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两个玉米品种灌浆期叶片氮转移效率差异的分子机制 被引量:8
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作者 郭松 孙文彦 +5 位作者 顾日良 王章奎 陈范骏 赵秉强 袁力行 米国华 《植物营养与肥料学报》 CAS CSCD 北大核心 2018年第5期1149-1157,共9页
【目的】提高玉米氮效率是实现农业高产高效的重要措施,而花后叶片的衰老和玉米的氮效率密切相关。为此,在田间条件下研究了叶片衰老过程与氮转移效率的关系,尤其是不同玉米品种氮转移效率差异的分子机制。【方法】田间试验选择中度绿... 【目的】提高玉米氮效率是实现农业高产高效的重要措施,而花后叶片的衰老和玉米的氮效率密切相关。为此,在田间条件下研究了叶片衰老过程与氮转移效率的关系,尤其是不同玉米品种氮转移效率差异的分子机制。【方法】田间试验选择中度绿熟玉米品种先玉335 (XY335)和持绿玉米品种NE9为供试作物,设施N45,120和240 kg/hm^2三个水平。测定了玉米吐丝期以及吐丝后7 d、14 d、21 d、28 d、35 d、42 d和成熟期茎、叶、籽粒氮含量和花后绿叶面积,吐丝期及吐丝后14 d、28 d、42 d和成熟期叶片氮浓度,以及吐丝期和灌浆期叶片中SPAD、可溶性蛋白浓度、游离氨基酸浓度和ZmSee2β(玉米叶片中协同衰老的蛋白酶–豆荚蛋白的基因)基因表达的变化,计算了叶片氮转移效率。【结果】品种XY335具有比品种NE9更高的产量,随施氮量的增加品种XY335的籽粒产量较品种NE9增加更加显著。虽然两个品种的收获指数没有差异,但是品种XY335的氮素收获指数高于品种NE9,并且品种XY335营养器官的氮转移效率高于品种NE9,整体高8.28个百分点(P <0.05)。品种XY335叶片氮转移效率比品种NE9高出12.89个百分点,而二者茎的氮转移效率没有差异。品种XY335花后叶片中氮浓度开始降低的时间早于品种NE9,在低氮条件下尤为明显。成熟期时,三个氮水平处理下品种XY335叶片中的氮含量均低于品种NE9。从吐丝期到灌浆期,品种XY335叶片中可溶性蛋白的降解率高于品种NE9,其中N45处理下高16.5个百分点,N120处理下高6.2个百分点。从吐丝期到灌浆期叶片中游离氨基酸的浓度不断增加,而品种XY335叶片中的增加幅度大于品种NE9。从吐丝期到灌浆期叶片中ZmSee2β基因表达量增加,而随施氮量减少品种XY335叶片中表达量高于品种NE9,表明品种XY335叶片中蛋白降解得更加迅速。【结论】相对于绿熟品种NE9,品种XY335具有籽粒产量高和籽粒氮素积累强的特点。这不仅由于吐丝后品种XY335具有较强的氮素吸收能力,而且因为品种XY335有更高的叶片氮转移效率。品种XY335叶片氮转移效率高可能是因为控制蛋白质降解的ZmSee2β基因表达能力强,提高了叶片中蛋白质的降解速度。 展开更多
关键词 玉米 产量 籽粒氮浓度 氮转移 基因表达
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不同耐密性玉米品种地上部与根系性状的协同效应 被引量:7
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作者 吴斌 任伟 +4 位作者 班祥奔 王贺 米国华 陈范骏 潘清春 《植物营养与肥料学报》 CAS CSCD 北大核心 2023年第1期57-67,共11页
【目的】阐明不同玉米品种在增密种植条件下地上部性状和根系构型的协同响应,为耐密性玉米的遗传改良提供理论支撑。【方法】以我国18个主栽玉米品种为试材,设置2个种植密度(6万株/hm^(2)和7.5万株/hm^(2)),分别在吐丝期和成熟期测定14... 【目的】阐明不同玉米品种在增密种植条件下地上部性状和根系构型的协同响应,为耐密性玉米的遗传改良提供理论支撑。【方法】以我国18个主栽玉米品种为试材,设置2个种植密度(6万株/hm^(2)和7.5万株/hm^(2)),分别在吐丝期和成熟期测定14个地上部农艺性状和8个根系构型性状,利用方差分析与回归分析等统计方法解析耐密高产品种的地上地下协同关系。【结果】随着种植密度的增加,玉米单株地上部和根系生物量及籽粒产量等指标下降,群体地上部生物量和籽粒产量显著提高。根据两个种植密度下的群体产量,受试品种中6个被划分为高低密度下均高产的双高型(DH);3个品种为仅高密度下高产的高密高产型(HH);7个品种为高低密度下均低产的双低型(DL);2个品种为仅低密度下高产的低密高产型(HL),供试品种主要为双高型(DH)和双低型(DL)。在高密度下,DH品种比DL品种具有更多的吐丝前干物质累积量和更高的收获指数,DH品种在减少根系干重、节根数和根系宽度的同时,保持了较高的根系表面积与总根长。综合两个种植密度下地上部与根系性状对产量的贡献,发现吐丝期茎秆干物质、成熟期籽粒干物质、收获指数对产量具有正向贡献效应,根系的节根数对于产量具有负向贡献。【结论】耐密高产的双高型玉米品种可有效协调地上部和地下部的关系,使根中的有限碳资源合理分配,通过减少节根数、增加根系长度和根系吸收表面积,合理分配有限的碳资源,提高养分吸收能力以满足地上部需求;同时,通过增加地上部吐丝前干物质积累及其吐丝后干物质向籽粒的分配,协同植株源库关系,进而提高产量。 展开更多
关键词 耐密性玉米品种 种植密度 地上部性状 根系性状 产量 产量构成因素
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Interaction effect of nitrogen form and planting density on plant growth and nutrient uptake in maize seedlings 被引量:14
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作者 WANG Peng WANG Zhang-kui +5 位作者 SUN Xi-chao MU Xiao-huan chen Huan chen fan-jun Yuan Li-xing MI Guo-hua 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2019年第5期1120-1129,共10页
High planting density is essential to increasing maize grain yield.However,single plants suffer from insufficient light under high planting density.Ammonium(NH_4^+)assimilation consumes less energy converted from radi... High planting density is essential to increasing maize grain yield.However,single plants suffer from insufficient light under high planting density.Ammonium(NH_4^+)assimilation consumes less energy converted from radiation than nitrateIt is hypothesized that a mixed NO_3~–/NH_4^+supply is more important to improving plant growth and population productivity under high vs.low planting density.Maize plants were grown under hydroponic conditions at two planting densities(low density:only).A significant interaction effect was found between planting density and N form on plant biomass.Compared to nitrate only,75/25NO_3~–/NH_4^+increased per-plant biomass by 44%under low density,but by 81%under high density.Treatment with 75/25NO_3~–/NH_4^+increased plant ATP,photosynthetic rate,and carbon amount per plant by 31,7,and 44%under low density,respectively,but by 51,23,and 95%under high density.Accordingly,carbon level per plant under 75/25NO_3~–/NH_4^+was improved,which increased leaf area,specific leaf weight and total root length,especially for high planting density,increased by 57,17 and 63%,respectively.Furthermore,under low density,75/25NO_3~–/NH_4^+increased nitrogen uptake rate,while under high density,75/25NO_3~–/NH_4^+increased nitrogen,phosphorus,copper and iron uptake rates.By increasing energy use efficiency,an optimum NO_3~–/NH_4^+ratio can improve plant growth and nutrient uptake efficiency,especially under high planting density.In summary,an appropriate supply of NH_4^+in addition to nitrate can greatly improve plant growth and promote population productivity of maize under high planting density,and therefore a mixed N form is recommended for high-yielding maize management in the field. 展开更多
