60 resultados para Triticum aestivum


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Grain yields of over 14 Mg ha(-1) were reported in 1978 for spring wheat (Triticum aestivum L.) grown in Northwest China. Understanding the circumstances under which this record yield was achieved may be useful in defining the key factors that lead to high grain yields and in determining the limits to wheat yield. A relatively simple, mechanistic model was used in an effort to simulate the record yield. The model was used as a framework in which various crop traits could be adjusted to match the observed crop growth. The weather that was characterized by cool temperatures and high levels of solar radiation, proved to be especially important in allowing a full-season crop to achieve record yields. Variables defining plant development in the model also had to be set to describe the high yielding cultivar grown in China. Leaf development was defined by the length of a phyllochron, which was set equal to 78 TU (thermal units, base temperature equal to 0 degrees C) based on independent data. The description of grain fill had to be defined to match simulation results with the observations. Two variables, length of the grain-fill period and the grain growth rate, were set in response to the unique traits of this cultivar and the low temperatures during grain development. These simulations led to important suggestions for examining the interaction between cool temperature regimes and developmental traits of wheat cultivars. (C) 1997 Published by Elsevier Science Ltd.

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硬粒小麦DR147授以超甜玉米(ss7700)的花粉后,83.4%的小麦柱头上的玉米花粉萌发,花粉管经由花柱抵达胚囊,受精率和成胚率分别为44.4%和42.6%。杂种合子核型高度不稳定,在细胞分裂过程中来自父本玉米的染色体逐渐被排除,最后形成硬粒小麦单倍体胚。尽管硬粒小麦×玉米存在较高频率的双受精(32.7%),同时形成胚和胚乳,但由于胚乳发育异常及败育,最后难以获得有生活力的种子。 硬粒小麦授以玉米的花粉后用100ppm 2,4-D进行处理(浸蘸穗子或向穗茎节间注射),可以延长杂种胚在植株上的存活时间。授粉9-13天后将颖果表面灭菌后在实体显微镜下剥取不同发育时期的幼胚,分别接种于含或不含2.0mg/l2,4-D,3%蔗糖,200mg/l水解酪蛋白,146mgl谷氨酰氨,300mg/l天冬氨酸的MS固体培养基上进行胚拯救或诱导愈伤组织。结果表明,发育程度较高的胚(具盾片的胚,长度大于0.5mm)容易通过胚拯救获得单倍体植株或诱导出愈伤组织,而发育程序较低的胚(琏形胚,梨形胚,鱼雷形胚,长度小于0.3mm)不易获得单倍体植株或诱导愈伤组织而常常变褐,最后死亡。如果将这些胚预先接种子含0.1mg/l BAP,3%蔗糖,200mg/l水解酪蛋白,146mg/l谷氨酰胺,300mg/l天冬氮酸的MS固体培养基上预培养20天,再转移至愈伤组织诱导培养基上则易于产生愈伤组织,通过选择和继代培养可以获得淡黄色,结构致密的胚性愈伤组织。将这种愈伤组织转移至含1.Omg/l BAP和0.1mg/l NAA的MS固体分化培养基上培养20天后即可分化出小植株和绿色芽点,将这些小植株和绿色芽点再在分化培养基上继代培养20天,形成大量根系发达的健壮植株及次生小植株。其中一个胚性愈伤组织系的分化频率高达70. 6%。从获得的100余棵植株中随机取6棵再生植株进行根尖细胞染色体计数发现它们均为单倍体。具发达根系的健壮植株移入实验田后成活率可达80%以上,并生长至成熟。 利用硬粒小麦×玉米建立的单倍性胚性愈伤组织系进行了原生质体培养的研究。胚性愈伤组织经液体悬浮培养4个月后形成了生长迅速的由大小不同(0.5mm至5mm)的愈伤组织块组成的混合悬浮愈伤组织系,酶解试验表明2.0%纤维素酶RS和0.5%离析酶Y-23组合效果最好,而液体悬浮培养物和固体培养的愈伤组织(在酶解时用锋利的解剖刀片切成1mm左右的块)都能释放出大量原生质体,但悬浮培养物释放出的原生质体状态较好,胞质更浓厚,用KM8p培养基以琼脂糖包埋培养方式培养时得到了较高的(5%左右)分裂频率。 原生质体再生的小愈伤组织经增殖、筛选后可获得胚性愈性组织,将其转移至分化培养基Ⅰ(0.2mg/l 2,4-D,1.0mg/l BAP,0.1mg/l NAA,3%蔗糖,200mg/l水解酩蛋白,146mg/l谷氨酸胺,300m8/l天冬氨酸的MS固体培养基)和Ⅱ(不含2,4-D,其它成份同I)上进行分步分化培养可再生出完整植株,分化频率约为20%。从获得的22棵原生质体再生植株中,随机取4株进行根尖细胞染色体计数表明,它们均为单倍体。

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本文探讨了五十年来北京地区广泛推广的17个冬小麦(Triticun aestivum L)品种在品种改良的过程中农艺性状和某些光合特性的变化趋势。从中选出形态、产量和推出年代差异最大的3个冬小麦品种:京冬8号、农大139和燕大1817,种植在相同的环境条件下,进一步研究与冬小麦产量提高有关的生理生态特性,以及它们的气体交换特性对于外界环境变化的响应。本试验于1999-2001年在北京农林科学院试验农场(39o09’N, 116o04’E)进行。结果如下: 1. 在冬小麦品种改良的过程中,小麦品种的经济产量、收获指数、千粒重提高,而生物产量、株高、单株穗数、单株籽粒产量和穗长降低。籽粒产量与株高、穗数极显著负相关,与穗粒重、收获指数、千粒重极显著正相关。株高与穗长、单株籽粒产量、穗数显著正相关,而与收获指数和千粒重极显著负相关。收获指数与穗数极显著负相关,而与千粒重极显著正相关。说明株高降低、收获指数提高和千粒重的提高对于冬小麦品种改良过程中产量的提高起重要作用。 2. 随品种推出年代的延迟,各品种苗期-拔节期的净光合速率(PN)、 气孔导度(gs)、蒸腾速率( E)、量子产率(Fv/Fm)均呈增加的趋势,水分利用率(WUE)呈降低的趋势。