956 resultados para Wheat (Triticum aestivum. L.)


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The root lesion nematode Pratylenchus thornei is widely distributed in Australian wheat (Triticum aestivum) producing regions and can reduce yield by more than 50%, costing the industry AU$50 M/year. Genetic resistance is the most effective form of management but no commercial cultivars are resistant (R) and the best parental lines are only moderately R. The wild relatives of wheat have evolved in P. thornei-infested soil for millennia and may have superior levels of resistance that can be transferred to commercial wheats. To evaluate this hypothesis, a collection of 251 accessions of wheat and related species was tested for resistance to P. thornei under controlled conditions in glasshouse pot experiments over two consecutive years. Diploid accessions were more R than tetraploid accessions which proved more R than hexaploid accessions. Of the diploid accessions, 11 (52%) Aegilops speltoides (S-[B]-genome), 10 (43%) Triticum monococcum (A (m) -genome) and 5 (24%) Triticum urartu (A (u) -genome) accessions were R. One tetraploid accession (Triticum dicoccoides) was R. This establishes for the first time that P. thornei resistance is located on the A-genome and confirms resistance on the B-genome. Since previous research has shown that the moderate levels of P. thornei resistance in hexaploid wheat are dose-dependent, additive and located on the B and D-genomes, it would seem efficient to target A-genome resistance for introduction to hexaploid lines through direct crossing, using durum wheat as a bridging species and/or through the development of amphiploids. This would allow resistances from each genome to be combined to generate a higher level of resistance than is currently available in hexaploid wheat.

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Radiant frost is a significant production constraint to wheat (Triticum aestivum) and barley (Hordeum vulgare), particularly in regions where spring-habit cereals are grown through winter, maturing in spring. However, damage to winter-habit cereals in reproductive stages is also reported. Crops are particularly susceptible to frost once awns or spikes emerge from the protection of the flag leaf sheath. Post-head-emergence frost (PHEF) is a problem distinct from other cold-mediated production constraints. To date, useful increased PHEF resistance in cereals has not been identified. Given the renewed interest in reproductive frost damage in cereals, it is timely to review the problem. Here we update the extent and impacts of PHEF and document current management options to combat this challenge. We clarify terminology useful for discussing PHEF in relation to chilling and other freezing stresses. We discuss problems characterizing radiant frost, the environmental conditions leading to PHEF damage, and the effects of frost at different growth stages. PHEF resistant cultivars would be highly desirable, to both reduce the incidence of direct frost damage and to allow the timing of crop maturity to be managed to maximize yield potential. A framework of potential adaptation mechanisms is outlined. Clarification of these critical issues will sharpen research focus, improving opportunities to identify genetic sources for improved PHEF resistance.

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Radiant frost is a significant production constraint to wheat (Triticum aestivum) and barley (Hordeum vulgare), particularly in regions where spring-habit cereals are grown through winter, maturing in spring. However, damage to winter-habit cereals in reproductive stages is also reported. Crops are particularly susceptible to frost once awns or spikes emerge from the protection of the flag leaf sheath. Post-head-emergence frost (PHEF) is a problem distinct from other cold-mediated production constraints. To date, useful increased PHEF resistance in cereals has not been identified. Given the renewed interest in reproductive frost damage in cereals, it is timely to review the problem. Here we update the extent and impacts of PHEF and document current management options to combat this challenge. We clarify terminology useful for discussing PHEF in relation to chilling and other freezing stresses. We discuss problems characterizing radiant frost, the environmental conditions leading to PHEF damage, and the effects of frost at different growth stages. PHEF resistant cultivars would be highly desirable, to both reduce the incidence of direct frost damage and to allow the timing of crop maturity to be managed to maximize yield potential. A framework of potential adaptation mechanisms is outlined. Clarification of these critical issues will sharpen research focus, improving opportunities to identify genetic sources for improved PHEF resistance.