关键词 MAIZE PLANTING density NO3^-/NH4^+ ratio carbon NUTRIENT UPTAKE ROOT morphology
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Genetic Improvement of Root Growth Contributes to Efficient Phosphorus Acquisition in maize (Zea mays L.) 被引量:8
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作者 ZHANG Yi-kai chen fan-jun +5 位作者 chen Xiao-chao LONG Li-zhi GAO Kun YUAN Li-xing ZHANG Fu-suo MI Guo-hua 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2013年第6期1098-1111,共14页
Maize plants adapt to low phosphorus (P) stress by increasing root growth. It is of importance to know the extent to which genetic improvement of root growth can enhance P acquisiton. In the present study, the contr... Maize plants adapt to low phosphorus (P) stress by increasing root growth. It is of importance to know the extent to which genetic improvement of root growth can enhance P acquisiton. In the present study, the contribution of root growth improvement to efficient P acquisition was evaluated in two soils using T149 and T222, a pair of near isogenic maize testcrosses which were derived from a backcross BC 4 F 3 population. T149 and T222 showed no difference in shoot biomass and leaf area under normal growth conditions, but differed greatly in root growth. T149 had longer lateral roots and a larger root surface area compared to T222. In calcareous soil, when P was insufficient, i.e., when P was either supplied as KH 2 PO 4 at a concentration of 50 mg P kg-1 soil, or in the form of Phy-P, Ca3-P or Ca10-P, a 43% increase in root length in T149 compared to T222 resulted in an increase in P uptake by 53%, and shoot biomass by 48%. In acid soil, however, when P supply was insufficient, i.e., when P was supplied as KH 2 PO 4 at a concentration of 100 mg P kg-1 soil, or in the form of Phy-P, Fe-P or Al-P, a 32% increase in root length in T149 compared to T222 resulted in an increase in P uptake by only 12%, and shoot biomass by 7%. No significant differences in the exudation of organic acids and APase activity were found between the two genotypes. It is concluded that genetic improvement of root growth can efficiently increase P acquisition in calcareous soils. In acid soils, however, improvements in the physiological traits of roots, in addition to their size, seem to be required for efficient P acquisition. 展开更多
关键词 P efficiency ROOTS low phosphorus calcareous soil acid soil MAIZE
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Cell Production and Expansion in the Primary Root of Maize in Response to Low-Nitrogen Stress 被引量:5
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作者 GAO Kun chen fan-jun +1 位作者 YUAN Li-xing MI Guo-hua 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2014年第11期2508-2517,共10页
Maize plants respond to low-nitrogen stress by enhancing root elongation. The underlying physiological mechanism remains unknown. Seedlings of maize (Zea mays L., cv. Zhengdan 958) were grown in hydroponics with the... Maize plants respond to low-nitrogen stress by enhancing root elongation. The underlying physiological mechanism remains unknown. Seedlings of maize (Zea mays L., cv. Zhengdan 958) were grown in hydroponics with the control (4 mmol L-1) or low-nitrogen (40 μmol L-1) for 12 d, supplied as nitrate. Low nitrogen enhanced root elongation rate by 4.1-fold, accompanied by increases in cell production rate by 2.2-fold, maximal elemental elongation rate (by 2.5-fold), the length of elongation zone (by 1.5-fold), and ifnal cell length by 1.8-fold. On low nitrogen, the higher cell production rate resulted from a higher cell division rate and in fact the number of dividing cells was reduced. Consequently, the residence time of a cell in the division zone tended to be shorter under low nitrogen. In addition, low nitrogen increased root diameter, an increase that occurred speciifcally in the cortex and was accompanied by an increase in cell number. It is concluded that roots elongates in response to low-nitrogen stress by accelerating cell production and expansion. 展开更多