在孕穗期-蜡熟期,旗叶的PN也随品种推出年代而呈增大的趋势,而在成熟期呈减小的趋势。gs在孕穗期-灌浆期增大,在蜡熟期和成熟期减小;各个时期的E均呈递增趋势;而WUE呈降低趋势。旗叶的Fv/Fm在孕穗期和开花期呈递增的趋势,而在成熟期下降。在苗期至孕穗期,PN、 E均与产量显著正相关;在拔节始期和孕穗期gs与产量显著正相关(R=0.616, 0.499, P<0.05),在苗期-拔节期、开花期和成熟期,WUE与历史产量和试验产量显著负相关(P<0.05, 或P<0.001),在苗期和拔节期Fv/Fm与产量正相关(P<0.05)。在冬小麦品种的改良过程中,其光合作用的改良不仅表现在净光合速率上,而且还表现在荧光动力学参数Fv/Fm上, 即PSII的原初光能转化效率有所提高。 3. 孕穗期至灌浆期,高产品种京冬8号旗叶的PN、gs、E、叶绿素含量和水分含量均最高,而水分利用率(WUE)较低,且具有较高的光呼吸和较低的暗呼吸,其旗叶的叶比重也较高。京冬8号(上世纪90年代推出)叶片气体交换的日变化表现为:在拔节期,全天的净光合速率均最高,而后随生育进程差异变小,通常上午较高,而在中午和下午较低。其旗叶Fv/Fm的变化趋势与净光合速率相似。燕大1817(上世纪40年代推出)的光合作用的午休现象较不明显,且在下午恢复较快,说明它可能具有一定的抗光抑制能力。孕穗至灌浆期是冬小麦籽粒形成和充实的关键时期,此时,叶片光合产物充足与否直接影响千粒重。进一步研究它们“源库”关系的结果表明,京冬8号“源库”关系协调,能够充分发挥“源“和“库”的潜力,且具有最高的收获指数、穗粒重和千粒重,而其它两个品种燕大1817和农大139都存在提高其品种产量潜力的限制因素。因此我们认为,高产品种的高产不仅因为其叶片具有较高的光合速率和较低的暗呼吸消耗,而且有较大的“库”容量和收获指数。 4. 当CO2浓度从360增加到720 µmol.mol-1时,单位叶面积的净光合速率和叶片的水分利用率 随CO2浓度升高而升高。但不同品种差异很大,京冬8号PN 和WUE最高,增加最多,分别提高了173 %和81 %;其次为农大139(上世纪70年代推出),燕大1817增加最少,分别提高了76 %和65 %。E随CO2 浓度的增加而提高;农大139和燕大1817的gs随CO2浓度的增大而减小,而京冬8号则增大。京冬8号和农大139旗叶胞间CO2浓度(Ci) 随CO2 浓度的增加而增大,而燕大1817 的Ci先增大,而后又急剧降低,且京冬8号的Ci最低,燕大1817 最高。在高CO2浓度下,京冬8号的光合速率显著高于其它两个品种,而Ci却低于其它两个品种,说明京冬8号的光合潜力高于其它两个品种。灌浆期高产品种京冬8号旗叶在田间不同自然光强下,净光合速率都是最高的(差异最大时,比燕大1817提高24.8 %)。因此,冬小麦光合作用的潜力,也在一定程度上得到改良。

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本实验以冬小麦“农大139”(T. aestivum L. cv. Nongda 139)为材料对春化作用诱导开花的分子机制作了一些探讨,主要结果如下: 1. 应用SDS-PAGE及高分辨双向电泳技术,比较了冬小麦给予春化、脱春化及超期春化处理后的电泳图谱,并结合对春小麦对照样品的分析,结果发现有一些蛋白质和春化作用紧密相关,它们随春化而出现、随脱春化而消失,并在不经低温处理即可以开花的春小麦对照中存在。也就是说,这些开花特异的蛋白质(FSPs)的存在或在诱导下的合成和小麦抽穗开花能力的获得存在一种正相关,因此推测它们在冬小麦由营养生长状态向生殖生长状态转变的过程中起了关键性的作用。 2. 从不同处理的及对照样品中提取mRNA进行体外翻译的结果表明:春化作用过程中低温诱导了mRNA组分的变化,其中一些新产生的mRNA种类与春化诱导的开花能力的获得呈高度相关,即它们是开花特异的(Flower Specific),它们中有的只在春化的特定时期存在并起作用。 3.比较体内分析及体外翻译的结果发现,一些开花特异蛋白质(FSPs)可以同时在体内提取物及体外翻译产物中检测到,因此,春化作用中开花特异蛋白质诱导合成的调节很可能发生在转录水平上。 4.基于以上结果的分析可以推测春化诱导开花是低温导致了开花特异基因表达的结果,超期春化的效应不能被脱春化所逆转则系编码这些开花特异蛋白质的基因在长期低温条件下转变成了组成性表达所致。 有关低温诱导产生的开花特异蛋白质的性质与功能及编码这些蛋白质的基因尚需进一步研究。

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本研究首次揭示了七种苏铁类植物叶绿体的超微结构。即苏铁科(Cycadaceae)的攀枝花苏铁(C. panzhihuaensis).苏铁(C. revoluta)、叉叶苏铁(C.micholitzii)、 刺叶苏铁(C.rumphii和多歧苏铁(C.multipinnata),蕨铁科(Stangeriaceae)的蕨铁(Stangeria eriopus)和泽米科(Zamiaceae)的米德尔堡大苏铁(Encephalortos middelburgensis).根据它们叶绿体内膜结构的不同将其大体分为两种类型:1、阴生型叶绿体:多歧苏铁和刺叶苏铁为此类型,它们的叶绿体类囊体垛叠程度高,基粒垛较宽,单个基粒中类囊体的数量很多,有的甚至上百;2、阳生型叶绿体:攀枝花苏铁、米德尔堡大苏铁、苏铁、蕨铁和刺叶苏铁以及外类群的凤尾蕨(Pteris vittata)的叶绿体均有阳生型叶绿体的特征:类囊体膜垛叠程度低,基粒较小。根据它们叶绿体的结构特征,又将其分为两组: ( 1)攀枝花苏铁,米德尔堡大苏铁和叉叶苏铁叶绿体中均有类囊体膜膨大的现象: (2)苏铁和蕨铁在苏铁类中是比较原始的种类,它们的叶绿体与在系统进化上较苏铁类低等的凤尾蕨的叶绿体中都有几个基粒聚集成簇的现象,说明苏铁类在进化的同时一些较原始的性状仍保留了下来。这些苏铁都在温室相同的条件下生长了两年多,但它们的叶绿体结构仍然能够反应原产地生境特点,说明在长期进化中,叶绿体对环境的适应方式已在基因水平上稳定下来,苏铁类植物不同叶绿体结构的形成有其遗传基础。 多歧苏铁,攀枝花苏铁,叉叶苏铁的叶绿体膜垛叠程度依次降低,与此相应,它们的chla/b和F730/F684依次升高,反应了结构与功能的一致性。 选用具有阳生型叶绿体的攀枝花苏铁和有阴生型叶绿体的多歧苏铁用不同的C02浓度(350 umol mol-l和700umol mol-l)处理后观察其叶绿体结构的变化,结果发现C02浓度倍增对它们的叶绿体影响甚微,而作为对照的无论是C3植物小麦(Triticum italica)还是C4植物谷子(Setaria italica)在C02倍增的条件下叶绿体内均有大量淀粉粒积累,并有膜结构改变。这说明苏铁的叶绿体结构有保守性,这有可能是苏铁类能历经亿万年的沧桑而生存下来的结构基础之一。

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为揭示灌浆期水分亏缺对不同倍性小麦光合特性和产量的影响,选用二倍体野生一粒、栽培一粒小麦,四倍体野生二粒、栽培二粒小麦,六倍体小麦"长武134"和"陕253"等6个小麦品种作为供试材料,通过盆栽控水方式,对不同倍性小麦旗叶净光合速率、瞬时水分利用效率和产量进行了研究。结果表明,在正常供水、轻度干旱和严重干旱3种水分处理下,不同倍性小麦旗叶净光合速率、水分利用效率和产量差异极显著。在灌浆过程中,水分亏缺对不同倍性小麦净光合速率变化趋势的影响不明显。而最大净光合速率和水分利用效率随水分胁迫的加重而减小。六倍体小麦平均最大净光合速率为22.03μmol CO2.m-2.s-1),高于二倍体和四倍体小麦。六倍体小麦平均最大水分利用效率约为7.12μmol CO2/mmol H2O,分别是四倍体和二倍体的1.63倍和2.05倍,并且在灌浆开始时就达到最大。因此,小麦长期进化过程中,六倍体小麦花后较强的光合能力和较高的水分利用效率是提高小麦产量的重要生理基础。

