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1.
窦振东  燕玲  白羡钦 《西北植物学报》2011,31(12):2449-2453
利用石蜡切片法对大果白刺花药进行细胞学研究,探讨雄性不育系发生败育的时期和方式以及雄性败育与药壁组织间的关系.结果表明:不育系小孢子母细胞形成前期,花药各部分结构发育正常.随着绒毡层的异常解体,多种异常现象相继出现,包括小孢子母细胞液泡化,中层、药室内壁、药隔细胞液泡化,细胞畸形,药壁细胞非正常解体等.退化后整个花药萎缩干瘪,不能开裂,无花粉.因此,大果白刺雄性不育系的绒毡层生理异常并提前退化是导致雄性不育的主要原因.  相似文献   

2.
棉花晋A细胞质雄性不育系的细胞形态学观察   总被引:2,自引:0,他引:2  
棉花晋A细胞质雄性不育系雄性败育的主要时期是在造孢细胞增殖--小孢子母细胞形成时期.造孢细胞和小孢子母细胞退化导致雄性不育的主要细胞学特征是造孢细胞不能进行正常的有丝分裂,胞内常含有n个微核,小孢子母细胞细胞质液泡化,并且认为绒毡层的退化与小孢子母细胞败育密切相关.  相似文献   

3.
棉花晋A细胞质雄性不育系的细胞形态学观察   总被引:3,自引:0,他引:3  
棉花晋A细胞质雄性不育系雄性败育的主要时期是在造孢细胞增殖——小孢子母细胞形成时期。造孢细胞和小孢子母细胞退化导致雄性不育的主要细胞学特征是:造孢细胞不能进行正常的有丝分裂,胞内常含有n个微核,小孢子母细胞细胞质液泡化,并且认为绒毡层的退化与小孢子母细胞败育密切相关。  相似文献   

4.
用光镜和电镜观察羽叶薰衣草(Lavandula pinnata L.)雄性不育小孢子发育过程的细胞形态学特征.结果表明:羽叶薰衣草花药4枚,每枚花药通常具4个小孢子囊.花药壁发育为双子叶型,从外向内分为表皮、药室内壁、中层和绒毡层4层细胞.减数分裂形成的四分体为四面体及十字交叉型.小孢子的发育过程可分为造孢细胞期、减数分裂时期、小孢子发育早期、小孢子发育晚期.未观察到二胞花粉期和成熟花粉期.羽叶薰衣草花粉败育主要发生在单核花粉时期,细胞内物质解体并逐渐消失变成空壳花粉或花粉皱缩变形成为各种畸形的败育花粉.在此之前小孢子的发育正常.羽叶薰衣草小孢子不育机制体现在绒毡层过早解体、四分体时期以后各细胞中线粒体结构不正常、胼胝质壁与小孢子母细胞脱离、花药壁细胞中淀粉出现时间异常等. 壁发育为双子叶型,从外向内分为表皮、药室内壁、中层和绒毡层4层细胞.减数分裂形成的四分体为四面体及十字交叉型.小孢子的发育过程可分为造孢细胞期、减数分裂时期、小孢子发育早期、小孢子发育晚期.未观察到二胞花粉期和成熟花粉期.羽叶薰衣草花粉败育主要发生在单核花粉时期,细胞内物质解体并逐渐消失变成空壳花粉或花粉皱缩变形成为各种畸形的败育花粉.在此 前小孢子的发育正常.羽叶薰衣草小孢子不育机制体现在绒毡层过早解体、四分体时期以后各细胞中线粒体结构不正常、胼胝质壁与小孢子母细胞脱离、花药壁细胞中淀粉出现时间异常等. 壁发育为双子叶型,从外向内分为表皮、药室内壁、中层和绒毡层4层细胞.减数分裂形成的四分体为四  相似文献   

5.
辣椒细胞质雄性不育花药败育及淀粉粒分布的细胞学观察   总被引:2,自引:0,他引:2  
用PAS反应对辣椒细胞质雄性不育系8214A和保持系8214B花药中的淀粉粒分布进行研究.在减数分裂前,保持系花药与不育系花药的结构和淀粉粒分布相似.保持系花药减数分裂后,药壁绒毡层细胞开始液泡化并体积增大,在药隔薄壁细胞中积累了许多较小的淀粉粒;在小孢子晚期,绒毡层细胞退化,在药隔薄壁细胞中淀粉粒体积增大;在二胞花粉时期,随着花粉大液泡的消失花粉中出现淀粉粒;花粉成熟时,其细胞质中积累了丰富的淀粉粒.不育系花药减数分裂后,由于药室腔的空间不能扩大,四分体被挤压在一起,最终四分体小孢子败育.不育花药的维管组织发育正常,但较多的淀粉粒积累在药隔薄壁细胞中.该种辣椒雄性不育系中.花粉的败育发生在四分体时期.绒毡层细胞结构异常可能影响糖类物质向药室的正常转运.该种辣椒雄性不育系的绒毡层异常与花粉败育有关.  相似文献   