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对于某些一年生或二年生高等植物,春化作用是诱导其成花的一个重要的环境因子。冬小麦春化进程中存在着一个核酸代谢的关键期,利用分子生物学技术分离特异表达的基因是研究春化诱导成花机理的一个突破口。 利用TRIzol剂快速提取冬小麦燕大1817(Triticum aestivum L. cv Yanda 1817)未春化、春化4d、春化20d、5d脱春化的胚芽中的总RNA,去除污染的DNA后,将引物P_1(5'TTTTTTTTTTTCA3')、P_2(5'TTTTTTTTTTCC3')与10个碱基的随机引物OPF_1-OPF_(20)、OPG_1-OPG_(20)组成80个引物对,对不同来源的RNA进行差别显示,共显示了大约10,000种mRNA,结果发现了两个仅在春化20d这一关键期表达而在未春化、春化4d、5d脱春化时不表达的春化相关基因(VRG)VRG49与VRG54。Northern分析进一步表明这两个基因仅与春化20d的冬小麦RNA有杂交信号。将VRG49与VRG54亚克隆于pGEM-4Z载体上,利用T_7测序系统获得了VRG49和VRG54的DNA序列,它们的长度分别为307bp与169bp。 春化21d的冬小麦京冬1号(T. aestivum L. cv Jingdong No. 1)胚芽的mRNA在逆转酶作用下反转录成sscDNA杂交,将过量的未春化、脱春化的mRNA与sscDNA杂交,运用磁珠法分离出未杂交上的sscDNA,以特异的sscDNA为模板,用DNA聚合酷I合成了dscDNA。通过对dscDNA内部EcoRI位点的甲基化、末端补平、EcoRI接头的安装、连接进入λgt10载体的EcoRI位置,以及运用包装系统进行体外包装,建立了库容为4 * 10~6pfu的富集低温诱导的冬小麦cDNA噬菌体文库。用来源于未春化、春化21d、脱春化的冬小麦mRNA合成3种cDNA探针,对噬菌斑进行原位杂交,结果筛选出了3个春化相关基因(VRG)VRG79、VRG111和VRG231。Dot blotting与Northern分析表明VRG79仅在冬小麦春化关键期21d表达。运用PCR方法从λgt10DNA中扩增出VRG79片断并亚克隆于PUC18载体上,通过T_7测序系统获得了VGR79的序列,其包括349个碱基。 通过Internet将VRG49、VRG54、VRG79与GenBank、EMBLDDBJ、PBD中的序列进行同源性分析,结果发现这些基因至少是在植物中新发现的基因,对这些基因推测的一些功能也进行了讨论。

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臭氧属于二次污染物,它是由机动车、工厂等人为源以及天然源排放的氮氧化物(NOx)和挥发性有机物(VOCs)等一次污染物在大气中经过光化学反应形成的。O3 是光化学烟雾的主要成分,可对植物生长产生抑制。近几十年来,全球O3 污染的格局正在发生着巨大改变。由于北美及西欧等经济发达地区采取了有效控制臭氧形成前体物的措施,其空气中的O3 浓度在减少,而亚洲等经济发展中地区的O3 形成前体物的排放却在急剧攀升,导致大气中O3 浓度显著增加。中国经济的快速发展以及汽车保有量的迅猛增加导致O3 前体物的大量排放,许多经济较发达的地区空气中的O3 浓度超过了75ppb。由于O3 污染将导致农作物产量显著降低,因此,亚洲尤其是中国O3 污染对本地区农业生产的影响引起了国内外科学家的广泛关注。然而,在中国开展的关于O3 对植物生长及生产影响的研究相对较少,但已有的几篇研究报道确实指出目前中国部分地区的O3 浓度可导致冬小麦产量大幅下降,并预测到2020 年由O3 污染将引起小麦产量进一步降低。 植物对臭氧的反应或敏感性取决于诸如叶片导度、叶片结构及生化解毒等很多方面。首先,由于高叶片导度将吸收较多的臭氧量,因此,叶片导度通常被认为是决定抗性最为重要的因子。处于湿润条件下的植物,通常具有较高叶片导度,受到臭氧危害的程度一般也较大。其次,植物抗氧化胁迫能力的大小也决定着其对臭氧的敏感性。同一植株的老叶首先表现出伤害症状,这是由于老叶的抗氧化能力差于新叶,体现在抗坏血酸和谷胱甘肽含量及抗坏血酸氧化物酶和谷胱甘肽还原酶活性低于新叶。另外,叶片对臭氧的敏感程度与其叶片结构关系密切,拥有较大的细胞间隙对抗污染特性至关重要,由于叶片上表面的栅栏组织较海绵组织致密,因此通常较早表现出伤害症状。 影响植物对臭氧反应的环境因子很多,诸如光照、水气压亏、温度等。由于臭氧主要通过气孔进入植物体内,因此目前的研究主要集中在能显著调节气孔导度的环境因子,如土壤水分状况和在未来可能会与大气中臭氧浓度同步增加的CO2 浓度。CO2 浓度升高可降低植物的气孔导度,因此,CO2 浓度升高可减少叶片对O3 的吸收量。同时,大气CO2 浓度升高可提高净同化速率,可导致气孔的部分关闭而减少蒸腾,从而显著提高植株的水分利用效率,最终促进作物生长并提高产量。然而,二者对作物产量的交互影响尚不明确。水分胁迫被认为是影响O3 对植株伤害的一个重要环境因子。与正常供水相比,水分胁迫常常伴随着气孔导度的降低,导致进入到植株体内的O3 量相对较少而减轻植株受到的伤害程度。然而水分供应不足本身将导致小麦生长降低及产量下降。因此,水分亏缺可能会保护植株免受O3 伤害,同时也可能会加剧对植株的胁迫。 高浓度臭氧环境下,植物表现出较低的气孔导度。但研究表明,对臭氧敏感性不同的植物其气孔导度对臭氧的反应程度不同。臭氧对气孔的作用将影响植物生产力,同时也将影响植物对其它环境胁迫如干旱等的反应。短时间臭氧熏蒸小麦导致叶片细胞膜系统受损、光合产物输出受阻;而长期受臭氧污染后,小麦叶片的光合速率、光化学效率、叶绿素含量和蔗糖含量均显著降低,并与臭氧剂量的大小和峰值出现的早晚有关。O3 浓度升高将抑制光合作用,减少气孔导度,加强呼吸作用,改变C 同化物分配,加快叶片的衰老。