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高等植物种子胚乳贮藏蛋白是种子发芽时的主要氮源,也是人类和动物食用植物蛋白的主要来源。大麦种子胚乳贮藏蛋白主要是醇溶蛋白(hordeins),占大麦胚乳总蛋白的50–60%。根据大麦醇溶蛋白的大小和组成特点,大麦醇溶蛋白被划分为三种类型:富硫蛋白亚类(B,γ-hordeins)、贫硫蛋白亚类(C-hordeins)以及高分子量蛋白亚类(D-hordeins)。B组和C组醇溶蛋白是大麦胚乳的两类主要贮藏蛋白,它们分别占大麦总醇溶蛋白成分的70–80%和10–12%。遗传分析表明,大麦B、C、D和γ-组醇溶蛋白分别是由位于大麦第五染色体1H(5)上的Hor2、Hor1、Hor3和Hor5位点编码。Hor2位点编码大量分子量相同但组成不同的B组醇溶蛋白(B-hordein)。B-hordein的种类、数量和分布是影响大麦酿造、食用及饲养品质的重要因素之一。为深入了解B-hordein基因家族的结构和染色体组织,探明Hor2位点基因表达的发育调控机制,最终达到改良禾谷类作物籽粒品质的目的,本研究以青藏高原青稞为材料,采用同源克隆法,分别克隆B-hordein基因和启动子,通过原核生物表达验证B-hordein基因功能,并利用实时定量PCR探索B-hordein基因表达时空关系,取得如下研究结果: 1. 以具有特殊B组醇溶蛋白亚基组成的9份青藏高原青稞为材料,根据GenBank中三个B-hordein基因序列(GenBank No. X03103, X53690和X53691)设计一对引物,通过PCR扩增,获得23个B-hordein基因克隆并对其进行了序列分析。核苷酸序列分析表明,所有克隆均包含完整的开放阅读框。有11个克隆都存在一个框内终止密码子,推测这11个克隆可能是假基因。推测的氨基酸序列分析表明,所有大麦B-hordein具有相似的蛋白质基本结构,均包括一个高度保守的信号肽、中间重复区以及C-端结构域。不同大麦种重复区内重复基元的数目有较大差异。青稞材料Z07–2和Z26的B-hordeins仅具有12个重复基元结构,更接近于野生大麦。这些重复基元数目的差异导致了重复区序列长度和结构的变异。这种现象极可能是由于醇溶谷蛋白基因在进化过程中染色体的不平衡交换或复制滑动所造成的。对所克隆基因和禾本科代表性醇溶谷蛋白基因进行聚类分析,结果表明所有来自栽培大麦的B-hordeins聚类成一个亚家族,来自野生大麦的B-hordeins以及普通小麦的LMW-GS聚类成另外一个亚家族,表明这两个亚家族的成员存在显著差异。此外,我们发现B-hordein基因推测的C-末端序列具有一些有规律的特征:即具有相同C-末端序列的B-hordein基因在系统发生树中聚类为同一个亚组(除BXQ053,BZ09-1,BZ26-5分别单独聚为一类外)。这个特征将有助于我们对所有B组醇溶蛋白基因家族成员进行分类,避免了在SDS-PAGE电泳图谱上仅依靠大小分类的局限性。 2. 根据上述克隆的青稞B-hordein基因的5’端序列设计三条基因特异的反向引物,以青稞Z09和Z26的基因组DNA为模板,采用SON-PCR和TAIL-PCR技术分离克隆出8个B-hordein基因的上游调控序列(命名为Z09P和Z26P)。序列分析表明,推测的TATA box位于–80 bp,CAAT–like box位于–140 bp处。此外,Z09P和Z26P中有六个序列在–300 bp处均存在一个由高度保守的EM基序和类GCN4基序构成的胚乳盒(Endosperm Box,EB),在约–560 bp处存在一个胚乳盒类似结构。而Z09P-2和Z26P-3不存在保守的胚乳盒或其类似结构,预示着这两个启动子所调控的基因表达可能受不同类型反式作用因子的调节,推测该启动子对基因的表达调控具有多样性。 3. 将B-hordein基因的开放阅读框定向克隆到表达载体pET-30a中,将其导入大肠杆菌表达菌株BL21中进行外源基因的诱导表达以验证所克隆基因的功能。结果表明仅含重组子pET-BZ07-2和pET-BZ26-5的BL21细菌有目的表达蛋白产生。在诱导3 h时的蛋白表达量最高;3 mM IPTG诱导的蛋白表达量要高于1 mM IPTG诱导的表达量。这为分离纯化B-hordein蛋白以及进一步研究其对大麦籽粒品质的影响奠定基础。 4. 根据从青稞Z09和Z26中分离克隆的B-hordein基因序列设计一对基因特异的引物,同时,选择大麦α-微管蛋白基因(GenBank no. U40042)为看家基因并设计特异引物,利用实时荧光定量PCR检测了青稞籽粒4个胚乳发育时间段的B-hordein基因表达,荧光定量结果显示:两份材料中B-hordein基因的表达量均随发育过程的进行而逐渐升高。Z09中B-hordein基因在开花后7天开始转录,而Z26开花4天后就有低水平B-hordein的表达,这表明Z26中B-hordein基因可能比Z09表达的较早或者Z09中B-hordein基因表达水平较低以致于不能被检测到。此外,在4个不同的胚乳发育时期中,Z26中B-hordein基因的表达量均高于Z09材料。在开花12天到18天的过程中,Z09和Z26中B-hordein基因的表达水平有一个急剧性的升高。这说明在不同胚乳发育时期,Hor2位点的B-hordein等位基因变异体存在mRNA的差异表达。 Seed endosperm storage proteins in higher plants are the main resources of nitrogen for germinating and plant proteins for human and animals. Barley prolamins (also called hordeins) are the major storage proteins in the endosperm and account for 50–60% of total proteins. Hordeins are classically divided into three groups: sulphur-rich (B, γ-hordeins), sulphur-poor (C-hordeins) and high molecular weight (HMW, D-hordeins) hordeins based on the size and composition. B-hordeins and C-hordeins are two major groups and each respectively account for about 70-80% and 10-12% of the total hordein fraction in barley endosperm. Genetic analysis showed that B-, C-, C-, γ-hordeins are encoded by Hor2, Hor1, Hor3 and Hor5 locus on the chromosome 1H (5). Hor2 locus is rich in alleles that encode numerous heterogeneous B-hordein polypeptides. It is reported that B-hordein species, quantity and distribution are significant factors affecting malting, food and feed quality of barley. To understand comprehensively the structure and organization of B-hordein gene family in hull-less barley and explore the developmental control mechanisms of Hor2 locus gene expression and eventually to better