和PT基因TaPht1; 4 定位在3B长臂。低磷条件下,3BS的单株干重和磷累积量较CS显著降低。丰、 缺磷下,不同磷吸收效率小麦品种TaPht1; 4 表达水平与植株干重和单株磷累积量密切相关。TaPht1; 4 能显著增强小麦在低磷下磷素吸收能力,可作为小麦品种耐低磷能力的参考分子评价指标。  相似文献   

9.
王萍  胡江  冉炜  徐国华 《土壤学报》2008,45(3):503-509
环境和食品中砷标准提高后,砷污染及其有关的食品安全问题更加受到广泛的关注。磷对植物吸收和累积砷的影响及其作用机制仍有很大争论。本文利用水培试验,研究了0.025~1.0 mmol L-1范围内7个供磷水平下50μmol L-1AsO43-胁迫对微型番茄生长、砷和磷的吸收及两个磷酸盐转运体基因(LePT1和LePT2)表达的影响。在0.025~0.4 mmol L-1的缺磷条件下,砷对番茄的生长有明显抑制作用。在缺磷状态下,增加磷供应能显著减少番茄体内砷的浓度。约58%的砷累积在番茄根部,根部砷的浓度较地上部高10倍以上。砷抑制番茄对磷的吸收只出现在严重缺磷(0.025~0.05 mmol L-1)条件下。此外,外界砷的存在对LePT1、LePT2基因的表达影响不显著。从本文的结果来看,番茄吸收过程中的磷砷相互作用在缺磷条件下更明显,提高供磷水平可降低番茄体内砷含量,缓解砷对番茄的胁迫作用。  相似文献   

10.
  【目的】  FERRITIN (FER)是一类保守铁蛋白,对于维持铁的稳态及铁代谢中起重要作用。通过鉴定大豆FERRITIN (GmFER)基因家族的组成及其对低磷、铁毒等养分胁迫的响应,为今后研究FER功能奠定基础。  【方法】  对GmFER基因进行生物信息学分析,根据其编码的GmFER氨基酸序列,用ProtParam tool网站计算了GmFER家族的相对分子质量、氨基酸组成和等电点(PI);用PSORT网站预测GmFERs蛋白定位;从Phytozome网站下载GmFER家族的氨基酸序列与基因启动子序列,用 MEME 预测GmFER家族序列中的保守基序;用MEGA X对GmFERs进行进化分析,用最大似然法重建进化树;通过定量PCR分析GmFER对低磷、铁毒等养分胁迫的响应,构建GmFER1基因启动子融合GUS 报告基因的载体与GmFER1超表达载体,进一步分析GmFER1基因启动子活性和对铁毒的响应,以及异源超表达GmFER1对拟南芥耐受铁毒的影响。  【结果】  大豆基因组有12个GmFER基因,对GmFERs进行进化分析,发现GmFERs可以分为4个亚组(亚组Ⅰ~Ⅳ),其中GmFER3、GmFER7、GmFER8、GmFER10和GmFER11属于亚组Ⅰ,GmFER2和GmFER9同属亚组Ⅱ;GmFER5和禾本科植物水稻和玉米的FER同属亚组Ⅲ,GmFER1、GmFER4、GmFER6、GmFER12属于亚组Ⅳ;通过MEME预测,GmFER家族序列中的保守基序有3个;蛋白亚细胞定位预测显示,大豆FER蛋白可定位于细胞质、线粒体和叶绿体。运用定量PCR技术检测GmFER基因在大豆根和叶的表达水平,发现12个GmFER基因在响应磷铁养分胁迫时存在差异,其中GmFER1、GmFER4、GmFER5、GmFER6、GmFER12受低磷诱导,GmFER1、GmFER4、GmFER12表达受铁毒诱导;对GmFER1启动子的活性进行分析,发现铁毒促进GmFER1启动子在根系的活性;在铁毒胁迫下,与野生型Col-0比,超表达GmFER1显著提高了拟南芥的主根长、侧根数目、侧根密度、叶绿素含量和鲜重,增强了耐铁毒的能力。  【结论】  大豆基因组共有12个FER基因,GmFER基因响应低磷或铁毒等养分胁迫。超表达GmFER1可促进主根生长,增加侧根密度,提高叶绿素含量,增加植株鲜重,表明GmFER1在缓解铁毒胁迫方面起重要作用。  相似文献   

