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1.
植物在进化过程中形成了对环境信号反应的能力,光是植物生长发育中的一个重要的环境信号。植物为了更好地生长和发育形成了精密的光信号接收和转导系统。本文介绍近年来光信号接收即光受体和光信号的转导研究进展。  相似文献   

2.
植物光反应突变体   总被引:1,自引:1,他引:0  
光信号转导途径是植物发育调控机制的中心组成部分。目前在植物光信号受体及下游转导组分突变体筛选方面已经取得许多重要结果。本文综述了这些突变体和光信号转导途径组成及调控机制研究方面的进展。  相似文献   

3.
光信号转导途径是植物发育调控机制的中心组成部分。目前在植物光信号受体及下游转导组分突变体筛选方面已经取得许多重要结果。本文综述了这些突变体和光信号转导途径组成及调控机制研究方面的进展。  相似文献   

4.
马朝峰 《植物学报》2019,54(1):9-22
光照是影响植物生长发育的重要环境因子, 开花是高等植物生活史上最重要的事件。植物通过光受体感知外界环境中的光照变化, 激活一系列信号转导过程从而适时开花。该文介绍了高等植物光受体的种类、结构特征和生理功能的研究进展, 并系统阐述了红光/远红光受体光敏色素、蓝光受体隐花色素以及FKF1/ZTL/LKP2等介导光信号调控植物开花的分子机制, 包括光受体对CO转录及转录后水平调控和对FT转录水平的调控等。此外, 还介绍了光受体整合光信号与温度和赤霉素等信号调控植物开花的研究进展, 并展望了未来的研究方向。  相似文献   

5.
植物中的许多生理和生化反应都表现出一种内源的近似于24小时的昼夜节律现象,这些昼夜节律现象受生物钟的调节.高等植物的生物钟系统由输入途径、中央振荡器、输出途径以及一个阀门效应器组成.光信号通过光敏色素和隐花色素进入生物钟,使中央振荡器产生振荡,改变生物钟的输出信号,引起各种生理反应.本文综述了光信号对高等植物生物钟的调节作用和转导途径.  相似文献   

6.
光是调节植物生长发育最重要的环境信号因子之一。植物通过光受体感受自然环境中光的强度、方向以及光周期等信号的变化,从而调控其生长发育过程。光敏色素A (phytochrome A, PHYA)是植物中唯一的远红光受体蛋白,具有在黑暗下在细胞质中合成,而在照光后快速入核和降解的特性,并通过多种途径精确调节了植物光响应基因的转录网络。同时,蛋白质翻译后修饰在调节PHYA稳定性和活性的过程中发挥了重要的作用。该文论述了PHYA调节光响应基因表达以及PHYA翻译后修饰方向的研究进展,并展望了PHYA在农作物分子设计育种中的应用前景。  相似文献   

7.
植物细胞信号转导对植物的生长发育起着重要的作用。本文概述了植物中存在复杂信号网络的生理和基因的证据,主要集中于光、激素、糖信号间的转导相互作用。  相似文献   

8.
光破坏防御机制是植物为应对复杂多变的自然环境而产生的保护措施,这些措施从形态、生理和生化等方面反映了植物对环境的适应能力。本文根据光抑制的机理,对近年来植物的光破坏防御机制以及高等植物叶黄素循环机制的研究现状进行综述,认为叶黄素循环防御机制是植物光保护作用的重要措施之一。  相似文献   

9.
光和温度作为最重要的环境信号调控植物的生长与发育.植物在进化中具备了应对和适应各类环境改变的策略.它们通过整合外源信号与内源信号,继而调控各类生理过程,包括开花时间.在模式植物拟南芥中至少存在5种不同的开花调控途径:光周期途径、春化/温度响应途径、自主开花启始途径、赤霉素途径以及年龄途径.其中光周期途径与温度/春化途径主要感知外界环境信号调控开花时间,而自主途径与年龄途径则介导了植物内源信号调控开花启始.在许多植物物种中,开花时间受到光(光周期)和温度的精确调控,确保植物在特定环境下的最佳时机开花以确保产量.通过正向和反向遗传途径的研究,人们揭示了光和温度调控开花的部分分子机制,本文概述了最近的一些重要进展.  相似文献   

