5 resultados para Saintpaulia


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Purpose: To determine the effects of carbon ion beams with five different linear energy transfer (LET) values on adventitious shoots from in vitro leaf explants of Saintpaulia ionahta Mauve cultivar with regard to tissue increase, shoots differentiation and morphology changes in the shoots. Materials and methods: In vitro leaf explant samples were irradiated with carbon ion beams with LET values in the range of 31 similar to 151 keV/mu m or 8 MeV of X-rays (LET 0.2 keV/mu m) at different doses. Fresh weight increase, surviving fraction and percentage of the explants with regenerated malformed shoots in all the irradiated leaf explants were statistically analysed. Results: The fresh weight increase (FWI) and surviving fraction (SF) decreased dramatically with increasing LET at the same doses. In addition, malformed shoots, including curliness, carnification, nicks and chlorophyll deficiency, occurred in both carbon ion beam and X-ray irradiations. The induction frequency with the former, however, was far more than that with the X-rays. Conclusions: This work demonstrated the LET dependence of the relative biological effectiveness (RBE) of tissue culture of Saintpaulia ionahta according to 50% FWI and 50% SF. After irradiating leaf explants with 5 Gy of a 221 MeV carbon ion beam having a LET value of 96 keV/mu m throughout the sample, a chlorophyll-deficient (CD) mutant, which could transmit the character of chlorophyll deficiency to its progeny through three continuous tissue culture cycles, and plantlets with other malformations were obtained.

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The effects of 960 MeV carbon ion beam and 8 MeV X-ray irradiation on adventitious shoots from in vitro leaf explants of two different Saintpaulia ionahta (Mauve and Indikon) cultivars were studied with regard to tissue increase, shoots differentiation and morphology changes in the shoots. The experimental results showed that the survival fraction of shoot formation for the Mauve and Indikon irradiated with the carbon ion beam at 20 Gy were 0.715 and 0.600, respectively, while those for both the cultivars exposed to the Xray irradiation at the same dose were 1.000. Relative biological effectiveness (RBE) of Mauve with respect to X-ray was about two. Secondly, the percentage of regenerating explants with malformed shoots in all Mauve regenerating explants irradiated with carbon ion beam at 20 Gy accounted for 49.6%, while that irradiated with the same dose of X-ray irradiation was only 4.7%; as for Saintpatdia ionahta Indikon irradiated with 20 Gy carbon ion beam, the percentage was 43.3%, which was higher than that of X-ray irradiation. Last, many chlorophyll deficient and other varieties of mutants were obtained in this study. Based on the results above, it can be concluded that the effect of mutation induction by carbon ion beam irradiation on the leaf explants of Saintpaulia ionahta is better than that by X-ray irradiation; and the optimal mutagenic dose varies from 20 Gy to 25 Gy for carbon ion beam irradiation.

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The ongoing rapid fragmentation of tropical forests is a major threat to global biodiversity. This is because many of the tropical forests are so-called biodiversity 'hotspots', areas that host exceptional species richness and concentrations of endemic species. Forest fragmentation has negative ecological and genetic consequences for plant survival. Proposed reasons for plant species' loss in forest fragments are, e.g., abiotic edge effects, altered species interactions, increased genetic drift, and inbreeding depression. To be able to conserve plants in forest fragments, the ecological and genetic processes that threaten the species have to be understood. That is possible only after obtaining adequate information on their biology, including taxonomy, life history, reproduction, and spatial and genetic structure of the populations. In this research, I focused on the African violet (genus Saintpaulia), a little-studied conservation flagship from the Eastern Arc Mountains and Coastal Forests hotspot of Tanzania and Kenya. The main objective of the research was to increase understanding of the life history, ecology and population genetics of Saintpaulia that is needed for the design of appropriate conservation measures. A further aim was to provide population-level insights into the difficult taxonomy of Saintpaulia. Ecological field work was conducted in a relatively little fragmented protected forest in the Amani Nature Reserve in the East Usambara Mountains, in northeastern Tanzania, complemented by population genetic laboratory work and ecological experiments in Helsinki, Finland. All components of the research were conducted with Saintpaulia ionantha ssp. grotei, which forms a taxonomically controversial population complex in the study area. My results suggest that Saintpaulia has good reproductive performance in forests with low disturbance levels in the East Usambara Mountains. Another important finding was that seed production depends on sufficient pollinator service. The availability of pollinators should thus be considered in the in situ management of threatened populations. Dynamic population stage structures were observed suggesting that the studied populations are demographically viable. High mortality of seedlings and juveniles was observed during the dry season but this was compensated by ample recruitment of new seedlings after the rainy season. Reduced tree canopy closure and substrate quality are likely to exacerbate seedling and juvenile mortality, and, therefore, forest fragmentation and disturbance are serious threats to the regeneration of Saintpaulia. Restoration of sufficient shade to enhance seedling establishment is an important conservation measure in populations located in disturbed habitats. Long-term demographic monitoring, which enables the forecasting of a population s future, is also recommended in disturbed habitats. High genetic diversities were observed in the populations, which suggest that they possess the variation that is needed for evolutionary responses in a changing environment. Thus, genetic management of the studied populations does not seem necessary as long as the habitats remain favourable for Saintpaulia. The observed high levels of inbreeding in some of the populations, and the reduced fitness of the inbred progeny compared to the outbred progeny, as revealed by the hand-pollination experiment, indicate that inbreeding and inbreeding depression are potential mechanisms contributing to the extinction of Saintpaulia populations. The relatively weak genetic divergence of the three different morphotypes of Saintpaulia ionantha ssp. grotei lend support to the hypothesis that the populations in the Usambara/lowlands region represent a segregating metapopulation (or metapopulations), where subpopulations are adapting to their particular environments. The partial genetic and phenological integrity, and the distinct trailing habit of the morphotype 'grotei' would, however, justify its placement in a taxonomic rank of its own, perhaps in a subspecific rank.

