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1.
重金属如何影响水稻(Oryza sativa L.)的生长及产量一直是粮食生产中的研究重点。利用盆栽实验,首次比较了砷(As)对三个品系(杂交稻、常规稻和糯稻)共20个品种水稻生长的影响,以期选定适合在As污染区种植的水稻品种。结果显示,不同品系水稻在As污染土壤中的生长显著不同,杂交稻的生长优于糯稻和常规稻,但糯稻和常规稻差异不显著,表明杂交稻更适宜在砷污染土壤种植。同一品系内不同品种水稻的生长也有较大差异,杂交稻II优804的干物质积累量最高,每株达到0.055g。  相似文献   

2.
不同品种水稻对砷的吸收转运及其健康风险研究   总被引:4,自引:0,他引:4  
为了比较不同品种水稻砷的积累特点,筛选可食用部分低砷积累水稻品种,研究通过盆栽试验,分析了江苏省常见的11个水稻品种根、茎、叶、谷壳和籽粒中的砷含量、砷的转运系数和根表铁膜厚度及其对砷固持的影响,并预估了不同品种水稻籽粒砷的健康风险。结果表明,不同品种水稻各部位的砷含量差异显著(P <0.05),泰瑞丰5号籽粒中的砷含量最高,而镇稻16号籽粒中的砷含量最低,后者大约是前者的一半。砷在水稻相邻部位的转运系数存在品种间差异(P <0.05),砷在水稻叶与籽粒间的转运系数最大的水稻品种是泰瑞丰5号,最小的是镇稻16号。根表铁膜量在不同品种间差异显著(P <0.05),其中淮稻6号的铁膜量是武运粳23的2.17倍。根表铁膜量与铁膜中的砷含量及水稻根叶中的砷含量均呈显著正相关关系(P <0.05)。不同水稻品种间的目标风险指数(THQ)也存在显著差异,其中泰瑞丰5号的THQ值最高,而镇稻16号的THQ值最低,两者相差0.99倍。研究表明,镇稻16号由于较低的砷吸收和转运能力,在中低砷污染土壤上种植风险较小,而泰瑞丰5号风险最大。  相似文献   

3.
水稻土镉污染与水稻镉含量相关性研究   总被引:1,自引:0,他引:1  
采用盆栽试验的方法,考察了水稻土中重金属镉(Cd)的浓度对水稻生长及Cd富集的影响以及Cd在水稻植株的分布情况,并进一步研究了糙米(可食部位)对Cd的富集量与土壤中Cd总量的关系。结果表明,在各个浓度Cd胁迫下,根、茎叶、稻壳、糙米相比,2个品种水稻都是根累积的Cd含量要高于茎叶和稻壳、糙米,即根〉茎叶〉稻壳〉糙米;在水稻的茎叶细胞中,Cd主要分布在细胞壁,细胞可溶性成分,细胞器Cd的分布量较少,即细胞壁〉可溶性部分〉细胞器及膜部分;随Cd浓度增加,茎叶中的Cd积累量极显著增加,各细胞组分中的Cd含量均显著增加;根据国标GB 2762—2005对大米中Cd的限量标准(≤0.2 mg.kg^-1),水稻土土壤总Cd临界值分别为2.0 mg.kg^-(1博优225)、3.1 mg.kg^-(1矮糯)。因此,在污染土壤上宜选种食用部位重金属积累低的水稻品种,以减少人类吸收重金属的风险。  相似文献   

4.
以酸性矿山废水污染的含有多种重金属的农田土壤为供试土壤,通过盆栽实验,研究不同水稻品种,不同类型、不同遗传背景水稻糙米重金属Cd、Cu、Zn的积累差异。结果表明,供试水稻糙米Cd含量为0.006~0.092mg·kg-1,最高值和最低值相差15倍;Cu含量为6.712~27.117mg·kg-1,最高值和最低值相差4倍;Zn含量为28.390~43.296mg·kg-1,最高值和最低值相差不到1倍。常规稻和杂交稻糙米的Cd、Cu、Zn含量差异不明显。三系杂交稻的糙米Cd、Cu含量极显著高于二系杂交稻,而二系杂交稻糙米中Zn含量则显著高于三系杂交稻。不同遗传背景水稻品种糙米Cd、Cu、Zn含量也存在明显差异。相关分析结果表明,糙米中Cu、Cd含量间呈极显著正相关,Cu、Zn含量之间存在显著负相关,而Cd、Zn含量间的相关性不明显。  相似文献   