10.
植物中的许多生理和生化反应都表现出一种内源的近似于24小时的昼夜节律现象,这些昼夜节律现象受生物钟的调节。高等植物的生物钟系统由输入途径、中央振荡器、输出途径以及一个阀门效应器组成。光信号通过光敏色素和隐花色素进入生物钟,使中央振荡器产生振荡,改变生物钟的输出信号,引起各种生理反应。本文综述了光信号对高等植物生物钟的调节作用和转导途径。  相似文献   

11.
12.
We studied developmental and environmental constraints on leaf dynamics, morphology and physiology in the monopodial tropical palm of the Atlantic Forest biome, Euterpe edulis. Plastic responses to light environments in terms of photosynthesis, leaf size, leaf life span, patterns of biomass allocation and growth were analysed. Plants were grown during 14 months in a shade house under four different growth irradiances. Plants of Euterpe edulis were able to adjust leaf demography and biomass allocation in the different light treatments. Leaf life span increased by 100 days with decreasing light levels while the rate of leaf production decreased, consistent with lower electron transport rates. At low light levels, adjustments in biomass allocation to leaf components allowed E. edulis to reduce self-shading and increase light interception. At high light plants allocated more biomass to roots, and the plants exhibited small leaf sizes when leaves were compared using an explicit ontogenetic analysis. Ontogeny constrained the maximum size that each consecutive leaf could achieve, while growth irradiance determined the rate of leaf production and other leaf traits. Consequently, there were both, developmental constraints and environmental determinants influencing leaf demography and morphology in E. edulis. The findings of this ecophysiological and demographic study are relevant to palms growing under natural conditions and help to explain the success of E. edulis in the forest understory and its absence from large gap openings. Our results not only confirm that E. edulis is a shade tolerant species, but also show that palms are able to acclimate to different growing condition as well as trees.  相似文献   

13.
Light regulates almost all physiological and biochemical processes in plants. Plants react to quantitative and qualitative light characteristics owing to the system of photoreceptors and a branched network for light signal transduction. Comprehensible visual representations of gene networks using of filter technology in the GeneNet system assist understanding the types of the relationships between the components inside the networks and to define their hierarchical structure.  相似文献   

14.
蓝光、紫外光的受体及其对CHS表达诱导的研究   总被引:14,自引:1,他引:13  
王曼  王小菁 《植物学通报》2002,19(3):265-271
植物在进化过程中形成了对环境信号反应的能力,光是植物生长发育中的一个重要的环境信号,综述了蓝光,紫外光的受体及蓝光,紫外光对编码植物类黄酮合成中的一个重要的限速酶-苯基苯乙烯酮合酶基因CHS的诱导作用,并介绍该反应信号转导的可能组分。  相似文献   

15.
We evaluated (1) the responses of two co-occurring tropical tree species, Heliocarpuspallidus and Caesalpiniaeriostachys, to changes in light, (2) the ability of these species to search for and exploit a fertilized soil patch, (3) the relationship between the capacity to forage for a fertilized patch and the capacity to respond to changes in light availability and (4) how the relationship between light and nutrient acquisition influenced the competitive interactions between these species. Plants of the two species were exposed to a factorial combination of high (H) and low (L) light intensity and fertilized (+Fp) and unfertilized (−Fp) nutrient patches for 50 days. Half of the plants from H were then transferred to L (HL treatment), and half of the plants from L were transferred to H (LH). The remaining plants were kept in their original light condition and grown for another 50 days. Plants were grown in these light and patch treatments alone (one plant per pot) and in interspecific competition (one plant per species resulting in two plants per pot). Both species exploited fertilized patches by increasing root biomass and length in the patch. This enhanced plant productivity and growth rate mainly under LH and HH conditions for Heliocarpus and the HH condition for Caesalpinia). When plants in the HH light environment were grown with an unfertilized patch, plant biomass and relative growth rates (RGRs) were even lower than␣under the LL light environment [(HH–Fp)<LL]. However, the combined activity of shoot and roots when above- and below-ground resources were temporally and spatially heterogeneous influenced plant productivity and growth rate. The benefit from light increase (LH) was reduced when grown with an unfertilized patch. Larger reductions in root biomass, length and density in the patch, and in plant biomass and RGR, were exhibited by Heliocarpus than by Caesalpinia. These results suggest a close relationship between root foraging and light capture, where the benefit of the exploitation of the patch will be reflected in whole-plant benefit, if enough light is captured above-ground. In addition, the results suggest a change in the expected plant responses to light due to heterogeneity in soil nutrients, even though the fertilized patch was only a small proportion of the total soil volume. Leaf characteristics such as specific leaf area responded only to light conditions and not to patchily distributed nutrients. Root characteristics responded more strongly to nutrient heterogeneity. Competition modified the pattern of foraging under both high- and low-light conditions in Heliocarpus by 50 days, and the ability to forage for a fertilized patch under LL after 100 days of growth for Caesalpinia. Even though plant growth and productivity are greatly reduced under low-light conditions (HL and LL), competition modifies the ability of species to forage for a rich patch (especially for the fast-growing species Heliocarpus). Received: 24 November 1997 / Accepted: 15 June 1998  相似文献   