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在模式植物金鱼草中的花对称性分子发育与遗传学研究揭示出相关调控基因在花对称性形成过程中的功能和表达式样及其相互作用机制,但被子植物中花对称性的繁杂多样远非模式植物的表达模式所能概括。因此,我们选择车前科和苦苣苔科中与金鱼草较近缘的典型类群地黄属和非洲紫罗兰属作为研究对象,针对它们在花对称性形成方面区别于金鱼草的不同式样,开展这些类群中花对称性主控基因CYCLOIDEA(CYC)类基因的进化发育生物学研究。该研究旨在探讨CYC 类基因的功能和表达式样的变化在进化上的内在联系。 地黄花对称性基因的进化发育研究结果显示,地黄中CYC 类基因RgCYC 的表达模式与CYC 基因在金鱼草中和McCYC 基因在Mohavea 中的表达模式存在明显的差异。首先, RgCYC 基因在近轴雄蕊预期发生位置表皮细胞下的强烈表达与地黄近轴雄蕊的缺失密切相关。转录因子中的氨基酸替代所导致蛋白质功能的改变使RgCYC 基因对细胞周期基因cyclin D3b 抑制作用的增强可能是地黄中近轴雄蕊原基发生过程被彻底阻断的主要原因。由此看来,CYC 类基因的作用不仅导致近轴花器官生长缓慢或退化,而且可能与自然类群中花近轴器官丢失的现象有关。其次,同McCYC 基因在Mohavea 中的表达模式相似,RgCYC 基因的表达也从近轴雄蕊延伸到了两侧雄蕊,但是并没有强烈地抑制两侧雄蕊的发育,仅仅使得两侧雄蕊短于远轴雄蕊从而在地黄中形成二强雄蕊。这一现象可能是由于RgCYC 基因的表达与McCYC 基因的表达在时间和空间上的差异所造成的,并显示地黄中二强雄蕊的形成机制和金鱼草完全不同。第三,RgCYC 基因在近轴花冠裂片的表达没有象CYC 在金鱼草中一样明显促进它们的生长。此外,近轴花冠裂片明显的自身对称性显示在地黄中RgCYC 基因在两侧对称性形成方面可能单独对近轴花器官进行调控。地黄中RgCYC 基因的表达模式反映了广义唇形目中从五数花到四数花进化过程的一种新的进化机制。 两侧对称花向次生辐射对称花的反演进化机制在花对称性进化发育研究中倍受关注。我们在苦苣苔科中选择非洲紫罗兰栽培品种作为研究材料,通过 mTAIL-PCR 分别在两侧对称花和辐射对称花的栽培品种中分离出了包含完整的 ORF 的CYC 类基因:SiCYC1A 和SiCYC1B。这两个基因的完整序列在DNA 水平的相似性为88%,均包含了完整的TCP domain, R domain 和 5’ 端区段。令人意外的是SiCYC1A 和SiCYC1B 这两个基因的DNA 序列在两侧和辐射对称花品种中均完全一致。根据对导致辐射对称花产生机制的比较分析,我们认为在这两个栽培品种中的SiCYC1A 和 SiCYC1B 基因可能存在着某一共同的调节因子对其进行调控。其可能途径是该调节因子同时调控SiCYC1A 和 SiCYC1B 基因,这一共同的调节因子的改变导致了SiCYC1A 和 SiCYC1B 基因部分或完全失去功能,从而使两侧对称花转变为辐射对称花。 崖白菜属的花部器官发生研究显示其花萼和花冠裂片的发生顺序与毛地黄族和婆婆纳族相似,花冠裂片早期生长的迟滞和花冠裂片折叠式样介于毛地黄族和婆婆纳族之间。但是,近轴雄蕊的发育缺失完全不同于毛地黄族中的其它类群。对地黄属和崖白菜属以及它们近缘类群的ITS 或trnL-F 序列所构建的系统树的分析显示,地黄属和崖白菜属呈姊妹群。然而,分子系统学研究结果并不支持传统系统学和个体发育研究对这两个属科级系统位置的认识。毛地黄属与婆婆纳属和车前属构成一个单系分支,而地黄属与崖白菜属则形成另外一个独立的分支,并与泡桐属与透骨草科所形成的分支首先聚在一支。因此,毛地黄族可能并不是一个单系类群,地黄属和崖白菜属的科级系统位置可能需要重新考虑。