11.
An investigation was conducted using Typic Haplustept, sandy loam soil, to investigate the interactive effects of phosphorus (P) and manganese (Mn) fertilization on native iron (Fe) pools in soil and their availability to wheat (cv. PBW-343) crop. Phosphorus fertilization moved Fe from residual mineral fraction of Fe to manganese oxides (MnOX), organic matter (OM), amorphous (AMPOX), and crystalline (CRYOX) Fe and Al oxide fractions. However, Mn application decreased specifically adsorbed (SAD)–Fe and CRYOX–Fe but increased OM–Fe and mineral fraction of Fe. Available Fe in soil decreased as Olsen P and P:Mn ratio increased in the soil. Higher Olsen P (>60 mg P kg?1soil) reduced mean Fe uptake by shoot. P content and P:Mn ratio in soil as well as in root and shoot were inversely related to Fe concentration in both the plant parts. The role of soil Fe associated with oxides and organic matter was found most notable in Fe nutrition of wheat.  相似文献   

12.
王立赛  闫明科  王晗  沈仁芳  兰平 《土壤》2018,50(3):476-484
铁是植物生长发育必需的一种微量元素,但土壤中植物可直接吸收利用的铁非常有限。缺铁使作物生长受限,进而影响人类膳食健康。植物体能通过调节一系列基因表达的变化来响应缺铁,但目前对该调控系统的研究仍不完善。CYP82C4(At4g31940)是拟南芥中一个强烈响应缺铁的基因,本研究将该基因启动子连接荧光素酶报告基因LUC2并转化拟南芥,进一步通过T-DNA的随机插入得到一个响应缺铁信号的突变体库。通过筛选该突变体库,我们得到一个强烈响应缺铁信号的突变体L22-8。和野生型相比,正常情况下L22-8地上部和地下部内源CYP82C4的表达量均显著增高,缺铁处理时其地上部表达量仍高于野生型,而地下部则不明显。定量结果显示FIT,b HLH38和b HLH39等植物铁代谢关键调控因子的表达发生了显著变化,但植株总铁、磷、锌的含量较野生型并没有显著区别,表明该T-DNA的插入虽影响了植株对缺铁胁迫的响应,但并不直接作用于植株对铁的吸收、转运上。反向PCR分析发现L22-8的T-DNA插入位点位于At3g51950和At3g51960之间,且这两个基因的转录表达在正常生长条件下均略低于Col-0。基因互补实验发现仅有At3g51960能部分互补L22-8的荧光信号,表明At3g51960基因的表达影响了CYP82C4对缺铁胁迫的响应。本研究进一步扩展了植物吸收利用铁的分子调控网络,为分子育种工作提供了指导。  相似文献   

13.
Iron (Fe) deficiency is a serious agricultural problem, especially in calcareous soils, which are distributed worldwide. Poplar trees are an important biomass plant, and overcoming Fe deficiency in poplars will increase biomass productivity worldwide. The poplar Fe-deficiency response and the genes involved in poplar Fe homeostasis remain largely unknown. To identify these genes and processes, we cultivated poplar plants under Fe-deficient conditions, both in calcareous soil and hydroponically, and analyzed their growth rates, leaf Soil and Plant Analyzer Development (SPAD) values, and metal concentrations. The data clearly showed that poplars have notable growth defects in both calcareous soil and a Fe-deficient hydroponic culture. They exhibited serious chlorosis of young leaves after 3 weeks of Fe-deficient hydroponic culture. The Fe concentrations in old leaves with high SPAD values were markedly lower in Fe-deficient poplars, suggesting that poplars may have good translocation capability from old to new leaves. The Zn concentration in new leaves increased in Fe-deficient poplars. The pH of the hydroponic solution decreased in the Fe-deficient culture compared to the Fe-sufficient culture. This finding shows that poplars may be able to adjust the pH of a culture solution to better take up Fe. We also analyzed the expression of Fe homeostasis-related genes in the roots and leaves of Fe-sufficient and Fe-deficient poplars. Our results demonstrate that PtIRT1, PtNAS2, PtFRO2, PtFRO5, and PtFIT were induced in Fe-deficient roots. PtYSL2 and PtNAS4 were induced in Fe-deficient leaves. PtYSL3 was induced in both Fe-deficient leaves and roots. These genes may be involved in the Fe uptake and/or translocation mechanisms in poplars under Fe-deficient conditions. Our results will increase a better understanding of the Fe-deficiency response of poplars and hence improve the breeding of Fe-deficiency-tolerant poplars for improved biomass production, the greening of high pH soils, and combatting global warming.  相似文献   