5.
选取华南地区广泛种植的杂交水稻品种“培杂泰丰”,利用外源添加砷(50 mg·kg-1)的土壤盆栽试验,研究不同施用量的磷硅肥对水稻生长特性和砷积累的影响。结果表明,施用磷硅肥的处理,水稻糙米中砷含量为0.504~0.586 mg·kg-1,低于农业部颁布的粮食中砷限量标准(NY 861—2004)中大米砷限值。相关性分析表明,水稻糙米砷含量与水稻植株的生物量、稻谷千粒重和秸秆中硅/砷摩尔比呈显著负相关,与秸秆中磷/砷摩尔比呈极显著负相关;糙米的砷含量随磷、硅肥的施加而降低。综合分析表明,在华南地区同类中度砷污染土壤中可有效控制砷向水稻籽粒运输累积的磷、硅肥最优施加量及配比为40 mg P·kg-1土、50 mg Si·kg-1土。  相似文献   

6.
中轻度砷污染土壤-水稻体系中砷迁移行为研究   总被引:6,自引:0,他引:6  
通过土-砂根袋培养生物学模拟试验,运用砷形态分级的连续提取方法研究了水稻整个生育时期内砷在中轻度砷污染土壤-氧化性根际-水稻体系中的时空分布规律。结果表明:(1)该品种水稻(远诱一号)生长旺期(第三生长时期和第四生长时期)由于根系活化作用产生明显根际效应,根际土壤中各砷形态总量、无定形态砷含量均显著高于非根际土(p0.05),而有效性最低的残渣态则低于非根际土。(2)水稻根表铁氧化物膜(简称:铁膜)主要以无定型态铁和结晶态铁为主(90%),在生长旺盛期老化程度最高,且对砷富集能力与第一时期相比降低60%,与第二时期相比降低10%;根表铁膜对砷的富集作用并不完全随铁膜数量的增减而变化,还与铁膜中铁的组成形态(尤其无定形态铁)密切相关。(3)砷在土壤-根际-水稻(远诱一号)体系中迁移规律:砷随铁氧化物的还原由非根际向根际迁移并在氧化性根际富集,由于铁膜的缓冲层作用,砷很少进入作物根系,迁移至地上部的砷含量低于根中砷含量;生育初期(前两个生长时期),水稻根表铁膜主要起富集库作用,具有很强的富集砷能力,但富集的砷易解吸进入作物根系,生育后期(后三个生长时期),铁膜逐渐老化,主要起缓冲层作用,使根系砷含量与生育初期相比降低50%~90%。  相似文献   

7.
采用土-石英砂联合培养的盆栽试验,研究两个不同基因型的水稻根表铁膜的形成情况及其对水稻吸收污灌土中的锌的影响。结果表明,两基因型水稻在不同不分条件下根表铁膜的形成情况不同:淹水条件下形成的铁膜数量最多,高于湿润和干-湿交替,后二者之间差异不明显。不同基因型水稻(金优22与90-68-2)根表铁膜的形成趋势一致,只是数量稍有差异;不同基因型秸秆及籽粒中锌的含量存在差异,不同铁处理的根表铁膜数量、地上部锌含量均不同。  相似文献   

8.
通过4个水稻品种在大田生产条件下的试验,研究分析了水稻植株Cd积累和分布的特点。结果表明,水稻的根系是吸收Cd的主要器官,也是Cd的主要储存场所,无论在水稻分蘖期还是成熟期都很明显;在水稻成熟期,籽粒(糙米)中Cd的含量显著地低于其他器官,水稻植株器官中Cd的分布情况大致为:根〉鞘>叶>茎>糙米,但随着品种的不同而有所变化;根据4个水稻品种在成熟期的植株Cd积累量的分析,9311是植株高累积Cd的水稻品种,Jia-48和Jia-51的糙米中Cd的积累很低;水稻品种间对于Cd的吸收和累积能力有显著的差异,但水稻类型间(粳稻与籼稻间)Cd含量没有显著差异,因此不能按照水稻类型来选育糙米中低Cd积累品种,应针对品种选育出糙米中低Cd积累的高产优质水稻品种。  相似文献   