16.
王曼  王小菁 《植物学报》2002,19(3):265-271
植物在进化过程中形成了对环境信号反应的能力,光是植物生长发育中的一个重要的环境信号。综述了蓝光、紫外光的受体及蓝光、紫外光对编码植物类黄酮合成中的一个重要的限速酶——苯基苯乙烯酮合酶基因CHS的诱导作用,并介绍该反应信号转导的可能组分。  相似文献   

17.
Seven tree species from three different light environments in the wet lowland forests of Costa Rica were grown under controlled environment conditions to assess light related photosynthetic potentials. Light saturated photosynthesis rates were clearly related to light levels of the field environments. Mean saturated, net photosynthetic rates ranged from 6.8 to 11.3 to 27.7 mol m–2 sec–1 for plants from heavy shade, canopy light gaps and man-made clearings respectively. Light saturation of plants from clearings occurred at photosynthetic photon flux densities greater than 1000 mol m–2 sec–1 whereas plants from heavy shade environments became light saturated near 500 mol m–2 sec–1. Plants that normally occur in intermediate light environments were intermediate in light saturation levels. Mean maximum stomatal conductances ranged from 1.0 to 7.3 mm sec–1 and followed a pattern similar to photosynthetic rates.  相似文献   

18.
Summary Steady-state and dynamic stomatal and assimilation responses to light transients were characterized in sun- and shade-acclimated plants of Piper auritum, a pioneer tree, and Piper aequale a shade-tolerant shrub from a tropical forest at Los Tuxtlas, Veracruz, México. Despite essentially identical steady-state responses of stomatal conductance to PFD of P. aequale and P. auritum shade plants, the dynamic responses to lightflecks were markedly different and depended on the growth regime. For both species from both growth environments, the increase in stomatal conductance occurring in response to a lightfleck continued long after the lightfleck itself so that the maximum stomatal conductance was not reached until 20–40 min after the lightfleck. Closing then occurred until stomatal conductance returned to near its original value before the lightfleck. Plants that were grown under light regimes similar to those of their natural habitat (high light for P. auritum and shade for P. aequale) had large maximum excursions of stomatal conductance and slower closing than opening responses. Plants grown under the opposite conditions had smaller excursions of stomatal conductance, especially in P. auritum, and more symmetrical opening and closing. The large and hysteretic response of stomatal conductance of P. aequale shade plants to a lightfleck was shown to improve carbon gain during subsequent lightflecks by 30–200%, depending on lightfleck duration. In contrast the very small stomatal response to lightflecks in P. auritum shade plants, resulted in no significant improvement in use of subsequent lightflecks.  相似文献   

19.
The effect of red- and blue-light-emitting diodes on shoot and root growth of Hybrid Franc grape, a rootstock cultivar, along with two other grape genotypes, Kadainou R-1 and Vitis ficifolia var. ganebu, were investigated in vitro. Plants cultured under red-light-emitting diodes produced the longest shoots with longer internodes for all genotypes. The chlorophyll content measured as SPAD value and leaf number per explant were highest on plants cultured under blue-light-emitting diodes in all the genotypes. Blue light was also responsible for a higher number of stomata in all the genotypes; however, there was no significant difference in size of stomata in all genotypes under the different light conditions tested. Different light-emitting diodes did not affect the rooting percentage of Hybrid Franc but red-light-emitting diodes gave a higher rooting percentage along with higher root numbers for the two other grape genotypes.  相似文献   

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