exploitation in crop grain quality improvement, we isolated and cloned B-hordein genes and promotors of hull-less barley from Qinghai-Tibet Plateau by PCR, and testified their expression founction in bacteria expression system and explore their spatial and temporal expression pattern by quantitative real time PCR. Our results are as followed, 1. Twenty-three copies of B-hordein gene were cloned from nine hull-less barley cultivars of Qinghai-Tibet Plateau with special B-hordein subunits and molecularly characterized by PCR, based on three B-hordein genes published previously (GenBank No. X03103, X53690 and X53691). DNA sequences analyses confirmed that the six clones all contained a full-length coding region of the barley B-hordein genes. Eleven clones all contain an in-frame stop codon and they are probably pseudogenes. The analysis of deduced amino acid sequences of the genes shows that they have similar structures including signal peptide domain, central repetitive domain, and C-terminal domain. The number of the repeats was largerly variable and resulted in polypeptides in different sizes or structures among the genes. Twelve such repeated motifs were found in Z07–2 and Z26, and they are close to those of the wild barleys, and it is most probably caused by unequal crossing-over and/or slippage during replication as suggested for the evolution of other prolamins. The relatedness of prolamin genes of barley and wheat was assessed in the phylogenetic tree based on their polypeptides comparison. Our phylogenetic analysis suggested that the predicted B-hordeins of cultivated barley formed a subfamily, while the B-hordeins of wild barleys and the two most similar sequences of LMW-GS of T. aestivum formed another subfamily. This result indicated that the members of the two subfamilys have a distinctive difference. In addition, we found the B-hordeins with identical C-terminal end sequences were clustered into a same subgroup (except BXQ053,BZ09-1 and BZ26-5 as a sole group, respectively), so we believe that B-hordein gene subfamilies possibly can be classified on the basis of the conserved C-terminal end sequences of predicted polypeptide and without the limit of SDS-PAGE protein banding patterns. 2. The specific primers were designed according to the published sequences of barley B-hordein genes from Z09 and Z26. Using total DNA isolated from them as the templates, eight clones (designated Z09Pand Z26P) of upstream sequences of the known B-hordein genes was obtained by TAIL-PCR and SON-PCR. Sequences analysis shows that the putative TATA box was present at position –80 bp and CAAT-like box at position –140 bp. Besides, a putative Endosperm Box including an Endosperm Motif (EM) and a GCN4-Like Motif was found at position –300 bp in six clones, and another Endosperm-like box was found at positon –560 bp. While the Endosperm Box or Endosperm-like box was not found in Z09P-2 and Z26P-3. This may indicate that gene expression drived by the two promtors was probably controlled by different trans-acting factors and the genetic control mechanism of corresponding gene expression may be diverse. 3. The B-hordein genic region coding for the mature peptide was cloned into expression vector pET-30a and transformed into bacterial strain BL21 for identifying gene expression fountion. Protein SDS–PAGE analysis showed that only the transformed lysate with the pET-BZ07-2 and pET-BZ26-5 constructs produced proteins related to B-group hordeins of barley, and the mounts of proteins induced by 3 mM IPTG and 3 h were higher than other conditions. This established a base for isolating and putifying B-hordein and further exploring their effects on barley grain quality. 