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11.
Development of integrated weed management strategies is dependent on a thorough knowledge of the demography of individual species. The current research established eight winter or summer weed species in a winter annual wheat cropping system at Wongan Hills, Western Australia, and investigated emergence of the first cohort of each species, survivorship, plant size, seed production and seed shedding over three years (2016–2019). The winter weeds Bromus diandrus and Lolium rigidum emerged at the same time as the wheat crop, and the initial cohort of marked plants had 100% survival to seed production in each year. By comparison, other winter weed species like Hordeum leporinum, Rumex hypogaeus, Sonchus oleraceus and Polygonum aviculare frequently emerged later than the crop and had a lower percentage of plants surviving to seed production. However, individual S. oleraceus and P. aviculare plants had the greatest seed production compared to other species. All winter weeds had variable patterns of seed shedding between years, with the exception of L. rigidum. Summer weed species emerged at the same time, but plants in the initial cohort of each species did not always survive to produce seed. The early emergence and high survivorship of B. diandrus indicates high competitive ability, but shedding commenced at a similar time to L. rigidum and harvest weed seed control may be a viable control method for this species.  相似文献   
12.
In Northern Europe, inter-row hoeing has become a popular tactic for controlling weeds in organic cereals. Hoeing is highly effective and can be implemented from crop emergence until stem elongation to maintain a nearly weed-free inter-row zone. However, hoeing has a lesser effect on weeds growing in the intra-row zone, where crop–weed proximity results in heightened competition. In the hoed cereal system, it is investigated whether tall-growing, competitive, cruciferous weeds in the intra-row zone affect crop biomass, yield and thousand kernel weight (TKW). An additive experimental design is employed to enable the fitting of rectangular hyperbolas, describing and quantifying the effects of increasing intra-row surrogate weed density on crop growth parameters. Regressions were studied under the influence of crop (spring barley and spring wheat), row spacing (narrow [12.5 or 15.0 cm] and wide [25.0 cm]) and nitrogen rate (50 and 100 kg NH4-N/ha). Cruciferous surrogate weeds were found to impact crop yield and quality severely. For example, ten intra-row plants/m2 of surrogate weed Sinapis alba reduced grains yields by 7%–14% in spring barley and by 7%–32% in spring wheat with yield losses becoming markedly greater in wheat compared to barley as weed density increases. Compared to wheat, barley limited yield and quality losses and suppressed intra-row weed growth more. Row spacing did not have a consistent effect on crop or weed parameters; in one of six experiments, the 25 cm row spacing reduced yields and increased intra-row weed biomass in wheat. Nitrogen rate did not affect crop or weed parameters. Results warrant the implementation of additional tactics to control intra-row weeds and limit crop losses.  相似文献   
13.
宁麦9号与扬麦158是我国长江中下游麦区的主栽品种和骨干亲本,长江中下游麦区近3年来审定品种中80%都是其衍生后代,研究其性状的遗传具重要意义。以宁麦9号与扬麦158为亲本构建的包含282个家系的重组自交系群体为材料,利用Illumina 90k芯片对群体进行基因型分析,建立高密度遗传图谱。连续3个生长季对株高及节间长度、穗长等株高构成因素进行测定,结合遗传图谱对株高及相关性状进行QTL定位,获得14个控制株高及其构成因素的稳定表达位点。通过进一步位置比对,聚焦到6个染色体区段,初步明确了各节间对株高的遗传调控机制。同时,将6个染色体区段中同源性较低的连锁标记转化为适用于高通量筛选的KASP标记,利用101份区域试验材料进行标记效应验证,结果显示聚合Qph-2D与Qph-5A.1两个位点具有较高的选择效率,继续聚合Q2A后,中选材料显著减少,可能降低选择效率;对Q2A与Q5A两个一因多效位点的选择建议以降低株高的等位变异为主;Qd1-5D可作为穗下节间(D1)的选择标记对株高展开优化选择。期望以上结果能为长江中下游麦区的小麦株高遗传改良提供帮助。  相似文献   
14.