众多研究表明,O3 导致的光合能力下降主要是由Rubisco 最大羧化效率降低导致;而O3 对光合器官捕获光的能力及光合电子传递速率的影响是光合作用下降的另一个原因。 尽管已有不少关于不同物种间对O3 敏感性的种间差异研究,然而育种方法或育种地点对中国不同冬小麦品种的O3 敏感性的影响尚不清楚。因此,我们假设育种年代、育种方法及地点将交互影响冬小麦品种对O3 的生长及生理响应。为进一步明确基因对冬小麦O3 敏感性的控制,研究了普通六倍体冬小麦的近缘体对O3 敏感性的差异。CO2 浓度升高及干旱胁迫对小麦臭氧敏感性的影响也进行了研究。论文主要从生理生化、生长及产量水平上来阐释O3 浓度升高、CO3加倍、干旱对冬小麦生长及生产影响的机理。 本研究主要是在温室中的上部开口的生长箱(open-top chamber, OTC)中进行。先后开展了四个盆栽实验研究,主要目的是确定中国不同基因型冬小麦种或品种对臭氧的敏感性及其反应机理;确定CO2 浓度升高及干旱在减轻O3 伤害方面的作用及其机理。实验材料为中国不同年代选育出的小麦品种,即1745年至2004 年间选育出的20 个品种和7 个小麦材料。主要评价指标包括相对生长速率、异速生长系数、叶绿素荧光、抗氧化活性、可溶性蛋白质含量、膜酯过氧化、气体交换、光合能力、叶绿素含量、暗呼吸、生物量及籽粒产量。实验研究得到的主要结果如下: 1) O3 升高显著降低整株及地上和地下部分的相对生长速率,显著降低异速生长系数、可变荧光、最大光化学效率、量子产额、光化学淬灭系数以及电子传递速率,但提高了非光化学淬灭系数。冬小麦不同品种对O3 的敏感性随育种年代的增加而增大,并与对照植株相对生长速率呈正相关。尽管近年来环境中的O3 浓度比过去显著增加,但新近育出的品种对臭氧的抗性却没有表现出协同进化效应。通过杂交选育的品种对臭氧的敏感性大于通过引进的和重选的品种。从生长和光合生理上来看,不同小麦品种对臭氧的敏感性与育种地点没有相关性,表明冬小麦品种对臭氧的适应能力与其生长环境下的臭氧浓度无关。因此,对臭氧相对敏感的冬小麦品种主要是由培育中较高相对生长速率或较高光合能力的杂交育种方式决定的,而与选育地点环境中的臭氧浓度无关。 2) 臭氧显著降低叶片中抗坏血酸(AsA)和可溶性蛋白的含量,但提高了过氧化物酶(POD)的活性和膜酯过氧化物(MDA)的含量。臭氧浓度升高抑制饱和光强下的净光合速率(Asat),降低气孔导度(gs)和总叶绿素含量,而显著提高暗呼吸速率(Rd)和胞间CO2 浓度(Ci)。臭氧导致总生物量降低,但地下部生物量受到的影响大于地上部。不同基因型小麦对臭氧的潜在敏感性与实际观察到的抗臭氧能力存在很大差异。冬小麦品种对臭氧的敏感性与臭氧环境下植株气孔导度和暗呼吸速率相关。臭氧导致Ci 浓度升高以及膜酯过氧化,由此得出臭氧导致的净光合速率主要是由于臭氧降低了叶肉细胞活性及细胞膜的完整性。新品种对臭氧相对敏感,主要是由于其具有较高的气孔导度抗氧化能力下降幅度较大以及较低的暗呼吸速率,从而对蛋白和细胞膜完整性造成较高的氧化伤害。 3) 臭氧对冬小麦光合和生长的影响存在着显著的种间差异。原初栽培种表现出最大的抗性,当代品种次之,而野生种对臭氧最为敏感。在普通冬小麦不同基因组供体中,钩刺山羊草(Aegilops tauschii,DD)对臭氧最敏感,其次为栽培一粒小麦(T. monococcum,AA),而圆锥小麦(Triticum turgidum ssp.Durum,AABB)对臭氧的抗性最大。因此,当代冬小麦品种对臭氧的敏感性可能是与其D 染色体供体-钩刺山羊草对臭氧敏感有关,而与其A、B 染色体供体-圆锥小麦的关系相对较小。 4) CO2 浓度升高提高了老品种和新品种的Asat,最大羧化速率(Vcmax),最大电子传递速率(Jmax)、光和CO2 饱和光合速率(Amax)。与之相反,臭氧显著降低了这些生理参数。虽然两品种对CO2 的响应没有显著性差异,但CO2浓度升高均有效保护了臭氧对它们的伤害。这种效应与CO2 浓度升高引起的气孔导度降低无关,而与代谢活性的提高有关。 5) 水分胁迫和臭氧分别都显著降低了 Asat 和gs。干旱显著降低Vcmax 和羧化效率(CE),而对Jmax 和暗呼吸(R)的影响不显著。臭氧显著降低冬小麦不同基因型的Vcmax,Jmax,R 和CE。二者均降低了生物量的积累及最终籽粒产量。与六倍体小麦相比,四倍体小麦对干旱相对敏感,但对臭氧却表现出较高抗性。干旱降低了气孔导度从而显著减少了植株对臭氧的吸收量,但两基因型的反应截然不同。干旱使臭氧对六倍体小麦产量和收获指数的伤害分别减少了约16%和50%,而干旱对该四倍体小麦的保护效应不大。

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CO2浓度升高和气候变暖已成为不可逆转的现实,而具有强氧化性的臭氧浓度升高也被认为是全球变化的重要组成部分,已经或将对植被生长产生严重威胁。冬小麦(Triticum aestivum L.)生长发育期内受到环境变化的影响相对较大。小麦是对臭氧最为敏感的作物之一,华北地区冬小麦灌浆期容易发生臭氧污染。本研究以冬小麦为试材,研究了CO2浓度加倍和2oC增温对中国北方不同年代推出的冬小麦品种幼苗生长的效应;研究了不同小麦品种对花后短期臭氧胁迫的反应;分别研究了干旱、增温与臭氧污染对冬小麦旗叶光合和产量的交互影响。研究结果如下: 1) CO2浓度加倍和温度升高加快冬小麦幼苗的生长速率。CO2浓度加倍主要是促进了幼苗的分蘖(+1.54分蘖),而增温加快了发育进程(主茎叶片数比对照多1叶)。不同品种对CO2浓度加倍和增温的响应存在着差异,但与育种年代没有显著相关关系。从20个品种的总体情况来看,CO2浓度加倍和2.0℃增温对冬小麦幼苗的生长具有叠加效应。生长较慢的冬小麦品种对CO2浓度加倍的反应越大。 