9.
硒(Ⅳ)预处理下根表铁膜对水稻幼苗吸收和转运汞的影响   总被引:1,自引:0,他引:1  
采用水培试验的方法研究硒(Se,Ⅳ)预处理下,根表铁膜对水稻幼苗吸收和转运汞(Hg)的影响。将水稻幼苗置于Se0和Se0.5(mg L-1)培养液中培养2周,再用4种不同浓度的Fe2+溶液(0、25、50和100 mg L-1即Fe0、Fe25、Fe50、Fe100)诱导水稻根表形成不同数量的铁膜,随后置于0.3 mg L-1的Hg Cl2培养液中继续培养72 h。结果表明,根表铁膜对水稻幼苗生长无显著影响,但硒可以增加其生物量。碳酸氢钠―柠檬酸三钠―连二亚硫酸钠(DCB)提取液(即根表铁膜)中含铁比例(57.3%~96.2%)显著高于水稻幼苗地上部(1.1%~17.5%)和根部(2.7%~25.9%),水稻幼苗的大部分铁被积累至DCB提取液中。随着根表铁膜数量的增加,根和地上部汞含量均显著降低。在Fe50和Fe100处理中,硒的加入显著减少了地上部和根部的汞含量,也显著降低了汞的分配系数,Se(Ⅳ)预处理能明显提高铁膜固持汞的量。综上所述,Se(Ⅳ)预处理和根表铁膜均能阻碍水稻幼苗对汞的吸收和向地上部的转运,减轻水稻汞胁迫,从而起到保护水稻避免汞毒害的作用。本研究对于提高汞污染区稻米质量和保证粮食安全具有一定的现实意义。  相似文献   

10.
通过对镉污染水稻土籼、粳稻分蘖、孕穗、灌浆和收获期根表铁膜的铁、镉和根系镉含量的测定,研究淹水、覆膜、覆草和湿润栽培对籼、粳稻吸镉量的影响。结果表明:1)分蘖期,淹水和覆草栽培籼稻根表铁膜铁含量高于粳稻;覆膜和湿润栽培的粳稻根镉含量高于籼稻。2)孕穗期,淹水和覆膜栽培的籼稻根表铁膜铁含量高于粳稻;湿润栽培的籼稻根表铁膜镉含量高于粳稻;覆膜、覆草和湿润栽培的籼稻根镉含量低于粳稻。3)灌浆期,淹水和湿润栽培籼稻根表铁膜铁含量高于粳稻;覆膜和湿润栽培的籼稻根表铁膜镉含量低于粳稻;根镉含量籼稻低于粳稻。4)收获期,根表铁膜铁含量籼稻低于粳稻;根表铁膜镉含量覆膜栽培的籼稻高于粳稻;根镉含量覆膜、覆草和湿润栽培的籼稻低于粳稻。  相似文献   

11.
A glass house study was conducted to investigate the accumulation of arsenic in tissues of five widely cultivated rice (Oryza sativa L.) varieties of Bangladesh namely BRRI dhan 28, BRRI dhan 29, BRRI dhan 35, BRRI dhan 36, BRRI hybrid dhan 1. Arsenic concentrations were measured in straw, husk and brown and polish rice grain to see the differential accumulation of arsenic among the rice varieties. The results showed that the concentrations of arsenic in different parts of all rice varieties increased significantly (p?<?0.05) with the increase of its concentrations in soil. The rice varieties did not showed significant differences in arsenic accumulation in straw, husk, brown and polish grain when the concentrations of arsenic in soil was low. However, at higher concentrations of arsenic in soil, different rice varieties showed significant differences in the accumulations of arsenic in straw, husk and grain. Significantly higher concentrations of arsenic in straw and husk of rice were observed in BRRI hybrid dhan 1 compared to those of other verities. The BRRI dhan 28 and 35 concentrated significantly higher amount of arsenic in brown and polish rice grain compared to those of other rice varieties. The results imply that arsenic translocation from root to shoot (straw) and husk was higher in hybrid variety compared to those of non-hybrid varieties. Arsenic concentrations in brown and polish rice grain of five rice varieties were found to follow the trend: BRRI dhan 28 > BRRI dhan 35 > BRRI dhan 36 > BRRI dhan 29 > BRRI hybrid dhan 1. The order of arsenic contents in tissues of rice was: straw > husk > brown rice grain > polish rice grain.  相似文献   