4. The gene-specific primers of B-hordein genes from Z09 and Z26 were used for the quantification of B-hordein gene expression. The α-tubulin gene from Hordeum vulgare subsp. vulgare (GenBank accession number U40042) was used as a control gene. The result shows the transcription of the B-hordein genes in Z09 was found 7 days after flowering, while the transcription of the B-hordein genes in Z26 was found 4 days after flowering, but at a very low level, and it suggested that the B-hordein genes in Z26 probably expressed earlier than those in Z09, or the B-hordein genes in Z09 expressed at so a lower level than Z26 that it can not detected. In addition, B-hordein genes in Z26 accession showed higher expression levels than those in Z09 in four developing stages. Furthermore, a progressive increase in the expression levels of the B-hordein genes between 12 and 18 days after anthesis was observed in both Z09 and Z26. It implies that the B-hordein allelic variants encoded by Hor2 locus exist the differential expression in mRNA levels of during barley endosperm development.

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小麦是世界第一大粮食作物, 而HMW- GS 是直接影响小麦品质的重要因子。我国小麦面粉的烘烤品质普遍较差, 这与我国品种缺少优质的HMW- GS 有关,因此创造与发掘新的优质谷蛋白亚基编码基因,并开展相关生化、农学、分子生物学等方面研究、探讨优质的分子机理,对于培育优质小麦新品种具有重要意义。W958是我们培育的种间远缘杂交(T.durum Desf. ×T.aestivum L)优良品系,该品系在1D染色体上具有父母本没有的新型亚基,由于此亚基在SDS- PAGE电泳中具有和1Dx5亚基一样的电泳迁移率, 因此我们将该亚基命名为1Dx5’亚基。为了进一步从分子水平确证该亚基为新亚基和在育种中利用该亚基,本研究对该亚基的遗传规律、基因分子结构、品质特性和农艺性状等进行了分析。结果表明1Dx5’亚基在品质上与1Dx5亚基一样优质,对于品质的贡献大于1Dx2亚基。1Dx5’亚基具有特异的遗传规律,在分离群体中,此亚基占有极大的比例,该特性十分有利于将其导入高产小麦遗传背景中。此外,本研究扩增出了1Dx5’亚基基因的启动子区域、N-端区域和部分中间重复区域,并比较了1Dx5’和传统的1Dx5、1Dx2亚基在此区域氨基酸序列。结果进一步证明了1Dx5’是一个新的基因。通过蛋白质结构模拟分析,认为1Dx5’亚基的优良特性可能是由于1Dx5’亚基的的中部重复区域能形成分子间较强的氢键,加大了分子间的相互作用,使1Dx5’亚基的面团具有优良的品质,这为1Dx5’亚基的应用提供了理论基础。同时,本研究还设计用于区分1Dx5’和1Dx5等位基因的分子标记,解决了利用SDS-PAGE生化标记难以将二者区分的问题。Wheat is one of the major crops utilized worldwide. Nevertheless, due to the lackof the superior HMW- GS, the wheat quality in China is not satisfying. Therefore,identification and characterization of the superior HMW- GS will lay good foundation to the wheat breeding.W958 is a new bread wheat line developed by interspecific cross (T.durum Desf.×T.aestivum L). It contains a novel HMW- GS. We have designated such subunit as1Dx5’ here for its unique character. To confirm that such subunit is innovative andbeneficial for wheat breeding program on the molecular level, we have investigated itin terms of inheritance, DNA and protein sequence, dough property and agronomictrait associated with it. The result shows that 1Dx5’is as superior as 1Dx5 in terms of dough property.In addition, we have cloned the promoter, N- terminal as well as partial centralrepetitive domain of the allele coding for this subunit. Comparison of the amino acidsequence of 1Dx5’ with that of 1Dx5 and 1Dx2 showed that the superior quality of1Dx5’ subunit may result from the degree of conservation of the repetitive sequencesby which the glutenin polymers interact via inter-chain hydrogen bonds formedbetween the subunit repetitive domains with longer subunits forming more stableinteractions. In addition, we have developed two dominant molecular markers tofacilitate the discrimination of 1Dx5’ and 1Dx5 which could no be achieved by SDS-PAGE.