2) CO2浓度加倍显著提高了小麦新展开叶的净光合速率(Psat),显著降低了气孔导度(gs)和蒸腾速率(E),从而显著提高了瞬时水分利用效率(ITE),但不同小麦品种对CO2浓度加倍的反应与其育种年代没有明显的相关性;增温对冬小麦叶片Psat的效应不显著,但显著降低了gs,而E显著增大,从而导致ITE显著降低,其中,Psat对增温的反应与品种育种年代呈显著正相关(R=0.525, p<0.05),并与叶片比叶面积(SLA)显著正相关(R=0.45, p<0.001)。CO2浓度加倍和增温同时处理时对Psat、gs和ITE的效应显著大于CO2浓度加倍处理。 3) 冬小麦灌浆初期,短时间的臭氧胁迫对旗叶的同化能力带来了显著的负效应,而且光合性能最大的叶片中部受到的抑制最为严重。同化能力的下降导致最终产量的降低。然而,不同品种对臭氧的敏感性存在着很大差异。臭氧对具有较高收获指数和产量的当代品种-烟农19的效应(-19%,p<0.01)明显大于产量较低的老品种-农大311(-8%,p<0.05),主要表现在叶片可见伤害程度较大,旗叶净光合速率受到的负效应较大,籽粒重量以及穗粒数均显著降低。 4) 短期高浓度臭氧胁迫对处于中度干旱胁迫下的小麦植株产生了可见伤害(<20%),但伤害程度明显低于处于土壤含水量较高的植株(>30%)。短期臭氧处理显著降低了处于较高土壤含水量下的小麦旗叶Psat(-36%),干旱胁迫也显著降低了旗叶Psat(-34%),但臭氧仅使处于中度干旱胁迫下的植株旗叶Psat进一步降低了7.8%。gs的变化趋势与Psat的变化基本一致。臭氧处理结束并复水后,干旱处理植株的Psat与对照基本相同,而臭氧处理过的植株均明显低于对照,其中臭氧处理期间处于良好土壤含水量条件下的植株旗叶Psat显著低于对照,并且随着植株的衰老,其下降的速度明显快于其它处理,表明衰老速度加快。而中度干旱胁迫可减轻臭氧对小麦产量的危害程度。 5) 正常供水条件下,短期臭氧处理结束2天后,小麦旗叶Psat与对照植株的值接近,然而随着时间的延长,Psat下降的速度明显快于对照。臭氧处理结束后,植株若遭受干旱胁迫,旗叶Psat显著低于对照。虽然gs的变化趋势与Psat基本一致,但臭氧处理后光合的降低主要是由非气孔限制因素引起的。旗叶光合能力下降、叶片提前衰老,是臭氧处理导致产量显著降低的主要原因。穗粒数没有显著变化,而千粒重却显著降低。而臭氧处理后若遇干旱胁迫,旗叶的光合能力以及光合有效期进一步减少,导致不育小花数增多,因此籽粒产量进一步减少。 6) 灌浆期臭氧浓度升高显著降低了小麦叶片的光合能力,导致产量显著降低;2oC升温加快了植株的衰老,然而并没有对产量性状产生显著效应;温度和臭氧两因子对旗叶的气体交换参数具有交互效应,但对各产量性状均没有交互效应发生。 综合以上研究结果,不同品种对环境变化的响应存在着显著差异,意味着可以通过育种途径来减轻未来环境变化对农业生产的负面影响;灌浆期臭氧胁迫显著降低冬小麦的产量,环境因子可影响臭氧胁迫效应,但之间的交互作用比较复杂,有待进一步深入研究,以保证未来全球变化环境下的粮食安全。

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采用裂区试验设计,对黄土塬区补充灌溉及氮磷配施条件下麦田土壤水分动态、作物产量及水分利用效率等进行研究。结果表明:1)冬小麦对土壤水分的利用深度随小麦生长发育逐渐加深,在越冬前期和孕穗期分别达1.2和2.2 m土层以下,不同处理土壤含水量在小麦生育前期差异不明显,孕穗后氮磷配施处理的土壤含水量显著低于不施肥处理;2)试验条件下,补充灌溉后同样施肥处理的作物产量与雨养相比,虽有增加但不显著;不论是雨养水平,还是补充灌溉水平,氮磷配施均表现出显著的增产效果,从低氮低磷到高氮高磷,增产幅度在134%到240%之间;3)氮磷配施能显著提高冬小麦水分利用效率,而补充灌溉后水分利用效率降低3%~30%,但未达显著水平;4)不同氮磷配施的增产效应高于补充灌溉,补充灌溉与高氮高磷处理有显著的水肥协同效应,能显著提高作物产量并保持较高的水分利用效率。

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大田条件下设置不同的施氮和灌水水平,研究施氮量和灌水量对冬小麦(Triticum aestivum L.)叶片光合作用生理及籽粒形成的影响。结果表明,施氮和灌水提高叶片Fv/Fm和Pn,并显著提高冬小麦籽粒产量、单位面积穗数和每穗粒数。施氮明显降低千粒重,而适量灌水明显提高千粒重。

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小麦(Triticum aestivum L.)是世界上种植面积最大,总产量最高,食物加工种类最丰富的粮食作物,占世界人口35 %-40 %的人们以此为主要食物。因此小麦产量的高低和品质的优劣直接影响人们对食物需求的安全和满意程度,也影响着人类的营养平衡以及面粉和食品加工业的发展。随着生活水平的提高,人们对于小麦的品质越来越重视。培育优质专用小麦新品种,制定优质专用小麦品种品质生态区划,从而在不同程度上实现小麦的区域化种植和产业化经营具有重要的意义。 影响小麦品质的因素主要是遗传因素和环境因素,其中环境因素又包括各种自然生态因素和人为因素。研究表明,小麦品质的环境间的差异大于品种间的差异,气候条件是影响小麦品质的最重要的因子,小麦品质的地域间的差异反映出了小麦的品质区域分布规律。为了满足市场对不同品质小麦的需求,对小麦进行区域化研究具有重要的理论和现实意义。本研究结合四川的地理、气候特点,研究不同品质类型与生态环境的关系,为在复杂的生态环境内进行品质区划提供依据。 本研究首先根据四川省小麦种植区域的生态特点,在四川省多个典型生态区:川南丘陵的荣县、川西南高原的西昌、川西平原的双流布点种植,采用的小麦试验材料为不同品质类型:中筋小麦川育12、川育14、川育16由本所提供;弱筋小麦川麦32和强筋小麦川麦36由四川省农科院作物所提供。通过研究品质性状与品种及各个生态因子包括地点、土壤土质差异等的关系,明确不同生态环境中适宜种植的小麦品种类型,强筋小麦、中筋小麦更适合于在荣县、双流地区种植,弱筋小麦更适合于在西昌地区种植,为品种品质区划奠定基础。 