关键词 cell length elemental expansion kinematic analysis root diameter root elongation Zea mays L
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Varietal Differences in Plant Growth, Phosphorus Uptake and Yield Formation in Two Maize Inbred Lines Grown Under Field Conditions 被引量:5
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作者 chen fan-jun LIU Xiang-sheng MI Guo-hua 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2012年第10期1738-1743,共6页
Selection for phosphorus (P)-efficient genotypes and investigation of physiological mechanisms for P-use efficiency in maize has mainly been conducted at the seedling stage under controlled greenhouse conditions. Fe... Selection for phosphorus (P)-efficient genotypes and investigation of physiological mechanisms for P-use efficiency in maize has mainly been conducted at the seedling stage under controlled greenhouse conditions. Few studies have analyzed characteristics of plant growth and yield formation in response to low-P stress over the whore growth period under field conditions. In the present study, two maize inbred lines with contrasting yield performances under low-P stress in the field were used to compare plant growth, P uptake and translocation, and yield formation. Phosphorus accumulation in the P-efficient line 154 was similar to that of line 153 under high-P. Under low-P, however, P uptake in line 154 was three times greater than that in line 153. Correspondingly, P-efficient line 154 had a significantly higher yield than P-inefficient line 153 under low-P conditions (Olsen-P=1.60 mg kg-1), but not under high-P conditions (Olsen-P=14.98 mg kg-1). The yield difference was mainly due to differences in the number of ears per m2, that is, P-efficient line 154 formed many more ears under low-P conditions than P-inefficient line 153. Ear abortion rate was 53% in the P-inefficient line 153, while in line 154, it was only 30%. Low-P stress reduced leaf appearance, and delayed anthesis and the silking stage, but increased the anthesis-silking interval (ASI) to a similar extent in both lines. The maximum leaf area per plant at silking stage was higher in P-efficient line 154 than in P-inefficient line 153 under both P conditions. It is concluded that low-P stress causes intense intraspecific competition for limited P resources in the field condition which gives rise to plant-to- plant non-uniformity, resulting in a higher proportion of barren plants. As soon as an ear was formed in the plant, P in the plant is efficiently reutilized for kernel development. 展开更多
关键词 ear abortion leaf growth low phosphorus MAIZE phosphorus uptake
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Fine Root Patterning and Balanced Inorganic Phosphorus Distribution in the Soil Indicate Distinctive Adaptation of Maize Plants to Phosphorus Deficiency 被引量:4
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作者 ZHANG Yu YU Peng +3 位作者 PENG Yun-Feng LI Xue-Xiun chen fan-jun LI Chun-Jian 《Pedosphere》 SCIE CAS CSCD 2012年第6期870-877,共8页
Plants have diverse strategies to cope with phosphorus (P) deficiency. To better understand how maize responds to P deficiency, a field experiment with two P levels, 0 and 100 kg P205 ha-1 (P0 and P100, respectivel... Plants have diverse strategies to cope with phosphorus (P) deficiency. To better understand how maize responds to P deficiency, a field experiment with two P levels, 0 and 100 kg P205 ha-1 (P0 and P100, respectively), was carried out as a part of a long-term Pfertilizer field trial. Plant and soil analyses showed that P-deficient maize reduced its growth rate, increased P use efficiency, and formed more thin roots with the diameter less than 0.6 mm at jointing and silking stages, compared to the plants treated with P100. Further, there were no differences in major inorganic P fractions (Ca2-P, Cas-P, Al-P, Fe-P, occluded P and Ca10-P) between the rhizospheric and bulk soils at each harvest, even when soil Olsen-P was only 1.38 mg kg-1. These results suggested that maize responded to P deficiency by reducing the internal P demand for growth and increasing P acquisition ability by favorable root morphological alteration at low carbon cost. 展开更多
