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Abstract. A marine ecosystem in the crater of the Ushishir Volcano (Kraternaya Bight, Yankich Island, the Kuriles) showing gasothcrmal activity was studied for hydrographical, hydrochemical, and biological characteristics. Maximal changes in chemical and biological characteristics were observed in the surface water layer of 0–5 m. This layer had higher water temperature, was saturated with volcanogcnic carbon dioxide (up to 2000 10-6 torr), ovcrsaturatcd with oxygen (up to 200 %), and contained high concentrations of chlorophyll a. Hydrogen sulfide was found in the surface water layer and at a depth of 15 m in the area of maximal effect of volcanic effluents.
The planktonic community is characterized by high rates of production and destruction of organic matter only in the 0–5 m layer. Daily vertical migrations of the ciliatc Mesodinium rubrum were observed, which caused "red tides".
Bacterial, algobacterial, and diatom mats developed on the bottom of the bight in the zone of gasohydrothermal vents and in areas of volcanic water seeping. The rate of organic matter production in algobacterial mats reached 33.4g C-rrr2-d-l, chcmolithotrophy predominating. Bottom settlements had high population density and great animal biomass, which reached 10 kg m-2 in gasohydrothermal fields. They obtain sufficient energy from primary production of microphy-tobenthos, algobacterial, and bacterial mats. Bcnthic species dominant in the bight were not found off the Ushishir Islands.
Some species of macrobenthos inhabiting the Kraternaya Bight differ markedly in size and biomass from the same species found beyond the bight.  相似文献   
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介绍了一种制备海洋浮游生物PCR模板DNA的方法——碱煮法。取少量海水样品(40μL).直接经0.25mol/L艺机NaOH和99℃温育处理裂解细胞,从而得到环境样品总DNA。实验证明,该方法制备的模板DNA可用于细菌核糖体RNA、浮游植物叶绿体rbcL和浮游动物线粒体COI等基因的PCR扩增。但是,在使用通用引物扩增细菌基因时,假阳性很难避免。该法制备的模板DNA适用于扩增非细菌基因或者特异引物界定的细菌基因。该方法较传统制备方法快速、简便,样品需要量减少,适用于浮游生物分子遗传多样性研究。  相似文献   
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Nutrient-phytoplankton-zooplankton (NPZ) models have been in use in oceanography for at least three decades, and are still a common research tool. Given the discoveries of the last two decades, particularly concerning the role of bacteria in the plankton, there are questions as to whether NPZ models can still be supported as a useful tool in planktonic research. Here I review the construction of NPZ models, and some of the physical platforms they have been coupled to. I then discuss the applications of NPZ-physical models, and conclude that they still constitute an important and viable research tool, provided that the questions being explored are clearly stated. This revised version was published online in August 2006 with corrections to the Cover Date.  相似文献   
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南海西部表层沉积物钙质浮游生物分布与碳酸盐溶解   总被引:1,自引:0,他引:1  
对南海西部300多个表层沉积样品中的浮游有孔虫和钙质超微化石定量分析表明,几乎所有样品均含浮游有孔虫、钙质超微化石,但丰度相差十分悬殊,浮游有孔虫丰度介于0.5~36673个/g之间,钙质超微化石丰度为0~1725个/10个视域,两者的分布规律相似。在陆坡区钙质浮游生物最富集,尤其在西沙群岛西南、南沙西部礁滩附近海区丰度最高;向深海盆区和陆架浅水区,钙质浮游生物丰度均下降。但从两者的丰度分布来看,其溶解程度不同,浮游有孔虫更容易溶解,在200~2000m水深区,丰度最高,2000m以下丰度锐减;而钙质超微化石的最富集区在500~3000m,且3000m以下仍较丰富。从碳酸盐的分布来看,本区碳酸盐的临界补偿深度(CCrD)为3500m,而CCD大于4300m,碳酸盐的溶解主要由有孔虫和钙质超微化石构成。  相似文献   
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本文根据1990年4月、10月间的理化分析数据,结合2002年9月涠洲岛珊瑚礁生态环境的调查状况,首次从珊瑚礁生态系的角度初步探讨该岛区浮游动植物与环境因子的关系。结果表明:该岛区浮游动植物的分布具有明显的区域性和季节性,既体现了珊瑚礁生态系具有较高的初级生产力特征,也体现了浮游动植物具有显著的季节交替现象。相关分析显示,水温、盐度、N,P,Si营养盐对浮游植物的种类组成及数量变动均有明显影响,但对浮游动物的影响不大;N是该生态系中浮游植物的限制因子,P限制状况只有在珊瑚礁生长带较深的海域出现,Si呈相对富足状态。  相似文献   
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The importance of macrophytes as food sources for estuarine nekton is unclear. Previous carbon isotope investigations in the macrophyte-dominated, freshwater-deprived Kariega Estuary showed that the bivalveSolen cylindraceusdid not utilize the dominant estuarine macrophytes found within the estuary as a primary food source. This finding prompted questions as to what the nekton of this estuary utilize as primary energy sources. δ13C analyses of the principal autochthonous and allochthonous primary carbon sources, as well as the dominant invertebrate and fish species, indicate that there are two main carbon pathways within the Kariega Estuary. The littoral community, which incorporates the majority of crustaceans, gobies, mullet and a sparid, utilizes δ13C enriched primary food sources namelySpartina maritima,Zosteracapensis and epiphytes. The channel fauna, which includes the zooplankton, zooplanktivorous and piscivorous fish, utilizes a primary food source depleted in δ13C, which is most likely a mixture of phytoplankton, terrestrial plant debris and C4macrophyte detritus. The C3saltmarsh macrophytesSarcocornia perennisandChenolea diffusa, as well as benthic microalgae, appear to be less important as primary food sources to the nekton of the Kariega Estuary.  相似文献   
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