14.
ABSTRACT

Indian mustard (Brassica juncea Czern) is a promising species for the phytoextraction of zinc (Zn), but the effectiveness of this plant can be limited by iron (Fe) deficiency under Zn-contaminated conditions. Our objectives were to determine the effects of root-applied Fe and Zn on plant growth, accumulation of Zn in plant tissues, and development of nutrient deficiencies for B. juncea. In the experiment, B. juncea was supplied 6 levels of iron ethylenediamine dihydroxyphenylacetic acid (Fe-EDDHA; 0.625 to 10.0 mg L?1) and two levels of Zn (2.0 and 4.0 mg L?1) for 3 weeks in a solution-culture experiment. Nutrient solution pH decreased with decreasing supply of Fe and increasing supply of Zn in solution, indicating that B. juncea may be an Fe-efficient plant. If plants were supplied 2.0 mg Zn L?1, plant growth was stimulated by increases in Fe supply, but plant growth was not influenced by Fe treatments if plants were supplied 4.0 mg Zn L?1. Zinc concentration in roots and shoots was suppressed by increasing levels of Fe in solution. Leaf concentrations of Cu, Mn, and P were suppressed also as Fe supply in solutions increased. Iron additions to the nutrient solution were not effective at increasing the Zn-accumulation potential of B. juncea unless plants were supplied the higher level of Zn in solution culture. Even under these conditions, Fe additions were effective only if supplied at low levels in solution culture (1.25 mg Fe L?1). Results suggest that Fe fertility has limited potential for enhancing Zn phytoextraction by B. juncea, even if plants suffer a suppression in growth from Fe deficiency.  相似文献   

15.
《Journal of plant nutrition》2013,36(10-11):1985-1996
Abstract

A field experiment was carried out in a drip‐irrigated orchard of Clementine (Citrus clementina Ort. ex. Tan) grafted on Troyer citrange (C. sinensis × Poncirus trifoliata) rootstock located in the Valencian Citrus area (Spain). The trees received a single iron (Fe) EDDHA (ethylene diamine diorthohydroxyphenyl acetate) rate (3 g Fe tree?1) supplied in different application frequencies from April to September (8‐, 4‐, 2‐, or 1‐week intervals). Leaf chlorophyll (Chl) concentrations were estimated every month by using an SPAD‐502 meter. The foliar contents of Fe were also evaluated with time. Mineral composition of leaves, total Chl concentration, yield, and fruit quality were also evaluated at the end of the assay. SPAD readings, Chl, N, K, Mg, Fe, and Mn concentration in leaves increased as a result of Fe application. The concentration of Zn, however, significantly decreased in comparison to the control trees. Iron treatment increased yield and some of the fruit quality parameters, like total juice, sugar, and acid contents. Iron application frequency had not a consistent effect on the concentrations of macro and micronutrients in leaves, yield, and fruit quality. The highest values of SPAD readings and the leaf Chl content were obtained when Fe was applied at 4‐week intervals along the year. These results suggest that soil Fe‐EDDHA application with a moderate frequency could be recommended to the Citrus farmers in the area for a more rational Fe application along the growth cycle in Citrus orchards.  相似文献   

16.
The effect of soil and foliar application of different iron (Fe) compounds (FeSO4, Fe‐EDTA, Fe‐EDDS, and Fe‐EDDHA) on nutrient concentrations in lettuce (Lactuca sativa cv. Australian gelber) and ryegrass (Lolium perenne cv. Prego) was investigated in a greenhouse pot experiment using quartz sand as growth medium. Soil application was performed in both the acidic and alkaline pH range, and foliar application to plants grown in the alkaline sand only. Lettuce growth was depressed by Fe deficiency in the alkaline sand, whereas the treatments had no effect on ryegrass growth. Soil‐applied Fe compounds raised the Fe concentrations in lettuce. This was especially true for the Fe chelates, which also increased yields. Soil‐applied Fe compounds had no statistically significant effect on Fe concentrations in ryegrass. Concentrations of manganese (Mn) in lettuce were equally decreased by all soil‐applied chelates. In the alkaline sand, soil application of Fe‐EDDHA elevated copper (Cu) and depressed zinc (Zn) concentrations in lettuce. The chelates increased Zn concentration in ryegrass. Foliar application of Fe‐EDDS increased Fe concentrations in lettuce and in ryegrass most. Fe‐EDDHA depressed Mn and Zn concentrations in lettuce more than other Fe compounds, suggesting the existence of another mechanism, in addition to Fe, that transmits a corresponding signal from shoot to roots with an impact on uptake of micronutrients.  相似文献   