农作物品种区域试验重复次数和试点数量的合理配置有利于提高试验的成本效率和品种选择效率。本研究分析了2010—2019年期间北部冬麦区小麦品种区域试验的重复次数和试点数量设置的合理性,依据小麦品种试验的信噪比和遗传力水平随重复次数和试点数量的变化规律,提出了重复次数和试点数量的优化设计方案。结果表明:(1)北部冬麦区小麦单点试验的遗传力平均达到0.87,需要的重复次数平均值仅为1.4,说明3次重复可以充分保证试验精确度的需求。(2)北部冬麦区水地组和旱地组小麦区域试验达到0.75的遗传力水平时,需要的试点数量分别为11个和13个,目前有效试点数量分别约为11个和8个,分别达到0.75和0.60的遗传力水平。(3)小麦品种区域试验结果对品种的审定和应用十分重要,而每年都可能有少数试验点因为各种异常情况而报废,为保证试验结果的可靠性,可按H=0.75的水平需求安排试验点数量和重复次数,即重复次数可保持当前的3次;水地组的试点数量可保持在11个左右;旱地组可将试点增加到13个;如要将遗传力提高到0.80的水平,则需约16个试点。  相似文献   
15.
为明确苏豫皖地区小麦籽粒蛋白质含量空间分布规律,收集该区域1999-2019年间与小麦籽粒蛋白质含量相关的研究文献及相应地点的气象数据,运用Meta分析方法建立基于气象因子驱动的小麦籽粒蛋白质含量模型,用ArcGIS反距离插值创建预测图,并利用2019年在江苏实际取样测定的小麦籽粒蛋白质数据予以模型验证;最后根据国家小麦品质标准进行小麦品质区划。结果表明,籽粒蛋白质含量随灌浆中期的总日照时数升高而升高,随播种-孕穗、灌浆前中期的总降水量增加而降低。在苏豫皖各地处于同一气象等级条件时,小麦籽粒蛋白质含量整体上从西向东呈降低趋势。采用2019年多点抽样获得的小麦籽粒蛋白质含量进行验证,发现分省拟合模型的效果较好,相对误差在-10%~0之间。苏豫皖三省中,中筋小麦主要分布在江苏省的中北部、安徽省中部少部分地区;中强筋小麦主要分布在江苏省的北部、安徽省的北部、中西部和西南部、河南省的东北部;强筋小麦主要分布在河南省东部、西北部和西南部;江苏省的南部和中部、安徽省的东南部最适宜弱筋小麦的种植。  相似文献   
16.
对小麦属Xa21-类似蛋白激酶基因进行了克隆及与同源序列比较研究.在小麦(Triticum aestivum)高分子量麦谷蛋白基因位点附近有一个编码LRR-类受体蛋白激酶的基因位点(暂标记为TaXa),编码蛋白与水稻(O ryza sativa)抗病蛋白Xa 21类似.通过反转录PCR途径,从普通小麦和二粒小麦(Triticum turgidum)的TaXa同源位点分离了3个cDNA克隆,ZS 860(GenBank查询号:EF 394367),ZS 2000(GenBank查询号:EF 394368)和ZS 2001(GenBank查询号:EF 394369).TaXa位点的祖先基因可能编码1 028个氨基酸组成的多肽.一个完整的TaXa蛋白包括N-端保守区、LRR结构域、一个跨膜区和位于C—端的丝氨酸—苏氨酸蛋白激酶功能域.在基因进化过程中,由于碱基代换、缺失和插入导致了开放读码框的改变,使该位点基因的编码多肽缩短.本研究对小麦属TaXa同源位点编码氨基酸序列和1个大麦(Hordeum vulgare)中的同源蛋白进行了详细比较.  相似文献   
17.
