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1.
锌的吸收和分布与光的关系   总被引:1,自引:0,他引:1  
Hoagland首先发现锌对植物生长的影响与光有关。后来,很多人也观察到强光加重植物的缺锌症状。王贵和崔澂、李佳格和崔澂进一步研究了植物需锌与光的关系,他们指出,一切植物都需要锌,但只有绿色植物需锌与光有关。吴兆明和李佳  相似文献   

2.
锌在植物中的生理作用   总被引:1,自引:0,他引:1  
一.引言 Raulin早在1869年已经报告锌是低等植物黑麹霉(Aspergillus niger)生长所必需的矿物元素。其后许多人(Stout和Arnon,1939;崔澂,1948)证明高等植物的生长也需要锌。  相似文献   

3.
忆崔澂师     
白克智 《植物学报》2018,53(6):739-740
正崔澂~②先生的大学学业是在抗日战争时期的颠沛流离中完成的。当时物质条件很差,崔先生适应了这样的环境,克服种种困难完成了多项研究,主要包括植物组织培养技术的建立和矿质营养研究2个方向,为日后取得研究成果打下了良好的基础。在留学美国期间,崔先生主要从事锌和生长素代谢研究,证明锌和色氨酸与生长素有密切关系,并在回国后构建了锌参与色氨酸和生长素的合成途径。20世纪50年代初崔先生从美国留学回国,受聘  相似文献   

4.
叶绿体是绿色植物特有的细胞器,其基因组信息被广泛应用于植物系统发育和比较基因组学研究。目前,越来越多的物种有了叶绿体全基因组序列,人们对叶绿体基因组的结构及其变异规律有了更深入的了解。该文对近年来国内外有关被子植物叶绿体基因组插入/缺失、短片段倒位与重复、基因组结构重排以及基因丢失等结构变异式样的研究进展进行综述,并分析了叶绿体基因组结构研究中仍存在的问题以及该领域未来的发展趋势。  相似文献   

5.
植物遗传工程的基本方法是向植物细胞核导入基因.最近,美国新泽西州Rutgers大学的Waksman研究所的Pal Maliga及其研究小组在植物叶绿体中导入外来基因获得成功.叶绿体是绿色植物细胞中的一种小的结构物,包括光合过程中把二氧化碳和水转换成碳水化合物的叶绿素.叶绿体是与植物细胞共存的光合成细菌进化而来的,有自己特有的DNA.由于开发了向叶绿体DNA导入外来基因的技术,就有可能开发抗除草剂植物和光合能力高的重组作物品种.  相似文献   

6.
叶绿体为绿色植物的细胞器,作为一切生物物质和能量来源的光合作用就是在植物细胞的叶绿体中进行的,故叶绿体又称光合器。光合作用的进行同叶绿体的结构有着密切的联系,因此叶绿体结构和化学物理的研究是阐明光合作用机制的一个重要方面。关于叶绿体的化学组成和结构的研究已有很多报告。本文仅就叶绿体的分离、化学和结构三个方面所取得的主要成就和进展进行综述,以资参考。  相似文献   

7.
[英]E.J.休伊特著崔澂等译科学出版社出版本书是介绍植物营养研究中的砂培与水培技术的操作方法。书内详细地说明了培养植物的砂培与水培方法必须注意的问题和各种处理步骤,尤其是有关微量元素方面的问题,叙述得颇为细致。此书系有关植物营养生理学的实验技术和研究方法的书籍,可供作植物生理学、农学工作者的参考资料。  相似文献   

8.
光质对植物光合作用的调控及其机理   总被引:28,自引:0,他引:28  
光合作用是植物生长发育的基础.光质对植物光合作用的调控主要包括可见光对植物气孔器运动、叶片生长、叶绿体结构、光合色素、D1蛋白及其编码基因和光合碳同化等的调节,以及紫外光对植物光系统Ⅱ的影响.蓝光和红光能促进气孔的开张,而绿光能够逆转这种作用.蓝光有利于叶绿体的发育,红、蓝、绿复合光有利于叶面积的扩展,而红光更有利于光合产物的积累;不同光质对不同植物、不同组织器官叶绿素积累的影响不同.蓝光和远红光可以促进psbA基因转录物质的积累.大多数高等植物和绿藻在橙、红光下光合速率最高,蓝紫光其次,绿光最低.紫外光可以导致光系统Ⅱ的电子传递活性下降.此外,针对光质与光合作用研究领域中存在的问题,对今后的研究方向进行了讨论.  相似文献   