关键词 inorganic phosphorus fractions phosphorus starvation RHIZOSPHERE root length root morphology
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Local nitrogen application increases maize post-silking nitrogen uptake of responsive genotypes via enhanced deep root growth 被引量:3
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作者 chen Zhe REN Wei +7 位作者 YI Xia LI Qiang CAI Hong-guang Farhan ALI YUAN Li-xing MI Guo-hua PAN Qing-chun chen fan-jun 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2023年第1期235-250,共16页
Nitrogen(N)is unevenly distributed throughout the soil and plant roots proliferate in N-rich soil patches.However,the relationship between the root response to localized N supply and maize N uptake efficiency among di... Nitrogen(N)is unevenly distributed throughout the soil and plant roots proliferate in N-rich soil patches.However,the relationship between the root response to localized N supply and maize N uptake efficiency among different genotypes is unclear.In this study,four maize varieties were evaluated to explore genotypic differences in the root response to local N application in relation to N uptake.A split-root system was established for hydroponically-grown plants and two methods of local N application(local banding and local dotting)were examined in the field.Genotypic differences in the root length response to N were highly correlated between the hydroponic and field conditions(r>0.99).Genotypes showing high response to N,ZD958,XY335 and XF32D22,showed 50‒63%longer lateral root length and 36‒53%greater root biomass in N-rich regions under hydroponic conditions,while the LY13 genotype did not respond to N.Under field conditions,the root length of the high-response genotypes was found to increase by 66‒75%at 40‒60 cm soil depth,while LY13 showed smaller changes in root length.In addition,local N application increased N uptake at the post-silking stage by 16‒88%in the high-response genotypes and increased the grain yield of ZD958 by 10‒12%.Moreover,yield was positively correlated with root length at 40‒60 cm soil depth(r=0.39).We conclude that local fertilization should be used for high-response genotypes,which can be rapidly identified at the seedling stage,and selection for“local-N responsive roots”can be a promising trait in maize breeding for high nitrogen uptake efficiency. 展开更多
关键词 genotypic difference local nitrogen MAIZE nitrogen efficient root
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Identification of Quantitative Trait Loci for Phytic Acid Concentration in Maize Grain Under Two Nitrogen Conditions 被引量:3
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作者 LIU Jian-chao HUANG Ya-qun +4 位作者 MAWen-qi ZHOU Jin-feng BIAN Fen-ru chen fan-jun MI Guo-hua 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2013年第5期765-772,共8页
Phytic acid (PA) is the main storage form of phosphorus (P) in seeds. It can form insoluble complexes with microelements, thereby reducing their bioavailability for animals. Identification of quantitative trait lo... Phytic acid (PA) is the main storage form of phosphorus (P) in seeds. It can form insoluble complexes with microelements, thereby reducing their bioavailability for animals. Identification of quantitative trait loci (QTLs) associated with grain PA concentration (PAC) is essential to improve this trait without affecting other aspects of grain nutrition such as protein content. Using a recombinant inbred line (RIL) population, we mapped QTL for grain PAC, as well as grain nitrogen concentration (NC) and P concentration (PC) in maize under two N conditions in 2 yr. We detected six QTLs for PAC. The QTL for PAC on chromosome 4 (phi072-umc 1276) was identified under both low-N and high-N treatments, and explained 13.2 and 15.4% of the phenotypic variance, respectively. We identified three QTLs for grain NC, none of which were in the same region as the QTLs for PAC. We identified two QTLs for PC in the low-N treatment, one of which (umc1710-umc2197) was in the same interval as the QTL for PAC under high-N conditions. These results suggested that grain PAC can be improved without affecting grain NC and inorganic PC. 展开更多