17.
Summary Microbial biomass in the upper 7 cm of soil and needle decomposition on the forest floor were measured seasonally for 10 months in a mountain hemlock (Tsuga mertensiana) old-growth forest and in a regrowth forest after Phellinus weirii, a root-rot pathogen infection, had caused disturbance. The microbial biomass was higher in the old-growth forest soil than in the regrowth forest soil. However, T. mertensiana needle decomposition rates were higher in the regrowth than in the old-growth forest. Total N, Ca, Fe, Cu, and Zn concentrations in needles increased during the 1st year of decomposition in both the old and the regrowth forests, but P, K, Mg, Mn, and B concentrations decreased. N, P, K, Mg, Cu, and Zn concentrations were lower in regrowth than in old-growth decomposing needles. During mineralization, needles in the regrowth forests released more N, P, and K as a result of higher needle decomposition rates. Our results suggest that higher needle decomposition rates increased the mineralization of N, P, and K, which may lead to increased soil fertility and faster tree growth rates in the regrowth forest.  相似文献   

18.
Nitrogen (N) is critical for micronutrient biofortification in wheat grain and is essential for a series of nitrogenous compounds biosynthesis. This study aims to assess the role of improved N supply in iron (Fe) and zinc (Zn) enrichment and expression of genes related to Zn and Fe chelation and transport in winter wheat. Potting and hydroponic culture experiments were conducted to study the effect of increasing N application on Zn and Fe uptake and translocation from roots to leaves and the temporal and spatial gene expression profiles of the NICOTIANAMINE SYNTHASE (NAS) genes in wheat. Plants were grown with low, medium and high N supply levels. The results showed that higher N application increased Fe and Zn content in leaves, and decreased Fe and Zn content in root compared with the lower N supply. High N application also increased the distribution of Fe and Zn from roots to leaves. Expression analysis showed that increased N application resulted in up-regulation of two wheat NAS genes, TaNAS1 and TaNAS2. Highly positive response between NAS genes and increasing N application indicated that abundance nicotianamine (NA) resulted from highly expressed NAS genes might involve in the chelation of Fe and Zn in the phloem and favor Fe and Zn uptake and accumulation in wheat leaves.  相似文献   

19.
Regenerable callus cultures of Zea mays L. (maize) and organogenic callus cultures of Giycine max (L.) Merr. (soybean) were grown on media with decreased levels of N, P, K or Fe for three successive transfers on the same concentration. The soybean callus was generally more sensitive than maize to decreased levels of the elements. After three transfers soybean callus growth was completely inhibited with 1/3 of the normal Fe level and was reduced to 6 to 19% of the control growth with 1/30 of the normal medium levels of N, P or K. The maize callus growth was most sensitive to decreases in N with complete growth inhibition with 1/30 of the normal N concentration. When the P, K or Fe concentrations were 1/30 of normal, the maize callus growth was from 18 to 36% of the control. In most cases the growth decreased progressively from the first to the third transfer on the deficient media.

These studies define the N, P, K and Fe concentrations which can be used for screening the maize and soybean callus systems for genotypic differences and for mutants which might show more efficient element usage or uptake. The studies also show that the levels of these elements in the normal culture media cannot be lowered to one‐third the normal level and still maintain optimal growth.  相似文献   

20.
Zhao  Yingnan  Zhang  Minshuo  Yang  Wei  Di  Hong J.  Ma  Li  Liu  Wenju  Li  Bowen 《Journal of Soils and Sediments》2019,19(10):3597-3607
Purpose

Phosphorus (P) and potassium (K) are two important essential nutrient elements for plant growth and development but their availability is often limited in calcareous soils. The objective of this study was to determine the effects of applying microbial inoculants (MI, containing effective strains of Bacillus megaterium and Bacillus mucilaginous) on the availability of P and K, plant growth, and the bacterial community in calcareous soil.

Materials and methods

A greenhouse experiment was conducted to explore the effects of the addition of MI (control: without MI addition; treatment: with MI addition at the rate of 60 L ha?1) on the concentrations of P and K in soil and plant, soil bacterial community diversity and composition, and chili pepper (Capsicum annuum L.) growth.

Results and discussion

The results showed that MI inoculation significantly increased the fruit yields by 28.5% (p?<?0.01), available P and K in the rhizosphere soil by 32.1% and 28.1% (p?<?0.05), and P and K accumulation in the whole plants by 40.9% and 40.2%, respectively (p?<?0.05). Moreover, high-throughput sequencing revealed that Proteobacteria, Acidobacteria, Bacteroidetes, Chloroflexi, and Gemmatimonadetes were the dominant phyla of soil bacteria. MI application did not significantly impact the diversity and composition of soil bacterial communities, but increased relative abundances of bacterial genera Flavobacterium responsible for promoting root development across growing stages (p?<?0.05), and changed the soil bacterial community structure associated closely with soil properties of available P, K, and pH in soil.

Conclusions

The application of MI improved the bioavailability of P and K and plant growth due to its impact on the soil bacterial community structure.

  相似文献   

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