9.
<正>每一次突破都出现一个奇迹,人工"芯光"与植物结合,造就了植物工厂这一现代农业中的黑科技,人工光是其发展的主要力量。那么,离开了太阳光,人工光能否完全满足植物生长发育的需要呢?万物生长靠太阳,这似乎是一个颠扑不破的真理。太阳光为绿色植物和藻类提供源源不断的光能,驱动地球上最重要的化学反应——光合作用,从而生成地球上万物生存和发展的物质基础。在这个过程中,植物利用自己的"捕光天线"高效地吸收光能,传递给定位于叶绿体类囊体膜  相似文献   

10.
叶绿体是绿色植物极其重要的细胞器,是进行人类和地球上一切生物赖以生存的最终能量来源的光合作用的场所。本世纪五十年代早期发现叶绿体有孚尔根染色反应,说明它含有DNA 存在。随着分子生物学研究的发展,证明  相似文献   

11.
Changes of chloroplast DNA, RNA and protein contents in normal andzinc deficient tomato plants grown under different light intensity were studied in thispaper. It was shown that there is no much difference between normal and zinc deficient chloroplast DNA, RNA and protein e0ntents when the plants were grown underlower light intensity, while the DNA, RNA and protein contents of zinc deficient plantsdecreased dramatically under higher light intensity. The DNA and protein contentsof normal plants increased when light intensity was increased from 18000 lx to 45000 lx.The P700 Chl a-protein complexes and light harvesting Chl a/b-protein complexes of zincdeficient plants decreased seriously under higher light intensity.  相似文献   

12.
Anatomical and physiological leaf characteristics and biomass production of Fatsia japonica plants were studied. Plants were grown in a growth chamber at 300 μmol m-2 s-1 (high light) and 50 μmol m-2 s-1 (low light) photosynthetic photon flux density. Plants grown under high light showed a net maximum photosynthetic rate 44% higher than plants grown under low light; the light compensation point and the light saturation point were also higher in high-light plants. Photosynthetic oxygen evolution in isolated chloroplasts was about 40% higher in high-light plants. However, chlorophyll content on a dry weight basis, on a leaf area basis, and per chloroplast was greater in plants grown under low light. Leaf thickness in high-light plants was 13% higher than in low-light plants. The number of chloroplasts was 30% higher in high-light leaves, while chloroplast size was only slightly higher. Chloroplast ultrastructure was also affected by light. Leaf dry weight, leaf area, and biomass production per plant were drastically reduced under low light. Thus, F. japonica is a plant that is able to acclimate to different photosynthetic photon flux density by altering its anatomical and physiological characteristics. However, low-light acclimation of this plant has a considerable limiting effect on biomass production.  相似文献   

13.
Leaf mesostructure, photochemical activity, and chloroplast photophosphorylation (PP) in the fourth true leaf of 28-day-old Chinese cabbage (Brassica chinensis L.) plants were investigated. Plants were grown under a light source based on red (650 nm) and blue (470 nm) light-emitting diodes (LED) with red/blue photon flux ratio of 7: 1 and under illumination with high-pressure sodium lamp (HPSL) at photon flux densities of 391 ± 24 μmol/(m2 s) (“normal irradiance”) and 107 ± 9 μmol/(m2 s) (“low irradiance”) in photosynthetically active range. At normal irradiance, the leaf area in plants grown under HPSL was twofold higher than in LED-illuminated plants; other parameters of leaf mesostructure were little affected by spectral quality of incident light. The lowering of growth irradiance reduced the majority of leaf mesostructure parameters in plants grown under illumination with HPSL, whereas in LED-illuminated plants the lowered irradiance reduced only specific leaf weight but increased the leaf thickness and dimensions of mesophyll cells and chloroplasts. The photochemical activity of isolated chloroplasts was almost independent of growth irradiance and light spectral quality. Light quality and intensity used for plant growing had a considerable impact on PP in chloroplasts. At normal light intensity, the highest activity of noncyclic PP in chloroplasts was observed for plants grown under HPSL; at low light intensity the highest rates of PP were noted for plants grown under LED. The P/2e ratio, which characterizes the degree of PP coupling to electron transport in the chloroplast electron transport chain, showed a similar pattern. Thus, the narrow-band spectrum of the light source had little influence on leaf mesostructure and electron transport rates. However, this spectrum significantly affected the chloroplast PP activity. The PP patterns at low and normal light intensities were opposite for plants grown under LED and HPSL light sources. We suppose that growing plants under LED array at normal light intensity disturbed the chloroplast coupling system, thus preventing the effective use of light energy for ATP synthesis. At low light intensity, chloroplast PP activity was significantly higher under LED illumination, but plant growth was suppressed because of impaired adaptation to low light intensity.  相似文献   