其次,选择了本课题组育成的稳定中间品系,对其品质性状SDS沉降值进行了多年测定。分析了品质性状SDS沉降值与多种气候因子的相关性,结果表明SDS沉降值与日均温、日照时数成正相关,与降水量成负相关,为品质育种提供了理论依据。 此外,以中筋小麦新品种小麦川育14为材料,应用三元二次正交旋转回归模型设计试验,研究主要栽培因子播期、密度和施肥量对产量的影响,并建立函数模型。经计算机模拟寻优,筛选出了高产高效栽培组合措施,并确定了置信域。结合四川省不同的地理情况,在平原和丘陵地区分别进行实验,并各自建立了高产高效栽培组合措施,为川育14品种的推广提供了理论指导。 Wheat is one of the most important crops in the world. About 35%-40% people all over the world, take the wheat as their most important food. So the quality, as well as the quantity of the wheat makes a direct effect on people’s demands of food and their satisfaction. It also effects on human’s healthy, and the development of the Food processing industry. With the development of the living standard, people pay more attention to the quality of wheat. So, we set a special ecology zoning for wheat. It is significant to carry out planting the wheat in special zoning in varying degrees. The main factors affecting wheat quality are heredity and environment including many ecological factors and the factors in cultivation. As to the quality,the difference between ecology and cultivation is more important than the difference between special wheat. In so many factors, climate is the most important one. From the difference in quality between different zones,we can conclude the rule of distribution abort quality of wheat. Finding out the intersection of numerous wheat not only can meet the demand of food production,but also has important signification in theory and realism。In our research, according to the complex geography in Sichuan province, we study the relationship between numerous kinds of quality characters in wheat and the ecology. So, we can set a foundation for more research. In this research, firstly, we plant wheat in some typical ecological regions of SICHUAN province: RONGXIAN(south of SC)、XICHANG(south of SC), SHUANGLIU(west of SC). The materials of the experiments: ChuanYu12, ChuanYu14, ChuanYu16(from our institute), Chuanmai32, Chuanmai36 (from the Chinese academy of agriculture sciences of Sichuan. Through the research on the relationship between the quality of wheat and those ecology factors, we can make a definition that which area is perfect matched with which kind of wheat. And it can satisfy the demand of people. Secondly, select many sorts of wheat from our research group. All of them are selected and bred more than 3 years(2003-2005). And we make every-year determination as well. We’ve gotten SDS value from those 9, and various data on factors of climate. We also got to know the relation ship between those numbers. Thirdly, use