6.
西瓜S351-1雄性不育材料的细胞学观察表明:与对照的同系可育株相比,败育发生在次级造孢细胞到小孢子母细胞或小孢子四分体阶段,多数不育雄花花药中绒毡层始终未分化,药壁常由7-8层细胞组成,少数不育花药中出现绒毡层徒长现象;次级造孢细胞败育不同步,出现多核及多核仁现象,败育后期,药壁细胞逐渐解体,药室瓦解,花粉囊收缩变形。由此可见:其雄性不育与绒毡层的发育异常有直接联系。  相似文献   

7.
S351—1西瓜雄性不育的细胞学研究   总被引:7,自引:0,他引:7  
西瓜S351-1雄性不育材料的细胞学观察表明:与对照的同系可育株相比,败育发生在次级造孢细胞到小孢子母细胞或小孢子四分体阶段,多数不育雄花花药中绒毡层始终未分化,药壁常由7 ̄8层细胞组成,少数不育花药中出现绒毡层徒长现象;次级造孢细胞败育不同步,出现多核及多核仁现象,败育后期,药壁细胞逐渐解体,药室瓦解,花粉囊收缩变形。由此可见:其雄性不育与绒毡层的发育异常有直接联系。  相似文献   

8.
本工作是小麦雄性不育杂种优势利用研究项目的一部分。从细胞形态学的角度,研究小麦细胞质雄性不育系及其保持系花药和花粉的发育,为探索雄性不育性的机理提供资料。应用石蜡切片法,对小麦“早熟1号”和“北京8号”细胞质雄性不育系及其保持系花药的发育过程进行了观察,得到如下的结果:(1)不育系花粉的败育,在发育的各个时期都发生,但败育的关键时期是在小孢子发育后期,具大液泡的小孢子不能进入配子体发育阶段。(2)不育系花药和花粉的发育,在小孢子发育早期以前,90%以上与保持系相似,是正常的;少数表现异常而导致败育。异常现象有:药室合并;小孢子母细胞解体,绒毡层发育正常;小孢子母细胞互相粘连,形成多核的原生质团;解体的小孢子母细胞与绒毡层融合形成多核的原生质团;药室中除正常发育的小孢子母细胞或小孢子外,还出现异常的巨型细胞;绒毡层提早在小孢子发育早期解体,形成多核的原生质困;绒毡层肥大生长。  相似文献   

9.
栽培种籽料苋(lmaranthus hypochondriacus L。)是一种很有潜力的新型作物。它营养价值高、蛋白质含量丰富、氨基酸平衡好、耐旱、耐盐碱和酸、抗逆性强、适应性广,被认为易极有潜力的、为全球提供粮食的替代作物之一。但是籽粒苋于粒重仅0.7-1.2g,种子易散落。于是,和许多其它植物一样,籽粒苋中也找到了雄性不育株。但是它的小孢子发育过程及其败育时期和不育特征尚不清楚,为它的杂交育种研究带来不便。本文通过电镜对雄性可育和不育的两种籽粒苋小孢子进行观察。发现不育小孢子败育起始于四分体释放以后的单核花粉期。在此之前小孢子的发育是一样的。花粉分化早期,孢原组织分化出初级造孢组织、绒毡层、中间层、药壁内层和表皮层(图1);造孢组织继续分裂,细胞不断扩大,形成小孢子母细胞(图2);小孢子母细胞不断增大,周围积累胼胝质并逐渐与绒毡层分离,出现大液泡(图3);小孢子母细胞减数分裂,四分体形成,包埋于胼胝质中;绒毡层有丝分裂,有双核细胞;大液泡消失;细胞壁开始降解(图4)。胼胝质逐渐消失,小孢子从四分体中释放以后(单核花粉期),在雄性可育籽粒苋里,小孢子有丝分裂、迅速膨大变圆,可见两个深色雄仁,花粉壁加厚(图5);进入收缩期,绒毡层降解,突入花药腔,环绕小孢子周围(图6);花粉壁不断加厚,小孢子更趋成熟(图7),直直形成内含大量淀粉的完全成熟花粉粒(图8)。而在雄性不育籽粒苋里,出现如下不育特征:小孢子粉壁未能进一步加厚,小孢子形状变得怪异(图13);花粉内含物溶解,空泡化,成为不育花粉(图14)。小孢子在花药中的发育完全依赖绒毡层细胞提供所需的营养物质和信息,绒毡层异常必然导致花粉败育,胼胝质降解不影响小孢子母细胞减数分裂,而是影响小孢子初生外壁的发育,从而导致小孢子发育退化。籽粒苋花粉败育过程中未见胼胝质降解,其原因有待进一步研究。有报道,正常花粉发育过程中常含有大量液泡,籽粒苋可育花粉的发育过程也证实液泡的发育与花粉粒的充实、花粉的形状有密切关系,而不育花粉中小液泡逐渐膨大,形成空泡后破裂。  相似文献   