关键词 MAIZE NITROGEN PHOSPHORUS phytic acid QTL
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Phenotypic characterization and genetic mapping of the dwarf mutant m34 in maize 被引量:2
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作者 LI Jie-ping Soomro Ayaz Ali +3 位作者 XIAO Gui chen fan-jun YUAN Li-xing GU Ri-liang 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2019年第5期948-957,共10页
Plant height is one of the most important agronomic traits associated with yield in maize.In this study,a gibberellins(GA)-insensitive dwarf mutant,m34,was screened from inbred line Ye478 by treatment with the chemica... Plant height is one of the most important agronomic traits associated with yield in maize.In this study,a gibberellins(GA)-insensitive dwarf mutant,m34,was screened from inbred line Ye478 by treatment with the chemical mutagen ethylmethanesulfonate(EMS).Compared to Ye478,m34 showed a dwarf phenotype with shorter internodes,and smaller leaf length and width,but with similar leaf number.Furthermore,m34 exhibited smaller guard cells in internodes than Ye478,suggesting that smaller cells might contribute to its dwarf phenotype.Genetic analysis indicated that the m34 dwarf phenotype was controlled by a recessive nuclear gene.An F2 population derived from a cross between m34 and B73 was used for mutational gene cloning and this gene was mapped to a chromosome region between umc2189 and umc1553 in chromosome 1 bin1.10,which harbored a previously identified dwarf gene Zm VP8.Sequencing analysis showed a nucleotide substitution(G1606 to A1606)in the sixth exon of ZmVP8,which resulted in an amino acid change(E531 to K531)from Ye478 to m34.This amino acid change resulted in anα-helix changing to aβ-sheet in the secondary protein structure and the‘SPEC’domain changed to a‘BOT1NT’domain in the tertiary protein structure.Taken together,these results suggested that m34 is a novel allelic mutant originally derived from Ye478 that is useful for further ZmVP8 functional analysis in maize. 展开更多
关键词 DWARF PLANT HEIGHT GA APPLICATION ZmVP8 MAIZE
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Transcriptional Regulation of Expression of the Maize Aldehyde Dehydrogenase 7 Gene (ZmALDH7B6) in Response to Abiotic Stresses 被引量:2
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作者 AN Xia DUAN Feng-ying +3 位作者 GUO Song chen fan-jun YUAN Li-xing GU Ri-liang 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2014年第9期1900-1908,共9页
Aldehyde dehydrogenases(ALDHs) represent a large protein family, which includes several members that catalyze the oxidation of an aldehyde to its corresponding carboxylic acid in plants. Genes encoding members of th... Aldehyde dehydrogenases(ALDHs) represent a large protein family, which includes several members that catalyze the oxidation of an aldehyde to its corresponding carboxylic acid in plants. Genes encoding members of the ALDH7 subfamily have been suggested to play important roles in various stress adaptations in plants. In this study, quantitative RT-PCR analysis revealed that a maize ALDH7 subfamily member(ZmALDH7B6) was constitutively expressed in various organs, including roots, leaves, immature ears, tassels, and developing seeds. The abundance of ZmALDH7B6 mRNA transcripts in maize roots was increased by ammonium, NaCl, and mannitol treatments. To further analyze tissue-specific and stress-induced expression patterns, the 1.5-kb 5′-flanking ZmALDH7B6 promoter region was fused to the β-glucuronidase(GUS) reporter gene and introduced into maize plants. In roots of independent transgenic lines, there was significant induction of GUS activity in response to ammonium supply, confirming ammonium-dependent expression of ZmALDH7B6 at the transcript level. Histochemical staining showed that GUS activity driven by the ZmALDH7B6 promoter was mainly localized in the vascular tissues of maize roots. These results suggested that ZmALDH7B6 is induced by multiple environmental stresses in maize roots, and may play a role in detoxifying aldehydes, particularly in vascular tissue. 展开更多
关键词 abiotic stress aldehyde dehydrogenase gene expression PROMOTER transgenic maize
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