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禾谷孢囊线虫严重影响禾谷类作物的产量,在小麦中由禾谷孢囊线虫引起的产量损失可达30-100%。尤其在澳大利亚、欧洲、印度和中东危害严重,目前禾谷孢囊线虫已成为危害我国作物的主要病源。控制禾谷孢囊线虫的方法主要有:作物轮作、杀线虫剂、寄主抗性等等,其中基因工程方法培育抗线虫小麦品种被认为是最经济有效的方法。分离抗禾谷类孢囊线虫基因对揭示抗性基因结构与功能及其表达调控具有重要意义。 尽管小麦是重要的粮食作物,在小麦中已发现的抗禾谷孢囊线虫的基因很少,而比其近缘属如节节麦、易变山羊草、偏凸山羊草中含有丰富的抗源。目前已鉴定出禾谷孢囊线虫抗性位点Cre,并发现了9个禾谷孢囊线虫抗性基因(Cre1,2, 3, 4, 5, 6, 7, 8, and R) ,其中只有Cre1和Cre8直接从普通小麦中获得。从节节麦中获得的Cre3基因能最有效的控制线虫数量,其次是Cre1和Cre8。这些基因的克隆对于了解禾谷孢囊线虫抗性机制及进一步的育种应用都是非常关键的。然而,目前为止仅有Cre3基因通过图位克隆的方法从节节麦中被分离得到。该基因已被克隆得到的多数线虫抗性基因一样均属于核苷酸结合位点区(NBS)-亮氨酸重复序列区(LRR)基因家族。目前,已有很多抗性基因被分离,这些已知的NBS-LRR类抗性基因的保守序列为应用PCR的方法克隆新的抗性基因提供了可能。 因此本课题的目的是采用保守区同源克隆、3′RACE 和5′RACE 等方法从抗禾谷孢囊线虫小麦-易变山羊草小片段易位系E10 中克隆小麦抗禾谷孢囊线虫基因全序列,进而通过半定量PCR 和荧光定量PCR 研究该基因的表达模式。同时通过mRNA 差别显示技术和任意引物PCR(RAP-PCR)技术分离克隆植物禾谷孢囊线虫抗性基因及其相关基因,为阐明植物抗病性分子机制以及改良作物抗病性和作物育种提供基础,为通过分子标记辅助育种和基因工程方法实现高效、定向转移抗病基因到优良小麦品种奠定了重要的理论和物质基础。主要研究结果: 1. 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的抗禾谷孢囊线虫Cre3 基因及其他的NBS-LRR 类抗性基因的NBS 和LRR 保守区序列设计了两对特异性引物,从E10 中扩增到532bp 和1175bp 的两个目标条带,它们有一个32bp 的共同序列,连接构成总长为1675bp 的NBS-LRR 编码区(命名为RCCN)。根据RCCN设计引物,利用NBS-LRR区序列设计引物,通过5′RACE 和3′RACE 技术采用3′-Full RACE Core Set(TaKaRa)和5'-Full RACE Kit (TaKaRa)试剂盒,反转录后通过嵌套引物GSP1 和GSP2 分别进行两轮基因特异性扩增,分别将NBS_LRR 区向5′端和3′端延伸了1173bp 和449bp,并包含了起始密码子和终止密码子。根据拼接的得到的序列重新设计引物扩增进行全基因扩增的结果与上面获得的一致。拼接后得到全长2775 bp 的基因序列(记作CreZ, GenBank 号:EU327996)。CreZ 基因包括完整的开放阅读框,全长2775 bp,编码924个氨基酸。序列分析表明它与已知的禾谷孢囊线虫抗性基因Cre3的一致性很高,并且它与已经报到的NBS-LRR 类疾病抗性基因有着相同的保守结构域。推测CreZ基因可能是一个新的NBS-LRR 类禾谷孢囊线虫抗性基因,该基因的获得为通过基因工程途径培育抗禾谷孢囊线虫小麦新品种奠定了基础,并为抗禾谷孢囊线虫基因的调控表达研究提供了参考。 2. 通过半定量PCR和SYBR Green荧光定量PCR技术对CreZ基因的相对表达模式进行了研究。以α-tubulin 2作为参照,采用半定量PCR 分析CreZ 基因在不同接种时期1d, 5d, 10, 15d 的E-10的根和叶的的表达情况。在内参扩增一致的条件下,CreZ 在E-10的根部随着侵染时间的增加表达量有明显的增加,在没有侵染的E-10的根部其表达量没有明显变化,而在叶中没有检测表达,说明该基因只在抗性材料的根部表达。SYBR Green定量PCR分析接种前后E10根部基因CreZ基因的表达水平为检测CreZ基因的表达建立了一套灵敏、可靠的SYBRGreen I 荧光定量PCR 检测方法。接种禾谷孢囊线虫后E10根内CreZ基因的相对表达水平显著高于接种前。随接种时间的延长持续增加,最终CreZ基因的相对表达量达到未接种的对照植株的10.95倍。小麦禾谷孢囊线虫抗性基因CreZ的表达量与胁迫呈正相关,表明其与小麦的的禾谷孢囊线虫抗性密切相关,推测CreZ基因可能是一个新的禾谷孢囊线虫候选抗性基因。 3. 针对小麦基因组庞大、重复序列较多,禾谷孢囊线虫抗性基因及其相关基因的片断难以有效克隆的问题,通过mRNA 差别显示技术及RAP-PCR 技术分离克隆植物禾谷孢囊线虫抗性及其相关基因。试验最终得到154 条差异表达条带,将回收得到的差异条带的二次PCR 扩增产物经纯化后点到带正电的尼龙膜上,进行反向Northern 杂交筛选,最终筛选得到102 个阳性差异点。将其中81 个进行测序,并将序列提交到Genbank 中的dbEST 数据库,分别获得登录号(FE192210 -FE192265,FE193048- FE193074 )。序列比对分析发现,其中26 个序列与已知功能的基因序列同源;有28 条EST 序列在已有核酸数据库中未找到同源已知基因和EST,属新的ESTs 序列;另外27 个EST 序列与已知核酸数据库中的ESTs 具有一定相似性,但功能未知。其所得ESTs 序列补充了Genbank ESTs 数据库,为今后进一步开展抗禾谷类孢囊线虫基因研究工作打下了基础。结合本试验功能基因的相关信息,对小麦接种禾谷孢囊线虫后产生的抗性机制进行了探讨。接种禾谷孢囊线虫后植物在mRNA 水平上的应答是相当复杂的,同时植物的抗病机制是一个复杂的过程,涉及到多个代谢途径的相互作用。 The cereal cyst nematode (CCN), Heterodera avenae Woll, causes severe yieldreductions in cereal crops. The losses caused by CCN can be up to 30-100% in somewheat fields. At present, cereal cyst nematode has become the major disease sourcein China and it also damaged heavily in Australia, Europe, India and Middle East.The damage caused by CCN can be mitigated through several methods, includingcrop rotation, nematicide application, cultural practice, host resistance, and others.Of these methods, incorporating resistance genes into wheat cultivars and breedingresistant lines is considered to be the most cost-effective control measure forreducing nematode populations. Although wheat is an economically important crop around the world, far fewergenes resistant to CCN were found in wheat than were detected in its relatives, suchas Aegilops taucchi, Aegilops variabilis and Aegilops ventricosa. Cloning these genesis essential for understanding the mechanism of this resistance and for furtherapplication in breeding. Because of the huge genome and high repeat sequencescontent, the efficient methods to clone genes from cereal crops, are still lacking. A resistance locus, Cre, has been identified and 9 genes resistant to CCN (designatedCre1, 2, 3, 4, 5, 6, 7, 8, and R) have been described, in which Cre1 and Cre8 werederived directly from common wheat. The