10.
甘蓝型油菜几个雄性不育系花药发育的细胞形态学研究   总被引:45,自引:3,他引:42  
选用甘蓝型油菜6个细胞质雄性不育系和1个细胞核雄性不育系为材料,与可育系比较,确定花药发育受阻的时期和方式。根据研究结果,将其雄性不育系分为三类:1.湘矮A,Po-aA,陕2A和7s-3A花药发育受阻于孢原细胞分化期,没有分化形成花粉囊。2.萝AⅠ和萝AⅡ花药发育受阻于四分体至单核花粉期。败育方式为小孢子难以从四分体中释放出来,或释放出来后细胞质液泡化,核不能分裂,花粉壁发育不良。此外,还见到绒毡层径向肥大、延迟消失和维管束分化不良等异常现象。3.宜3A为核不育系,花药发育受阻于花粉母细胞期。败育方式为花粉母细胞死亡,减数分裂异常,或不能进行减数分裂。绒毡层和维管束一般都能正常发育。  相似文献   

11.
In this study, distribution of polysaccharides, lipids, and proteins in the developing anthers of Campsis radicans (L.) Seem. was examined from sporogenous cell stage to mature pollen, using cytochemical methods. To detect the distribution and dynamic changes of insoluble polysaccharides, lipid bodies, and proteins in the anthers through progressive developmental stages, semi-thin sections of anthers at different developmental stages were stained with periodic-acid-Schiff (PAS) reagent, Sudan black B, and Coomassie brilliant blue, respectively, and examined under light microscope. Ultrastructural observations with TEM were also carried out to determine the storage form of starch in the connective tissue, and storage form of lipids in the tapetal cells. In sporogenous cell stage, anther wall contains numerous insoluble polysaccharides. However, from the sporogenous cell stage to the vacuolated microspore stage, the amount of insoluble polysaccharides in the anther wall decreases gradually. At bicellular pollen stage, tapetum degenerates completely and polysaccharides are not seen in the anther wall. Lipid bodies are observed in the cytoplasm of both middle layer and tapetal cells at tetrad stage, whereas they disappear in the vacuolated microspore stage. Compared with polysaccharides, proteins are limited in the anther wall at early stages of development. During pollen development, polysaccharides, proteins, and lipid bodies are scarce in the cytoplasm of sporogenous cells, but their amount increases at premeiotic stage. From tetrad stage to bicellular pollen stage, microspore cytoplasm contains variable amount of insoluble polysaccharide grains, lipid and protein bodies. At bicellular pollen stage, plentiful amount of starch granules are stored in the cytoplasm of the pollen grains. Proteins and lipid bodies are also present in the cytoplasm.  相似文献   

12.
In the present study, microsporogenesis, microgametogenesis and pollen wall ontogeny in Campsis radicans (L.) Seem. were studied from sporogenous cell stage to mature pollen using transmission electron microscopy. To observe the ultrastructural changes that occur in sporogenous cells, microspores and pollen through progressive developmental stages, anthers at different stages of development were fixed and embedded in Araldite. Microspore and pollen development in C. radicans follows the basic scheme in angiosperms. Microsporocytes secrete callose wall before meiotic division. Meiocytes undergo meiosis and simultaneous cytokinesis which result in the formation of tetrads mostly with a tetrahedral arrangement. After the development of free and vacuolated microspores, respectively, first mitotic division occurs and two-celled pollen grain is produced. Pollen grains are shed from the anther at two-celled stage. Pollen wall formation in C. radicans starts at tetrad stage by the formation of exine template called primexine. By the accumulation of electron dense material, produced by microspore, in the special places of the primexine, first of all protectum then columellae of exine elements are formed on the reticulate-patterned plasma membrane. After free microspore stage, exine development is completed by the addition of sporopollenin from tapetum. Formation of intine layer of pollen wall starts at the late vacuolated stage of pollen development and continue through the bicellular pollen stage.  相似文献   