Wheat (Triticum durum L.) yields in the semi-arid regions are limited by inadequate water supply late in the cropping season. Planning suitable irrigation strategy and nitrogen fertilization with the appropriate crop phenology will produce optimum grain yields. A 3-year experiment was conducted on deep, fairly drained clay soil, at Tal Amara Research Station in the central Bekaa Valley of Lebanon to investigate the response of durum wheat to supplemental irrigation (IRR) and nitrogen rate (NR). Three water supply levels (rainfed and two treatments irrigated at half and full soil water deficit) were coupled with three N fertilization rates (100, 150 and 200 kg N ha−1) and two cultivars (Waha and Haurani) under the same cropping practices (sowing date, seeding rate, row space and seeding depth). Averaged across N treatments and years, rainfed treatment yielded 3.49 Mg ha−1 and it was 25% and 28% less than half and full irrigation treatments, respectively, for Waha, while for Haurani the rainfed treatment yielded 3.21 Mg ha−1, and it was 18% and 22% less than half and full irrigation, respectively. On the other hand, N fertilization of 150 and 200 kg N ha−1 increased grain yield in Waha by 12% and 16%, respectively, in comparison with N fertilization of 100 kg N ha−1, while for cultivar Haurani the increases were 24% and 38%, respectively. Regardless of cultivar, results showed that supplemental irrigation significantly increased grain number per square meter and grain weight with respect to the rainfed treatment, while nitrogen fertilization was observed to have significant effects only on grain number per square meter. Moreover, results showed that grain yield for cultivar Haurani was less affected by supplemental irrigation and more affected by nitrogen fertilization than cultivar Waha in all years. However, cultivar effects were of lower magnitude compared with those of irrigation and nitrogen. We conclude that optimum yield was produced for both cultivars at 50% of soil water deficit as supplemental irrigation and N rate of 150 kg N ha−1. However, Harvest index (HI) and water use efficiency (WUE) in both cultivars were not significantly affected neither by supplemental irrigation nor by nitrogen rate. Evapotranspiration (ET) of rainfed wheat ranged from 300 to 400 mm, while irrigated wheat had seasonal ET ranging from 450 to 650 mm. On the other hand, irrigation treatments significantly affected ET after normalizing for vapor pressure deficit (ET/VPD) during the growing season. Supplemental irrigation at 50% and 100% of soil water deficit had approximately 26 and 52 mm mbar−1 more ET/VPD, respectively, than those grown under rainfed conditions.  相似文献   
18.