Cre3 locus, which was derived from Ae.tauschii, has the greatest impact on reducing the number of female cysts, followed byCre1 and Cre8. Cloning these genes is essential for understanding the mechanism ofthis resistance and for further application in breeding. However, to this point, only Cre3, a NBS-LRR disease resistance gene, has been obtained through mappingcloning in Ae. tauschii. The majority of nematode resistance genes cloned so far belong to a super familywhich contains highly conserved nucleotide-binding sites (NBS) and leucine-richrepeat (LRR) domains. To date, many NBS-LRR resistance genes have been isolated.The conserved sequences of these recognized NBS-LRR resistance genes provide thepossibility to isolate novel resistance genes using a PCR-based strategy. The aim of the present study was to clone the resistance gene of CCN fromWheat/Aegilops variabilis small fragment chromosome translocation line E10 whichis resistant to CCN and investigate the espression profiles of this gene withsemi-quantitative PCR and real-time PCR. Another purpose of this study is cloningthe relational resistance gene for CCN by mRNA differential display PCR andRAP-PCR. These works will offer a foundation for disease defence of crop andbreeding and directional transferring resistance gene into wheat with geneengineering. Primary results as following: 1.According to the conversed motif of NBS and LRR region of cereal cystnematode resistance gene Cre3 from wild wheat (Triticum tauschlii) and the knownNBS-LRR group resistance genes, we designed two pairs of specific primers for NBSand LRR region respectively. One band of approximately 530bp was amplified usingthe specific primers for conversed NBS region and one band of approximately 1175bpwas amplified with the specific primers for conversed LRR region. After sequencing,we found that these two sequences included 32bp common nucleotide having 1675bpin total, which was registered as RCCN in the Genbank. Based on the conservedregions of known resistance genes, a NBS-LRR type CCN resistance gene analog wasisolated from the CCN resistant line E-10 of the wheat near isogenic lines (NILs), by5′RACE and 3′ RACE.designated as CreZ (GenBank accession number: EU327996) .It contained a comlete ORF of 2775 bp and encoded 924 amino acids. Sequencecomparison indicated that it shared 92% nucleotide and 87% amino acid identitieswith those of the known CCN-resistance gene Cre3 and it had the same characteristic of the conserved motifs as other established NBS-LRR disease resistance genes. 2. Usingα-tubulin 2 as exoteric reference, semi-quantitative PCR and real-timePCR analysis were conducted. The expression profiling of CreZ indicated that it wasspecifically expressed in the roots of resistant plants and its relative expression levelincreased sharply when the plants were inoculated with cereal cyst nematodes. therelative expression level of the 15days-infected E10 is the 10.95 times as that ofuninfected E10,ultimately. It was inferred that the CreZ gene be a novel potentialresistance gene to CCN. 3.We cloned the relational resistance gene for CCN by mRNA differentialdisplay PCR and arbitrarily primed PCR fingerprinting of RNA from wheat whichpossess huge and high repeat sequence content genomes. Total 154 differentialexpression bands were separated and second amplified by PCR. The products werenylon membrane. The 102 positive clones were filtrated by reverse northern dot blotand 81 of those were sent to sequence. The EST sequences were submitted toGenbank (Genbank accession: FE192210 - FE192265, FE193048 - FE193074). Thesequences alignment analysis indicated 26 of them were identical with known genes;28 were not found identical sequence in nucleic acid database; another 27 ests wereidentical with some known ests, but their functions were not clear. These ESTsenriched Genbank ESTs database and offered foundation for further research ofresistance gene of CCN.