13.
西瓜小孢子囊发育及雄配子体发生的观察   总被引:7,自引:1,他引:6  
西瓜(Citrullus lanatus)小孢子囊的孢原细胞出现在雄花原基出现后4—6天,孢原细胞数目推测只有一列;初生造孢细胞经过2—3次分裂,形成次生造孢细胞。开花前7—8天,小孢子囊发育健全,小孢子母细胞进入减数分裂期。同一花药不同花粉囊相同一药室,花粉母细胞减数分裂和小孢子的发育,并不是高度同步的。绒毡层为异型细胞,腺质绒毡层。雄配子体的发育开始于开花前6—7天,充分成熟的西瓜花粉已分裂为三细胞花粉。  相似文献   

14.
Brachypodium distachyon has emerged as a model plant for the improvement of grain crops such as wheat, barley and oats and for understanding basic biological processes to facilitate the development of grasses as superior energy crops. Brachypodium is also the first species of the grass subfamily Pooideae with a sequenced genome. For obtaining a better understanding of the mechanisms controlling male gametophyte development in B. distachyon, here we report the cellular changes during the stages of anther development, with special reference to the development of the anther wall. Brachypodium anthers are tetrasporangiate and follow the typical monocotyledonous-type anther wall formation pattern. Anther differentiation starts with the appearance of archesporial cells, which divide to generate primary parietal and primary sporogenous cells. The primary parietal cells form two secondary parietal layers. Later, the outer secondary parietal layer directly develops into the endothecium and the inner secondary parietal layer forms an outer middle layer and inner tapetum by periclinal division. The anther wall comprises an epidermis, endothecium, middle layer and the secretory-type tapetum. Major documented events of anther development include the degradation of a secretory-type tapetum and middle layer during the course of development and the rapid formation of U-shaped endothecial thickenings in the mature pollen grain stage. The tapetum undergoes degeneration at the tetrad stage and disintegrates completely at the bicellular stage of pollen development. The distribution of insoluble polysaccharides in the anther layers and connective tissue through progressive developmental stages suggests their role in the development of male gametophytes. Until sporogenous cell stage, the amount of insoluble polysaccharides in the anther wall was negligible. However, abundant levels of insoluble polysaccharides were observed during microspore mother cell and tetrad stages and gradually declined during the free microspore and vacuolated microspore stages to undetectable level at the mature stage. Thus, the cellular features in the development of anthers in B. distachyon share similarities with anther and pollen development of other members of Poaceae.  相似文献   

15.
Programmed cell death (PCD) in the tapetum of Lathyrus undulatus L. was analyzed based on light, fluorescence and electron microscopy to characterize its spatial and temporal occurrence. Development and processes of PCD in secretory tapetal cells of Lathyrus undulatus L. were correlated with the sporogenous cells and pollen grains. At early stages of development the tapetal cells appeared similar to pollen mother cells, structurally. Concurrent with meiosis, tapetum expanded both tangentially and radially as vacuoles increased in size. Tapetal cells most fully developed at young microspore stage. However, tapetum underwent substantial changes in cell organization including nucleus morphology monitored by DAPI. The TUNEL staining confirmed the occurrence of intra-nucleosomal DNA cleavage. In addition to nuclear degeneration which is the first hallmark of PCD other diagnostic features were observed at vacuolated microspore stage intensely; such as chromatin condensation at the periphery of the nucleus, nuclear membrane degeneration, chromatin release to the cytoplasm, vacuole collapse according to tonoplast rupture, shrinkage of the cytoplasm, the increase and enlargement of the endoplasmic reticulum cisternae and disruption of the plasma membrane. After vacuole collapse due to possible release of hydrolytic enzymes the cell components degraded. Tapetal cells completely degenerated at bicellular pollen stage.  相似文献   

