首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 125 毫秒
1.
植物雄配子体发生和发育的遗传调控   总被引:4,自引:1,他引:4  
杨克珍  叶德 《植物学通报》2007,24(3):293-301
植物雄配子体发生和发育是有性生殖的关键步骤之一,是高等植物通过有性生殖进行世代交替所必需的。近几年来,随着分离和鉴定配子体型突变体技术的发展,雄配子体遗传机制研究取得了很大进展,发现了一些调控雄配子体发生和发育过程中细胞分化和互作的重要基因。本文着重概述和讨论植物雄性生殖细胞和雄配子体发生及其与周边细胞互作遗传机制研究的最新进展。  相似文献   

2.
彭雄波  孙蒙祥 《植物学报》2016,51(2):145-147
阐明植物雄配子体与雌配子体互作的分子机理一直是植物有性生殖研究的前沿和热点。但限于研究难度较大, 很多重要科学问题仍有待回答。关于花粉管如何感知雌配子体信号从而定向生长进入胚囊以投送精细胞就是悬疑多年的问题之一。最近, 中国科学家在解析雄配子体感知雌配子体引导信号的分子机制方面取得了突破性进展。  相似文献   

3.
雄配子体选择的遗传分化效应及其在植物改良中的应用   总被引:1,自引:0,他引:1  
在植物世代交替的生活史中,配子体是产生配子和具有单倍数染色体的植物体,并且有自己的遗传表达信息.在配子产生的过程中以及配子结合之前,适者生存的法则对配子发挥着选择作用,只有最适应外界环境条件的配子才能通过竞争性受精并产生合子.雄配子体选择是影响植物遗传分化、演变和遗传多样性的重要因素,被认为是生物进化的有力动力.此外,由于植物基因组中约有2/3的基因表达交错发生在配子体阶段和孢子体阶段,因此雄配子体选择的结果会影响到下一代孢子体的表现型.在育种实践中,利用雄配子体选择对植物进行遗传改良,具有提高选择机率和缩短育种年限等优点.本文主要概述雄配子体选择与孢子体表型的关刎系、遗传分化效应及其在植物遗传改良中的应用,以期为雄配子选择相关研究提供参考  相似文献   

4.
花是有花植物(被子植物)的有性生殖器官。在雄蕊的花药中产生雄配子体,通常称花粉;在雌蕊子房内的胚珠中发育雌配子体,通常称胚囊。在花粉或花粉管中形成的一对精细胞分别与胚囊中的卵和中央细胞受精,由此产生胚和胚乳。随着胚和胚乳的发育,整个胚珠发育为种子。这是被子植物有性生殖的一般过程。  相似文献   

5.
花是有花植物(被子植物)的有性生殖器官。在雄蕊的花药中产生雄配子体,通常称花粉;在雌蕊子房内的胚珠中发育雌配子体,通常称胚囊。在花粉或花粉管中形成的一对精细胞分别与胚囊中的卵和中央细胞受精,由此产生胚和胚乳。随着胚和胚乳的发育,整个胚珠发育为种子。这是被子植物有性生殖的一般过程。  相似文献   

6.
高等植物局部生长素合成的生物学功能及其调控机制   总被引:1,自引:0,他引:1  
局部生长素合成是目前植物生长素研究领域中的重要热点之一, 受内源发育信号和外界环境因子的时空调控。局部生长素合成在植物配子体发生、胚胎与果实发育、器官发生、向性生长和逆境响应中具有重要的生物学功能。该文在扼要介绍生长素局部合成与顶端合成、极性运输及其稳态之间互作的基础上, 重点介绍了近年来有关局部生长素合成的生物学功能及其调控机制的最新进展。  相似文献   

7.
蕨类植物孢子与种子植物花粉萌发的比较   总被引:1,自引:0,他引:1  
戴绍军    高晶  牟鸿飞  宋莹莹 《植物学报》2008,25(2):139-148
蕨类植物孢子与种子植物花粉在有性生殖过程中都具有重要的作用。花粉作为种子植物的雄配子体, 通过萌发后极性生长的花粉管将精细胞送到胚囊完成受精作用。蕨类植物孢子作为配子体的原始细胞, 通过不对称的有丝分裂产生一大一小两个细胞, 小细胞萌发出极性生长的假根, 大细胞继续分裂发育为原叶体(配子体)。成熟的花粉和蕨类植物孢子都是代谢高度静止的细胞, 两者的萌发过程不仅都受到各种不同环境因子的影响, 而且在信号转导、极性建立和能量代谢等方面可能有着相似的调控机制。本文综述了蕨类植物孢子和种子植物花粉萌发过程的差异和保守性特征。  相似文献   