Expected yield losses as a function of quality and quantity of water applied for irrigation are required to formulate guidelines for the effective utilisation of marginal quality waters. In an experiment conducted during 2004-2006, double-line source sprinklers were used to determine the separate and interactive effects of saline and alkali irrigation waters on wheat (Triticum aestivum L.). The study included three water qualities: groundwater (GW; electrical conductivity of water, ECw 3.5 dS m−1; sodium adsorption ratio, SAR 9.8 mmol L−1; residual sodium carbonate, RSC, nil) available at the site, and two synthesized waters, saline (SW; ECw 9.4 dS m−1, SAR 10.3 mmol L−1; RSC nil) and alkali (AW; ECw 3.7 dS m−1, SAR 15.1 mmol L−1; RSC 9.6 meq. L−1). The depths of applied SW, AW, and GW per irrigation ranged from 0.7 to 3.5 cm; the depths of applied mixtures of GW with either SW (MSW) or AW (MAW) ranged from 3.2 to 5 cm. Thereby, the water applied for post-plant irrigations using either of GW, SW or AW ranged between 15.2 and 34.6 cm and 17.1 and 48.1 cm during 2004-2005 and 2005-2006, respectively and the range was 32.1-37.0 and 53.1-60.0 cm for MSW or MAW. Grain yields, when averaged for two years, ranged between 3.08 and 4.36 Mg ha−1, 2.57 and 3.70 Mg ha−1 and 2.73 and 3.74 Mg ha−1 with various quantities of water applied using GW, SW and AW, respectively, and between 3.47 and 3.75 Mg ha−1 and 3.63 and 3.77 Mg ha−1 for MSW and MAW, respectively. The water production functions developed for the two sets of water quality treatments could be represented as: RY = 0.528 + 0.843(WA/OPE) − 0.359(WA/OPE)2 − 0.027ECw + 0.44 × 10−2(WA/OPE) × ECw for SW (R2 = 0.63); RY = 0.446 + 0.816(OPE/WA) − 0.326(WA/OPE)2 − 0.0124RSC − 0.55 × 10−4(WA/OPE) × RSC for AW (R2 = 0.56). Here, RY, WA and OPE are the relative yields in reference to the maximum yield obtained with GW, water applied for pre- and post-plant irrigations (cm), and open pan evaporation, respectively. Crop yield increased with increasing amount of applied water for all of the irrigation waters but the maximum yields as obtained with GW, could not be attained even with increased quantities of SW and AW. Increased frequency of irrigation with sprinklers reduced the rate of yield decline with increasing salinity in irrigation water. The sodium contents of plants increased with salinity/alkalinity of sprinkled waters as also with their quantities. Simultaneous decrease in potassium contents resulted in remarkable increase in Na:K ratio.  相似文献   
19.
为给黄淮南片冬麦区小麦育种提供信息,对25份澳大利亚小麦种质于2016-2018年度在新乡进行了部分农艺性状调查,对其品质性状及优质亚基等进行了分析。结果表明,25份澳大利亚小麦种质多表现为春性,综合农艺性状较差;千粒重低于黄淮麦区高产对照品种周麦18,变化范围为31.4 g~43.1 g;湿面筋含量、面筋指数、稳定时间、弱化度的变化范围分别为28.0%~39.1%、55.2%~96.5%、4.0 min~25.0 min、5%~100%。从澳大利亚小麦种质中,筛选出了具有湿面筋含量高、面筋指数高、稳定时间长、面粉粉色白等优良品质特性的材料,鉴定出了含5+10亚基、7+8~*亚基(7超量表达亚基)、17+18亚基、13+16亚基、低PPO活性基因及 Wx-B1基因缺失等优异品质材料,筛选出了含有 Rht-D1b矮秆基因以及 Lr34和 Lr46抗叶锈基因的材料。利用澳大利亚小麦种质为改良亲本,与黄淮麦区表现突出的小麦品种配制三交或四交组合,按常规系谱方法对优良性状进行定向选择,培育出了综合农艺性状表现好、品质表现突出的小麦新品系。  相似文献   
20.
为探究土壤水分与秸秆还田对小麦生长的交互作用,通过防雨棚微区控水试验,研究了不同土壤水分条件下玉米秸秆粉碎翻压还田对小麦群体数量、干物质积累、籽粒产量等的影响。结果表明,干旱条件下,小麦群体数量、叶面积指数、干物质积累量、成穗数和产量显著降低,最大根冠比出现时间推迟至开花期;与秸秆不还田(CK)相比,秸秆还田(RS)处理的群体最大茎数提高了8.5%,灌浆期根冠比增加12.26%,但生育后期的叶面积指数显著降低,穗数、千粒重、产量和收获指数也分别下降5.10%、3.17%、15.46%和8.39%;轻旱和适宜水分条件下,根冠比在拔节期达到最大值,RS处理的群体最大茎数较CK增加12.04%~14.18%;拔节期根冠比显著增加,灌浆期则相反;RS处理的不孕小穗数减少了14.91%~18.98%,穗粒数和产量则分别提高9.18%~26.30%及5.76%~6.96%。在轻旱或适宜水分条件下,秸秆还田可以改善小麦群体质量,协调植株地上部与根系的生长,最终提高籽粒产量;而土壤干旱时不宜进行秸秆还田。  相似文献   
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