14.
Trojan A  Gabrys H 《Plant physiology》1996,111(2):419-425
Chloroplasts of Arabidopsis thaliana move in response to blue light. Sensitivity to light and the range of fluence rates to which the chloroplasts respond were found to be comparable to those of other higher plants studied. We investigated typical chloroplast distributions in Arabidopsis grown under three different light conditions:standard-light conditions, similar to natural light intensities; weak-light intensities, close to the compensation point of photosynthesis; and strong-light intensities, close to the saturation of the light-response curve of photosynthesis. We observed a striking difference in chloroplast arrangement in darkness between plants grown under weak- and strong-light conditions. There was a slight difference after weak-light pretreatment, and the arrangements of chloroplasts after strong-light pretreatment in both plant groups were very similar. These results support the ecological significance of chloroplast movements.  相似文献   

15.
16.
Abstract. The ultrastructure of chloroplasts from palisade and spongy tissue was studied in order to analyse the adaptation of chloroplasts to the light gradient within the bifacial leaves of pea. Chloroplasts of two nuclear gene mutants of Pisum sativum (chlorotica-29 and chlorophyll b-less 130A), grown under normal light conditions, were compared with the wild type (WT) garden-pea cv. ‘Dippes Gelbe Viktoria’. The differentiation of the thylakoid membrane system of plastids from normal pea leaves exhibited nearly the same degree of grana formation in palisade and in spongy tissue. Using morphometrical measurements, only a slight increase in grana stacking capacity was found in chloroplasts of spongy tissue. In contrast, chloroplasts of mutant leaves differed in grana development in palisade and spongy tissue, respectively. Their thylakoid systems appeared to be disorganized and not developed as much as in chloroplasts from normal pea leaves. Grana contained fewer lamellae per granum, the number of grana per chloroplast section was reduced and the length of appressed thylakoid regions was decreased. Nevertheless, chloroplasts of the mutants were always differentiated into grana and stroma thylakoids. The structural changes observed and the reduction of the total chlorophyll content correlated with alterations in the polypeptide composition of thylakoid membrane preparations from mutant chloroplasts. In sodium dodecyl sulphate polyacrylamide gel electrophoresis (SDS-PAGE), polypeptide bands with a relative molecular mass of 27 and 26 kilodalton (kD) were markedly reduced in mutant chloroplasts. These two polypeptides represented the major apoproteins of the light harvesting chlorophyll a/b complex from photosystem II (LHC-II) as inferred from a comparison with the electrophoretic mobility of polypeptides isolated from the LHC-II.  相似文献   

17.
Seedlings of barley (Hordeum vulgare L. cv. Abyssinian) were grown at constant temperature and light intensity and the properties and structure of chloroplasts in the primary leaf were examined. Seventeen growth temperatures ranging from 2 to 37 C were employed. Three major effects of the growth temperature were seen. (a) At very low and high growth temperatures chloroplast biogenesis was inhibited. This occurred in plants grown at temperatures above 32 C while growth at 2 C resulted in a mixed population of pale yellow, pale green, and green plants. (b) Chloroplasts were produced at all other temperatures tested but growth temperatures within a few degrees of those inhibitory to chloroplast development resulted in chloroplasts with abnormal properties and structure. Chloroplasts in the green plants grown at 2 and 5 C showed a number of structural peculiarities, including a characteristic crimping of granal thylakoids. Photoreductive activity, measured using ferricyanide as the Hill oxidant in the presence of gramicidin D, was high, but this activity in chloroplasts isolated from plants grown at 2 C showed thermal inactivation at temperatures 5 degrees lower than was the case with plants grown at higher temperatures. High growth temperatures (30 to 32 C) yielded chloroplasts with reduced photoreductive activity and a tendency toward the formation of large grana and disorientation of the lamellar systems with respect to one another. Chloroplasts of the most affected plants (grown at 32 C) frequently contained a very large elongated granum, with narrow intrathylakoid spaces. (c) Photoreductive activity was not constant at intermediate growth temperatures but steadily declined with decreasing growth temperatures between 27 and 11 C. Some alterations in chloroplast structure were also observed.