Chuanyu14 as material, the mathematical model of the relation between the production of wheat and main agricultural measures such as date, density and fertilizer. The model was established by association of three elements two return, rotate and regression. We set a suitable model and get a suitable method which can make high harvest. Based on various kinds of geographical regions in Sichuan province, we set different models which can be used in plain and hill. So, we can plant Chuan Yu 14 in Sichuan province under the result in research.

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禾谷孢囊线虫(Heterodera avenae)是严重危害禾谷类作物的病原线虫之一,它广泛分布于澳大利亚、欧洲、北美、印度和中国等世界主要小麦产区,使作物严重减产,造成巨大的经济损失。目前最有效的防治措施之一是将外源抗性基因导入栽培小麦(Triticum aestivum L.),培育抗禾谷孢囊线虫的新品种。但迄今为止抗禾谷孢囊线虫基因克隆研究的相关报道却很少。 本实验根据此前从抗禾谷孢囊线虫材料E-10扩增得到的与来自节节麦(Aegilops tauschii)的抗禾谷孢囊线虫基因Cre3高度同源的序列Rccn4,设计出三条嵌套引物,采用SON-PCR(single oligonucleotide nested PCR)方法,从E-10基因组DNA中得到一个长为1264 bp的扩增产物(命名为Rccn-L),测序比对结果显示,这一序列将Rccn4的3’端延伸了1209 bp,与抗禾谷孢囊线虫Cre3基因核苷酸同源性为86﹪,核苷酸编码区长1026 bp,含一个不完整的开放阅读框,一个终止密码子,没有起始密码子和内含子结构,编码一个342个氨基酸残基的蛋白质。该蛋白质等电点为5.19,分子量为38112.6Da。从序列的第113位开始到第332位是NBS-LRR类抗病性基因LRR区,呈现XXLXXLXXL复。LRR编码区内亮氨酸残基的含量达17﹪,与抗禾谷孢囊线虫Cre3基因LRR编码区的核苷酸和氨基酸同源性分别为89﹪和78﹪。本实验首次将SON-PCR成功地运用于植物基因克隆,为植物基因克隆提供了又一有效方法。 此外,还根据Cre3基因及其他的NBS-LRR类植物抗性基因的NBS和LRR区保守序列设计了两对特异性引物,从禾谷孢囊线虫抗性材料易变山羊草基因组DNA中扩增到两个相应的目标条带。测序分析结果表明,它们的长度分别为532bp和1175bp,构成了一个有32bp的共同序列的NBS-LRR编码区。其序列总长为1675bp(命名为RCCN),含有一个不完整的开放阅读框,没有起始密码子、终止密码子和内含子结构。其中编码序列为1673bp,可编码一个557个氨基酸的蛋白质,等电点(pI)为5.39,分子量为63537.5Da。与Cre3的核苷酸和氨基酸同源性分别为87.8﹪和77﹪。RCCN氨基酸序列中含有已知抗病基因NBS区域的几个保守模体:kinase2区的ILDD、kinase3的(ⅰ)ESKILVTTRSK,(ⅱ)KGSPLAARTVGG,(ⅲ)RRCFAYCS及EGF。RCCN NBS区与Cre3 NBS区的核苷酸和氨基酸的同源性分别为96.4﹪和94﹪。从氨基酸序列的274位到548位为LRR保守区,呈现不规则的aXXLXXLXXL其中a代表I,V,LF或M)重复,其中亮氨酸的含量为15.6﹪。该区域与Cre3的LRR区的核苷酸和氨基酸同源性分别为80.8﹪和74﹪。推测该序列可能为一个抗禾谷孢囊线虫的新基因。 本文对抗禾谷孢囊线虫基因的克隆研究,为进一步克隆基因全序列,探索其结构与功能,和研究该基因表达与调控提供了关键信息。同时也为通过基因工程途径将抗性基因向优良小麦品种高效、定向转移,最终培育出小麦抗禾谷孢囊线虫新品种奠定了基础。 Cereal cyst nematode (CCN) is a damaging pathogen of broad acre cereal crops in Australia, Europe, North America, India and China. It affects wheat, barley, oat and triticale and causes yield loss of up to 80%. At present, Transferring resistance genes against CCN into wheat cultivars and breeding varieties are considered one of the most effective methods for controlling the CCN. However, there are very limited reports concerning the cloning studies of resistance genes against the cereal cyst nematode. According to the sequence of Rccn4 which had high similarity to the nucleotide binding site (NBS) coding region