8.
蕨类植物孢子与种子植物花粉在有性生殖过程中都具有重要的作用。花粉作为种子植物的雄配子体,通过萌发后极性生长的花粉管将精细胞送到胚囊完成受精作用。蕨类植物孢子作为配子体的原始细胞,通过不对称的有丝分裂产生一大一小两个细胞,小细胞萌发出极性生长的假根,大细胞继续分裂发育为原叶体(配子体)。成熟的花粉和蕨类植物孢子都是代谢高度静止的细胞,两者的萌发过程不仅都受到各种不同环境因子的影响,而且在信号转导、极性建立和能量代谢等方面可能有着相似的调控机制。本文综述了蕨类植物孢子和种子植物花粉萌发过程的差异和保守性特征。  相似文献   

9.
水松(Glyptostrobus pensilis)是我国特有的单种属孑遗植物,是极度濒危物种,被列为国家一级重点保护植物。为了从生殖生物学方面探讨水松的濒危机制,采用石蜡切片法对水松小孢子发生及雄配子体发育过程进行了系统地观察研究。结果表明:水松雄球花于10月中旬开始分化,11月初小孢子囊壁形成,12月初小孢子母细胞形成,12月中旬减数分裂。翌年1月中旬形成四面体形和左右对称形四分体,1月下旬四分体解体,释放出游离小孢子。2月中旬花粉粒发育成熟,并以二细胞形态进行传粉,散粉期约为2周左右。3月萌发花粉管,3月下旬出现精原细胞、管核和不育核,5月下旬花粉管到达颈卵器顶部,精原细胞分裂成两个精细胞。水松小孢子和雄配子体发育过程中败育和变形现象很少,据此我们认为,水松小孢子发生与雄配子体发育正常,不是致其濒危的主要原因。  相似文献   

10.
《生命科学》2005,17(6):560-562
项目名称申请者姓名依托单位大肠杆菌特殊形式O抗原的遗传与进化的研究王磊南开大学宿主细胞抗病毒因子ZAP作用机理研究高光侠中国科学院生物物理研究所水稻矮缩病毒(RDV)编码RNA沉默抑制因子作用机制研究李毅北京大学用持续表达乙肝病毒表面抗原模型研究病毒-细胞作用的新机制闻玉梅复旦大学中国华北地区晚新生代植物演化与环境变迁李承森中国科学院植物研究所植物花药和雄配子体发育的细胞与分子机制叶德中国农业大学端粒在植物同源染色体联会中的作用程祝宽中国科学院遗传与发育生物学研究所松节藻科海洋红藻若干重要属、种的化学、…  相似文献   

11.
12.
The syncytium is a unique plant root organ whose differentiation is induced by plant-parasitic cyst nematodes to create a source of nourishment. Syncytium formation involves the redifferentiation and fusion of hundreds of root cells. The underlying regulatory networks that control this unique change of plant cell fate are not understood. Here, we report that a strong down-regulation of Arabidopsis (Arabidopsis thaliana) microRNA396 (miR396) in cells giving rise to the syncytium coincides with the initiation of the syncytial induction/formation phase and that specific miR396 up-regulation in the developed syncytium marks the beginning of the maintenance phase, when no new cells are incorporated into the syncytium. In addition, our results show that miR396 in fact has a role in the transition from one phase to the other. Expression modulations of miR396 and its Growth-Regulating Factor (GRF) target genes resulted in reduced syncytium size and arrested nematode development. Furthermore, genome-wide expression profiling revealed that the miR396-GRF regulatory system can alter the expression of 44% of the more than 7,000 genes reported to change expression in the Arabidopsis syncytium. Thus, miR396 represents a key regulator for the reprogramming of root cells. As such, this regulatory unit represents a powerful molecular target for the parasitic animal to modulate plant cells and force them into novel developmental pathways.  相似文献   

13.
Plant retinoblastoma-related (RBR) proteins are primarily considered as key regulators of G(1)/S phase transition, with functional roles in a variety of cellular events during plant growth and organ development. Polyclonal antibody against the C-terminal region of the Arabidopsis RBR1 protein also specifically recognizes the alfalfa 115?kDa MsRBR protein, as shown by the antigen competition assay. The MsRBR protein was detected in all cell cycle phases, with a moderate increase in samples representing G(2)/M cells. Antibody against the human phospho-pRb peptide (Ser807/811) cross-reacted with the same 115?kDa MsRBR protein and with the in vitro phosphorylated MsRBR protein C-terminal fragment. Phospho-MsRBR protein was low in G(1) cells. Its amount increased upon entry into the S phase and remained high during the G(2)/M phases. Roscovitine treatment abolished the activity of alfalfa MsCDKA1;1 and MsCDKB2;1, and the phospho-MsRBR protein level was significantly decreased in the treated cells. Colchicine block increased the detected levels of both forms of MsRBR protein. Reduced levels of the MsRBR protein in cells at stationary phase or grown in hormone-free medium can be a sign of the division-dependent presence of plant RBR proteins. Immunolocalization of the phospho-MsRBR protein indicated spots of variable number and size in the labelled interphase nuclei and high signal intensity of nuclear granules in prophase. Structures similar to phospho-MsRBR proteins cannot be recognized in later mitotic phases. Based on the presented western blot and immunolocalization data, the possible involvement of RBR proteins in G(2)/M phase regulation in plant cells is discussed.  相似文献   