The changes in chloroplast activity and structure indicate that acclimation to temperature takes place over the entire temperature range in which chloroplast development is permitted.

  相似文献   

18.
To investigate how light quality influences tomato (Solanum lycopersicum L) seedlings, we examined changes in plant growth, chloroplast ultrastructure, photosynthetic parameters and some photosynthesis-related genes expression levels. For this, tomato plants were grown under different light qualities with the same photosynthetic photon flux density: red (R), blue (B), yellow (Y), green (G) and white (W) lights. Our results revealed that, compared with plants grown under W light, the growth of plants grown under monochromatic lights was inhibited with the growth reduction being more significant in the plants grown under Y and G lights. However, the monochromatic lights had their own effects on the growth and photosynthetic function of tomato seedlings. The plant height was reduced under blue light, but expression of rbcS, rbcL, psbA, psbB genes was up-regulated, and the ΦPSII and electron transport rate (ETR) values were enhanced. More starch grains were accumulated in chloroplasts. The root elongation, net photosynthetic rate (Pn), NPQ and rbcS and psbA genes expression were promoted under red light. Yellow light- and green light-illuminated plants grew badly with their lower Rubisco content and Pn value observed, and less starch grains accumulated in chloroplast. However, less influence was noted of light quality on chloroplast structure. Compared with yellow light, the values of ΦPSII, ETR, qP and NPQ of plants exposed to green light were significantly increased, suggesting that green light was beneficial to both the development of photosynthetic apparatus to some extent.  相似文献   

19.
花粒期光照对夏玉米光合特性和叶绿体超微结构的影响   总被引:2,自引:0,他引:2  
在大田条件下,以夏玉米品种‘登海605’为试验材料,研究花粒期不同光照强度(正常光照、开花至收获期遮阴和开花至收获期增光)对夏玉米叶片光合、荧光性能和叶绿体超微结构的影响.结果表明:与对照相比,花粒期遮阴影响叶绿体排布及内部结构发育,基粒个数和基粒片层数均有不同程度减少,叶片的净光合速率、蒸腾速率、气孔导度、叶绿素含量下降,PSⅡ反应中心的实际光化学效率和最大光化学效率降低,非光化学淬灭系数数值增加,导致产量降低;增光后叶绿体结构良好,基粒片层排列紧致、清晰且数量增加,PSⅡ反应中心的实际光化学效率增加,净光合速率、蒸腾速率、气孔导度、叶绿素含量上升,叶片光合性能增强,产量增加.即花粒期遮阴破坏了夏玉米叶片叶绿体超微结构,降低了叶片光合能力,产量下降;花粒期增光增加了叶肉细胞中叶绿体的基粒和基粒片层,导致基粒片层排列紧密有序,有利于增加作物产量潜力.  相似文献   

20.
Soybean plants grown in controlled environment cabinets under light intensities of 220 w/m2 or 90 w/m2 (400–700 nm) and day to night temperatures of 27.5–22.5 C or 20.0–12.5 C in all combinations, exhibited differences in growth rate, leaf anatomy, chloroplast ultrastructure, and leaf starch, chlorophyll, and chloroplast lipid contents. Leaves grown under the lower light intensity at both temperatures had palisade mesophyll chloroplasts containing well-formed grana. The corresponding leaves developed under the higher light intensity had very rudimentary grana. Chloroplasts from high temperature and high light had grana consisting of two or three appressed thylakoids, while grana from the low temperature were confined to occasional thylakoid overlap. Spongy mesophyll chloroplasts were less sensitive to growth conditions. Transfer experiments showed that the ultrastructure of chloroplasts from mature leaves could be modified by changing the conditions, though the effect was less marked than when the leaf was growing.  相似文献   

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