of cereal cyst nematode resistance gene, Cre3, We designed three 3’ nested primers. Using single oligonucleotide nested PCR (SON-PCR) we successfully amplified one band, Rccn-L, of 1264bp from E-10 which is the wheat-Ae.variabilis translocation line containing the cereal cyst nematode resistance gene of Ae.variabilis. We found that this band of interesting is the 3’ flanking sequence of 1209bp in size of Rccn4. The coding region was 1026bp, which contained an incomplete open reading frame and a terminator codon, without initiation codon and intron, encoding a peptide of 342 amino acid residues, and shared 86﹪nucleotide sequence identity with Cre3. This peptide had a conserved LRR domain, containing the imperfect repeats,XXLXXLXXL, which contains 17﹪ leucine residues and shares, respectively, 89﹪ nucleotide sequence and 78﹪ amino acid sequence identity with the LRR sequence of Cre3 locus. This research firstly used SON-PCR in the research of plant genome successfully, which indicated that SON-PCR is another method of cloning plant gene. At the same time, According to the conversed motif of NBS and LRR region of cereal cyst nematode resistance gene Cre3 from wild wheat (Triticum tauschlii L.) and the known NBS-LRR group resistance genes, we designed two pairs of specific primers for NBS and LRR region respectively. One band of approximately 530bp was amplified using the specific primers for conversed NBS region and one band of approximately 1200bp was amplified with the specific primers for conversed LRR region. After sequencing, we found that these two sequences included 32bp common nucleotide sequence and have 1675 bp in total, which was registered as RCCN in the Genbank. RCCN contained a NBS-LRR domain and an incomplete open reading frame without initiation codon, terminator codon and inxon. Its exon encodes a peptide of 557 amino acid residues. The molecular weight of the protein from the amino acid was 63.537 KDa. The amino acid sequence of RCCN contained conserved motif: ILDD, ESKILVTTRSK, KGSPLAARTVGG, RRCFAYCS, EGF,LRR. RCCN shares 87.8﹪ nucleotide sequence and 77﹪ amino acid sequence identity with cereal cyst nematode gene Cre3. It might be a novel cereal cyst nematode resistance gene. These research results of cloning the resistance genes against cereal cyst nematode bring a great promise for transferring resistance genes into wheat cultivars and breeding new wheat varieties against cereal cyst nematode by gene engineering. And these results also lay the hard foundation for the expressing researches of these genes.