16.
俞晓敏  赵桂仿 《植物学报》2003,20(5):576-584
太白红杉(Larix chinensis Beissn)的雄球花7月初开始分化。小孢子囊壁一般包括5~6层细胞:表皮、药室内壁、2~3层中层和绒毡层。绒毡层属于周原质团型。造孢细胞在7月下旬形成,8月上旬形成小孢子母细胞,8月下旬开始减数分裂,于10月上旬进入双线期,并以双线期渡过休眠。翌年3月下旬解除休眠继续进行减数分裂,4月中旬形成四分体,4月下旬到5月初小孢子从四分体内释放出来,小孢子经过连续4次有丝分裂后,于5月中旬形成5-细胞型的成熟花粉粒(雄配子体)并开始散粉。小孢子母细胞发育表现出不同步现象,部分小孢子母细胞在发育过程中出现退化,在小孢子囊内形成空腔。  相似文献   

17.
A histochemical study was made of developing sporogenous cells, meiocytes, microspores, pollen and the tapetum in anthers of Kalanchoë morlagei. Storage polysaccharides were seen only in mature pollen. Ascorbic acid was not found in the sporogenous cells, but in meiocytes a high quantity of this compound occurred in the cytoplasm. Spore tetrads, microspores and pollen also had a high ascorbic acid content. The amounts of RNA and proteins were high in the sporogenous cells and in meiocytes during meiosis–I, but a small reduction trend with respect to RNA content was noticed. Microspores in the tetrad showed high amounts of RNA and proteins. In the young microspores RNA and proteins declined. Later, as the microspores matured, an increase in content of RNA and proteins took place. The wall of the young microspores gave a faint green colour with azure B stain, the intensity of which increased and remained high in the exine of the mature pollen. The additional wall thickening around the meiocytes and tetrads gave a strong pink colour with PAS test. This thickening showed presence of silver granules when tested for ascorbic acid, the tapetum synthesized abundant quantities of PAS positive starch, ascorbic acid, RNA and proteins from its appearance in the anther wall until microspore formation. During meiocyte meiosis the tapetum became highly vesicular. Our results indicate that the tapetum constitutes a tissue specialized for storing and supplying basic nutritive substances for the developing pollen in the anther.  相似文献   

18.
楸树(Catalpa bungei C.A.Meyer.)属紫葳科(Bignoniaceae)梓树属(Catalpa),落叶乔木,是我国特有的珍贵优质用材树种。本文用石蜡切片法对可育株和雄性不育株楸树的大、小孢子发生及雌、雄配子体发育过程进行了详细地比较观察。结果表明:可育株和不育株楸树雌蕊的发育基本相同,胚珠倒生,薄珠心,单珠被,胚囊发育为蓼型。可育株雄蕊花药四室,药隔薄壁组织发达;异型绒粘层,由药壁绒粘层和药隔绒粘层组成;花药壁表皮细胞在小孢子母细胞减数分裂前后开始径向伸长加厚,直到花药开裂并不降解,这可能与花药开裂有关;成熟花粉为四合花粉。雄性不育株花药的早期发育到次生造胞细胞时期与可育雄蕊的相同,小孢子母细胞减数分裂前绒毡层发育不充分;四分体时期,绒毡层细胞高度液泡化,细胞质稀薄,已提前降解,小孢子四分体因绒毡层结构和功能异常而不能正常发育,因此楸树雄性不育为结构型雄性不育。  相似文献   

19.
利用石蜡切片技术,对百合科植物开口箭(Tupistra chinensis Baker)大小孢子发生及雌雄配子体发育进程进行胚胎学观察分析,以明确开口箭胚胎发育的特征,为百合科植物的研究提供生殖生物学依据。结果表明:(1)开口箭花药具有4个药室,花药壁的发育方式为基本型,由表皮、药室内壁、中层及绒毡层组成;绒毡层发育类型为分泌型,到四分体花药阶段绒毡层细胞开始解体退化,花药成熟时完全消失。(2)花粉母细胞减数分裂为连续型,依次形成二分体、四分体,四分体为左右对称形;成熟花粉为2-细胞花粉,具单萌发沟。(3)子房3室,倒生型胚珠6枚,双珠被,薄珠心;在花部的分化早期,由珠心顶端表皮下方分化出雌性孢原细胞,孢原细胞经过一次平周分裂形成周缘细胞和造孢细胞,造孢细胞发育为大孢子母细胞;大孢子母细胞第一次减数分裂后形成二分体,珠孔端的二分体孢子退化,合点端的二分体孢子继续第二次分裂,形成两个子细胞依次发育为二核胚囊、四核胚囊和八核胚囊;开口箭的胚囊发育类型为葱型。  相似文献   

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