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应用花粉管通道技术将新疆大赖草总DNA导入小麦,用高重序列分析方法,已为大赖草总DNA转入小麦提供了初步的分子证据。在转 化后代中选育出稳定遗传的大穗变异株系,分析表明,这些转化株中蛋白质含量明显增高(13%-17%)。对基因供体新疆大赖草、受 体春麦761、转化株的高分子量谷蛋白亚基(HMW-GS)进行了SDS-PAGE分析,发现这些转化株中HMW-GS发生了很大变化,并在此基础 上,用来自小麦基因组的四对特异引物,以PCR方法扩增供体、受体以及转化株的1Ax、1Bx、1Dx及1Ay、1By、1Dy型HMW-GS全基因 ,比较他们扩增产物的差异,结果表明,受体与转化株在HMW-GS基因1Ax、1Bx位点上的扩增产物差异不大,在HMW-GS基因位点1Dx 和y型基因上的扩增产物有较大差异,说明了受体在基因位点1Dx、1Ay、1By和1Dy上可能发生了多位点插入,可能由于这些基因位 点上的插入引起了转化株的高分子量谷蛋白亚基(HMW-GS)的变化,这就再一次为大赖草总DNA导入提供了直接的分子证据。虽然大 赖草总DNA导入提高了小麦蛋白质的含量,改变了HMW-GS的组成,部分改变了品质评分,但我们感到这些转化株在品质改良方面仍 有很大余地,如何更好地利用新疆大赖草蛋白质的优良特性及避免总DNA导入给转化株带来的不良性状,一个大赖草HMW-GS基因正 被分离及克隆,并准备将其利用于未来的品质育种当中。Total DNA of Leymus racemosus had been transformed into wheat through pollen tube pathway. Analysis of the repeated gene sequence had provided an elementary proof. Some variant cultivars with big ear were screened from their offsprings, and their protein content increased greatly from 13% (receptor)to 17%(transformed). The result from SDS-PAGE analysis of high-molecular-weight glutenin subunits(HMW- GS) respectively in donor(Xinjiang Leymus racemosus), receptor(spring wheat cultivar 761)and transformed wheats, showed the HMW-GS composition changed in the transformed plants. On the basis of the research, Four special pairs primers from wheat(T.aestivum L.) genome were used to amplify complete coding regions of HMW-GS genes on 1Ax、1Bx 、1Dx and 1Ay、1By、1Dy loci of donor、receptor and the big ear transformed cultivars. By comparing amplified PCR products. Faint differences were found among receptor and transformed cultivar's 1Ax、1Bx PCR amplifed products and apparent differences on those of 1Dx、y-typePCR product. We gueseed that there may be some DNA inserts in 1Dx 、1By、1Dy loci resulted in the changes of the HMW-GS among transformed cultivars. This provides second direct molecular witness to the exogenous DNA introduction. Even though the transformed plants have higher protein content, changed HMW-GS composition, partially improved process quality, there still leave much work to improve quality. In order to make full use of the excellent property of Leymus racemosus protein and avoid the disadvantages introducced by total DNA transformation, a HMW-GS gene of Leymus racemosus was being isolated and cloned.

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利用开顶式气室研究了CO2浓度升高(550μmol/mol)对小麦(Triticum aestivumL)孕穗期和开花期抗氧化系统的影响。结果表明,高浓度CO2下,小麦叶片外渗电导率和丙二醛的含量下降,说明膜脂过氧化程度有所降低;虽然O2产生速率和H2O2含量2个时期相比开花期大于孕穗期,但是两者均低于对照,说明高CO2浓度下活性氧产生减少;SOD,POD,CAT的活性与对照相比有所增加并达到显著或极显著水平;随着CO2浓度的升高,ASA和Car含量也随之增加,但是随着生育期的推移,两者含量均有不同程度的减少;最终生物量和籽粒产量分别增长18%和14%,说明CO2浓度升高有利于减轻小麦的氧化损伤,促进植物生长。

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以小麦(Triticum acstivnm)为供试植物,草甸棕壤为供试土壤,以微粒体细胞色素P450及抗氧化酶SOD、POD和CAT酶活性为指标,进行了土壤中菲、芘单一及复合胁迫响应研究。结果初步表明,菲、芘胁迫引起植物体内解毒代谢和抗氧化防御酶反应。菲、芘单一胁迫浓度为1mgkg-1时对细胞色素P450产生显著诱导;4mgkg-1时P450酶含量明显被抑制,表明低浓度菲、芘单一胁迫对植物代谢解毒系统产生损伤;而菲、芘复合1mgkg-1时P450酶含量明显被抑制,说明菲、芘复合胁迫对植物的代谢解毒具有协同毒性效应。土壤中菲、芘单一胁迫未引起SOD酶活性的明显改变,复合胁迫下SOD酶活性出现微弱下降;菲、芘单一胁迫对CAT和POD酶活性具有显著抑制作用;复合胁迫对CAT产生抑制作用,而POD酶活性并未对菲、芘复合产生增强毒性响应。研究从代谢解毒和抗氧化防御酶系统两方面,为土壤低浓度PAHs污染诊断提供了实验依据。