12.
Genotypic differences in arsenic (As) and cadmium (Cd) uptake and their translocation within rice seedlings grown in solution culture were investigated. Arsenic uptake and its translocation differed significantly between eight cultivars. The largest shoot and root As concentrations were found in cultivar ‘TN1’ and ‘ZYQ8’, while cultivar ‘JX-17’ had the lowest As concentration. Arsenic concentration in shoot or root of ‘JX-17’ was about 50% of that in cultivar ‘ZYQ8’. Specific Arsenic uptake (SAU) was found significantly different between rice cultivars, which was about 2-fold higher of ‘ZYQ8’ than that of ‘JX-17’. The Cd accumulation also differed significantly between cultivars. Rice cultivar ‘JX-17’ had the highest ability in Cd uptake, but the lowest ability in Cd translocation from root to shoot. The transfer factor (TF) of Cd had an important effect on Cd accumulation by rice seedlings. Arsenic can competitively inhibit P uptake by rice seedlings, P concentrations in shoots, or roots treated with As were significantly lower than those without As addition. However, the concentrations of P and As were positively correlated within these genotypes. The Cd immobilization by cell wall was an important mechanism for Cd detoxification. The cell wall bound 21–44% of total Cd in shoots and 25–59% of total Cd in roots of these tested genotypes. The genotypic differences in As and Cd uptake and translocation within rice seedlings provide the possibility of selecting and breeding genotypes and /or cultivars with reduced levels of As and Cd in rice grains.  相似文献   

13.
Lead arsenate has been used as pesticide. Flooding soils contaminated by lead arsenate could increase plant arsenic and lead and become a human health risk. The objective was to determine the effects of flooding of lead‐arsenate soils on rice grain yield and arsenic and lead accumulation. Bagstown and Chashmont soils with high levels of arsenic and lead were planted with rice in the greenhouse under flooded and nonflooded conditions. Flooding reduced grain yield and increased grain arsenic concentration on both soils. Grain lead decreased with flooding for the Bagstown soil but increased for the Chashmont. Arsenic and lead concentrations in the straw were more than in grain. Grain arsenic and lead levels observed would not be expected to become a human health risk. However, bioavailability studies are needed. The high arsenic and lead in the straw may indirectly become a human health risk because rice straw is used for livestock feed and bedding.  相似文献   

14.
A pot study was conducted to screen different basmati rice varieties for their accumulation of arsenic (As). Different amounts of arsenic (0–800 µg/L) were applied through irrigation water to four basmati rice varieties (Pusa basmati-1121, Pusa Punjab basmati-1509, Punjab basmati-2, and Punjab basmati-3). Highest arsenic concentration was found in the grains of Punjab basmati-3 and lowest in the grains of Pusa Punjab basmati-1509. In all varieties, grain As concentration ranged from 0.038 to 0.288 mg/kg, which was within the permissible limit of 1.0 mg/kg in rice grain recommended by World Health Organization (WHO). In husk, highest As concentration was found in Pusa basmati-1121 and lowest in Punjab basmati-2. Among the four varieties, highest content of As was accumulated in roots and straw of Pusa Punjab basmati-1509, whereas least was accumulated in Punjab basmati-2. The distribution of arsenic among plant parts was found in the order: roots > straw > husk > grain. The mean arsenic concentrations in grain, husk, straw, and root of basmati rice varieties increased with increasing concentration of arsenic in irrigation water. Highest grain yield was obtained in Pusa Punjab basmati-1509 variety due to lesser accumulation of arsenic compared with other varieties. Rice yield, plant height, root weight, straw weight, test weight, effective tiller, and filled grain per panicle decreased with increase in arsenic concentration in irrigated water.  相似文献   

