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The role of ecological groups in the formation of cyanobacterial communities in the ecosystems of the North Azov region (Ukraine)

机译:生态群体在北阿佐夫地区生态系统中形成蓝藻群体的作用(乌克兰)

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The role of Cyanoprokaryota ecological groups in the ecosystems of the North Azov region was revealed in this work. On the territory of Pryazovskyi National Nature Park, 9 experimental polygons were studied, which covered steppe areas or slopes, salt marshes, coastal sandy soils and water bodies (rivers, lakes, estuaries, sea bays, lagoons). As a result of research on the territory of Pryazovskyi National Nature Park, 124 species of cyanoprokaryotes were identified, which include 127 intraspecific taxa. It was proved that the procedure of canonical correspondence analysis is the most suitable for the analysis of the species matrix. The axes identified as a result of the ordination procedure, which indicate the coordinated dynamics of the species, correlated with both synecological characteristics, such as diversity indicators, and with autoecological characteristics, such as ecotypes of cyanoprokaryotes in relation to habitat types or types of adaptation to salinity conditions. The first four canonical axes together explain 47.5% of species matrix variability. Canonical axis 1 explains 18.0% of the variability of the species matrix and is mostly marked by aqual subaerophytes and eurybionts. This axis indicates the presence of a gradient of salinity conditions where the most saline conditions correspond to the positive values of the axis, and the negative values correspond to less saline. Canonical axis 2 describes 12.1% of species matrix variability. This axis differentiates aquatic ecosystems from others. Canonical axis 3 explains 10.0% of the communities’ variability. This axis distinguishes freshwater ecosystems from saline ecosystems. Markers of freshwater communities are stenotopic halotolerants, which are narrow-range, common mainly in the temperate zone of Europe. The canonical axis 4 explains 7.3% of variability of the matrix of species and is able to differentiate sand ecosystems. The ecotopic structure and geographic range width of community species have the greatest independent value among the considered sources of variation. The independent role of adaptation to the salinity conditions of the ecotope and the role of the type of ecosystems is somewhat smaller. The interaction between the sources of variation is important in the variation of the structure of communities. The interaction between the ecotopic structure and the geographic range width of species and the triple interaction between the ecotopic structure of a community, the width of the geographic range of species and the ecosystem type plays the greatest role in the variation of community structure. Ecotopic groups, which indicate the preference of a particular habitat, correlate with the species composition of the communities. It is shown that the ratio of ecototopic groups in a community is a characteristic that reveals the features of the community as a whole.
机译:Cyanopokaryota生态群体在北奥罗斯地区生态系统中的作用被揭示在这项工作中。在Pryazovskyi国家自然公园的境地,研究了9个实验多边形,其中覆盖了草原地区或山坡,盐沼,沿海沙质土壤和水体(河流,湖泊,河口,海湾,泻湖)。由于研究普利佐维斯基威士利国家自然公园的境外,确定了124种CyanoProkarytootes,其中包括127个拆放征集。事实证明,规范对应分析的程序是最适合于物种基质的分析。作为排序程序确定的轴,其表明物种的协调动力学,与杂志特征(例如多样性指标)相关,以及具有自身生态特征,例如与栖息地类型或适应类型的CyanoProkaryotes的生态类型盐度条件。前四个规范轴一起解释了物种矩阵变异的47.5%。规范轴1解释了物种基质的可变性的18.0%,主要由AFALSophytes和Eurybion标记。该轴表示存在盐度条件的梯度,其中最盐条件对应于轴的正值,并且负值对应于较少的盐水。规范轴2描述了12.1%的物种矩阵变异性。这轴与其他轴区分生生态系统区分了水生生态系统。规范轴3解释了社区变异性的10.0%。这轴区分淡水生态系统从盐水生态系统中区分。淡水社区的标记是狭窄的黑烟剂,其狭窄,主要是在欧洲的温带区域。规范轴4解释了物种基质的7.3%,并且能够区分砂生态系统。社区物种的生态结构和地理范围宽度在考虑的变异源之间具有最大的独立价值。适应对生态植物的盐度条件的独立作用以及生态系统类型的作用有些小。变异源之间的相互作用在社区结构的变化中是重要的。生态结构与地理范围之间的相互作用与社区的生态结构与生态缺陷之间的三重相互作用,物种地理范围和生态系统类型在群落结构的变化中起着最大的作用。生态缺少,表明特定栖息地的偏好,与社区的物种组成相关。结果表明,社区中的生态缺乏群体的比例是揭示整个社区特征的特征。

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