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M66 an X-ray induced mutant of winter wheat (Triticum aestivum) cv. Guardian exhibits broad-spectrum resistance to powdery mildew (Blumeria graminis f. sp. tritici), yellow rust (Puccinia striiformis f. sp. tritici), and leaf rust (Puccinia recondita f. sp. tritici), along with partial resistance to stagnonospora nodorum blotch (caused by the necrotroph Stagonosporum nodorum) and septoria tritici blotch (caused by the hemibiotroph Mycosphaerella graminicola) compared to the parent plant ‘Guardian’. Analysis revealed that M66 exhibited no symptoms of infection following artificial inoculation with Bgt in the glasshouse after adult growth stage (GS 45). Resistance in M66 was associated with widespread leaf flecking which developed during tillering. Flecking also occurred in M66 leaves without Bgt challenge; as a result grain yields were reduced by approximately 17% compared to ‘Guardian’ in the absence of disease. At the seedling stage, M66 exhibited partial resistance. M66, along with Tht mutants (Tht 12, Tht13), also exhibit increased tolerance to environmental stresses (abiotic), such as drought and heat stress at seedling and adult growth stages, However, adult M66 exhibited increased susceptibility to the aphid Schizaphis graminum compared to ‘Guardian’. Resistance to Bgt in M66 was characterized with increased and earlier H2O2 accumulation at the site of infection which resulted in increased papilla formation in epidermal cells, compared to ‘Guardian’. Papilla formation was associated with reduced pathogen ingress and haustorium formation, indicating that the primary cause of resistance in M66 was prevention of pathogen penetration. Heat treatment at 46º C prior to challenge with Bgt also induced partial disease resistance to Blumeria graminis f. sp. tritici in ‘Guardian’ and M66 seedlings. This was characterized by a delay in primary infection, due to increased production of ROS species, such as hydrogen peroxide, ROS-scavenging enzymes and Hsp70, resulting in cross-linking of cell wall components prior to inoculation. This actively prevented the fungus from penetrating the epidermal cell wall. Proteomics analysis using 2-D gel electrophoresis identified primary and secondary disease resistance effects in M66 including detection of ROS scavenging enzymes (4, 24 hai), such as ascorbate peroxidase and a superoxidase dismutase isoform (CuZnSOD) in M66 which were absent from ‘Guardian’. Chitinase (PR protein) was also upregulated (24 hai) in M66 compared to ‘Guardian’.Monosomic and ditelosomic analysis of M66 revealed that the mutation in M66 is located on the long arm of chromosome 2B (2BL). Chromosome 2BL is known to have key genes involved in resistance to pathogens such as those causing stripe rust and powdery mildew. The TaMloB1 gene, an orthologue of the barley Mlo gene, is also located on chromosome 2BL. Sanger sequencing of part of the coding sequence revealed no deletions in the TaMloB1 gene between ‘Guardian’ and M66.

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Las variedades de trigo con hábito de crecimiento invernal requieren una prolongada exposición a bajas temperaturas para acelerar la floración. Este requerimiento se denomina 'vernalización' y la variación natural en los genes que controlan este proceso ha favorecido la adaptación del trigo a diferentes ambientes. Los principales loci que controlan el requerimiento de vernalización en trigo se denominan VRN1, VRN2, VRN3 y VRN-D4. Los primeros tres genes han sido aislados y caracterizados pero VRN-D4 no ha sido identificado aún a nivel molecular. El objetivo de esta tesis es la identificación de VRN-D4 mediante clonado posicional, lo que inclula construcción de un mapa genético de alta densidad, un mapa físico, el estudio de los genes candidatos y su validación. Usando esta estrategia se encontró que VRN-D4 está localizado en la región centromérica del brazo corto del cromosoma 5D. En esta región se identificó la inserción un fragmento cromosómico de ~290Kb del cromosoma 5A incluyendo una copia del gen de floración VRN-A1. Usando mutantes inducidos por EMS este estudio demuestra que esta segunda copia de VRN-A1 es VRN-D4. VRN-D4 fue encontrado en muy alta frecuencia en la sub-especie T. aestivum ssp. sphaerococcum predominante en el sur del continente Asiático. Esta sub-especie carece de otros genes para hábito de crecimiento primaveral, lo que sugiere que VRN-D4 jugó un rol importante en la adaptación del trigo a esta región. Este estudio también identificó mutaciones en una región regulatoria de VRN-D4 asociadas a su expresión temprana. Mutaciones similares identificadas en alelos de VRN-A1 también estuvieron asociadas con un reducido requerimiento de vernalización. Los alelos de VRN-A1 y VRN-D4 identificados en este estudio representan una herramienta útil para regular la fecha de floración de trigo. Este estudio contribuye también al conocimiento básico de los mecanismos moleculares involucrados en la respuesta a la vernalización.

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p.199-202