15.
为较全面评价秸秆覆盖旱作水稻栽培模式的生态意义,采用田间试验研究了常规淹水(F)、秸秆覆盖旱作(NF-M)和无覆盖旱作(NF-ZM)3种栽培模式稻田甲烷排放、水稻产量及土壤养分的变化规律。结果表明:3种水稻栽培模式的甲烷排放均集中在水稻生育期的前20d;在水稻生育期内,秸秆覆盖旱作稻田甲烷的排放总量为11.12g·m^-2,显著高于常规淹水稻田的7.78g·m^-2和无覆盖旱作稻田的4.23g·m^-2。秸秆覆盖旱作稻田的水稻产量为8.60t·hm^-2,与常规淹水处理没有显著差异,但二者均显著高于无秸秆覆盖旱作处理的6.78t·hm^-2;与常规淹水处理相比,秸秆覆盖旱作还可以提高水稻单株生物量10g以上。秸秆覆盖旱作还可以显著提高稻田表层土壤有机质含量,维持和改善表层土壤养分状况,对实现农业可持续性有重要意义。因此,在水资源缺乏地区,秸秆覆盖旱作是一种值得考虑的替代传统淹水栽培的水稻栽培模式,同时秸秆覆盖旱作还田也是一种值得推广的稻田秸秆管理技术。  相似文献   

16.
采用土培盆栽试验方法,以东北地区大面积种植的32个水稻品种为试验材料,在土壤中未添加(0mg·kg。Cd)和添加Cd(5mg·kg-Cd)的条件下,研究不同品种水稻籽粒、颖壳、茎叶和根系中Cd、Fe、Mn、Cu、Zn、Si几种微量元素的累积分布特征以及它们之间的相关关系。结果表明,几种微量元素在根系和茎叶中的含量大于籽粒和颖壳,其中Cd、Fe在根系和茎叶中的累积远远高于其他元素。水稻不同部位各微量元素之间大多数表现为正相关关系,加cd处理后元素之间的相关性变得更明显,尤其是籽粒中cd与其他元素之间从未加cd时不相关到加Cd后达到极显著相关水平。从微量元素含量来看,3号品种(越路早生)籽粒中Cd和其他有益微量元素含量相对较低,而8(千重浪-1)和27(吉03-2843)号品种含量较高。从营养价值和食品安全角度综合考虑,在无污染的农田土壤上,宜选择3、8、27号作为理想的水稻品种。  相似文献   

17.
Abstract

A study was undertaken to determine the effects of different concentrations of arsenic (As) in irrigation water on Boro (dry‐season) rice (Oryza sativa) and their residual effects on the following Aman (wet‐season) rice. There were six treatments, with 0, 0.1, 0.25, 0.5, 1, and 2 mg As L?1 applied as disodium hydrogen arsenate. All the growth and yield parameters of Boro rice responded positively at lower concentrations of up to 0.25 mg As L?1 in irrigation water but decreased sharply at concentrations more than 0.5 mg As L?1. Arsenic concentrations in grain and straw of Boro rice increased significantly with increasing concentration of As in irrigation water. The grain As concentration was in the range of 0.25 to 0.97 µg g?1 and its concentration in rice straw varied from 2.4 to 9.6 µg g?1 over the treatments. Residual As from previous Boro rice showed a very similar pattern in the following Aman rice, although As concentration in Aman rice grain and straw over the treatments was almost half of the As levels in Boro rice grain. Arsenic concentrations in both grain and straw of Boro and Aman rice were found to correlate with iron and be antagonistic with phosphorus.  相似文献   

18.
采用土培盆栽试验方法,以东北地区大面积种植的32个水稻品种为试验材料,在土壤中未添加和添加Cd(5mg.kg-1Cd)的条件下,研究水稻生长、籽粒产量和Cd在水稻植株不同部位的分配规律。结果表明,土壤中添加Cd后,多数水稻籽粒产量和植株总生物量下降,只有少数品种籽粒产量和生物量有所上升。Cd在水稻植株中的含量遵循根系〉茎叶〉颖壳〉籽粒的规律,但从分配比例来看,土壤中未添加Cd时根系中Cd的分配比例较高,添加Cd后茎叶中Cd的分配比例明显增加。从稻米产量和质量安全角度综合考虑,认为越路早生(3号)品种为农业生产中较理想的种植品种,沈农265(1号)、农林315(30号)、屉锦(31号)、沈稻12(32号)品种可以在中轻度污染的农田土壤条件下种植,而千重浪-1(8号)、辽盐2(14号)、辽盐283(17号)、辽恢190(19号)以及吉03-2843(27号)品种尽量避免在污染土壤上种植。研究结果对东北地区镉污染稻田选择水稻品种,保障稻米安全具有重要意义。  相似文献   

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