14.
D Qian  D Zhou  R Ju  C L Cramer    Z Yang 《The Plant cell》1996,8(12):2381-2394
Farnesylation is required for membrane targeting, protein-protein interactions, and the biological activity of key regulatory proteins, such as Ras small GTPases and protein kinases in a wide range of eukaryotes. In this report, we describe the molecular identification of a plant protein farnesyltransferase (FTase) and evidence for its role in the control of the cell cycle in plants. A pea gene encoding a homolog of the FTase beta subunit was previously cloned using a polymerase chain reaction-based strategy. A similar approach was used to clone a pea gene encoding a homolog of the FTase alpha subunit. The biochemical function of the pea FTase homologs was demonstrated by the reconstitution of FTase enzyme activity using FTase fusion proteins coexpressed in Escherichia coll. RNA gel blot analyses showed that levels of FTase mRNAs are generally higher in tissues, such as those of nodules, that are active in cell division. The relationship of FTase to cell division was further analyzed during the growth of suspension-cultured tobacco BY-2 cells. A biphasic fluctuation of FTase enzyme activity preceded corresponding changes in mitotic activity at the early log phase of cell growth. Moreover, manumycin, a specific inhibitor of FTase, was effective in inhibiting mitosis and growth in these cells. Using synchronized BY-2 cells, manumycin completely blocked mitosis when added at the early S phase but not when added at the G2 phase. These data suggest that FTase is required for the plant cell cycle, perhaps by modulating the progression through the S phase and the transition from G1 to the S phase.  相似文献   

15.
The heat shock (HS) response is a conserved cellular defense mechanism to elevated temperatures, observed in cells from bacteria to human. It is characterized by the increased accumulation of HS proteins. This work examines the effect of HS on the secondary metabolite biosynthesis of cultured plant cells. Suspension cultures of Taxus yunnanensis cells, which produce the anticancer diterpenoid paclitaxel (Taxol), were heat shocked at 35-50 degrees C for 30-60 min. The results show that HS reduced cell viability and growth but significantly induced paclitaxel production. The HS-induced paclitaxel production depended on the intensity of HS and the physiological state of the cells. Abscisic acid (ABA)-pretreatment not only increased cell viability and growth upon HS but also improved HS-induced paclitaxel yield. The best culture phase to apply the HS was the late-exponential growth phase. Under the optimized condition, HS enhanced paclitaxel yield by sixfold to 6.8 mg/L. In addition, a prior mild-HS treatment also significantly increased HS-induced paclitaxel production. Furthermore, HS induced oxidative burst, the early event of plant defense response to pathogen attack and other stress challenge; the addition of putative inhibitors of lipoxygenase, a key enzyme for jasmonic acid biosynthesis, significantly inhibited HS-induced pacliatxel accumulation. The stimulation of secondary metabolite production by HS may be a result of HS-induced plant cell defense response.  相似文献   

16.
DNA microarrays: new tools in the analysis of plant defence responses   总被引:2,自引:0,他引:2  
Large-scale DNA sequencing is providing information on the number and organization of genes and genomes of plant species and their pathogens. The next phase is to identify gene functions and gene networks with key roles in compatible and incompatible plant–pathogen interactions. DNA microarrays can provide information on the expression patterns of thousands of genes in parallel. The application of this technology is already revealing new features of plant–pathogen interactions and will be a key tool for a wide range of experiments in molecular plant pathology.  相似文献   

17.
Although sucrose availability is crucial for commitment to plant cell division during G1 phase by controlling the expression of D-type cyclins, it has remained unclear how these factors mediate entry into the cell cycle. Here we show that Arabidopsis RETINOBLASTOMA-RELATED PROTEIN 1 (AtRBR1) is involved in G1-phase cell cycle arrest caused by sucrose starvation. We generated estrogen-inducible AtRBR1 RNA interference (RNAi) Arabidopsis suspension MM2d cells, and found that downregulation of AtRBR1 leads to a higher frequency of arrest in G2 phase, instead of G1-phase arrest in the uninduced control, after sucrose starvation. Synchronization experiments confirmed that downregulation of AtRBR1 leads to a prolonged G2 phase and delayed activation of G2/M marker genes. Downregulation of AtRBR1 also stimulated the activation of E2F-regulated genes when these genes were repressed in the uninduced cells under the limited sucrose conditions. We conclude that AtRBR1 is a key effector for the ability of sucrose to modulate progression from G1 phase.  相似文献   

18.
19.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号