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Molecular biology: a linkage between microbial ecology, general ecology and organismal biology

机译:分子生物学:微生物生态学,普通生态学和有机生物学之间的联系

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The field of microbial ecology has been developing rapidly, largely owing to the introduction of new molecular methods for identifying individuals, species and populations of microorganisms in nature. In contrast to traditional methods, the new ones do not require the isolation and culture of organisms from the environment. With many of the new methods, genotypes and species of microorganisms can be identified by using "marker" sequences of nucleic acids that can be related to those of other organisms by applying phylogenetic methods. Thus molecular techniques provide information on both the structure and evolutionary relationships of organisms in microbial communities. Methods are also available for analyzing gene expression and metabolic activities of microbial communities in situ. They make it possible to link microbial diversity to ecological processes and to bridge the gap between microbiology in the laboratory, microbial ecology and general ecology. The development of microbial ecology has been highly dependent on information obtained from studies of microorganisms in pure or mixed cultures. These studies have been focused on identifying genes, enzymes, metabolites, etc., involved in important microbial interactions and ecological processes, such as parasitism, symbiosis, decomposition and nitrogen transformation. Recently this "organism-oriented" branch of microbial ecology has been strongly stimulated by the results obtained within the large genome projects. Large-scale sequencing and functional analyses of genes, transcripts, proteins and metabolic pathways are being carried out on a number of microorganisms, including the well-characterized "model organisms" (such as Saccharomyces cerevisiae) as well as several species of substantial ecological importance. A major future challenge of "post-genome" projects will be to decipher the relationships between genotypes and phenotypes, and to link molecular mechanisms to adaptive variation. These are also central problems in ecology. The strong connection between microbial ecology and molecular biology should inspire us to make further advances in these areas of ecology as well as to integrate general ecology more closely with organismal biology.
机译:微生物生态学领域发展迅速,很大程度上是由于引入了新的分子方法来鉴定自然界中的微生物,个体和种群。与传统方法相反,新方法不需要与环境隔离和培养生物。使用许多新方法,可以通过使用系统发育方法,使用与其他生物的核酸相关的核酸“标记”序列,来鉴定微生物的基因型和种类。因此,分子技术可提供有关微生物群落中生物的结构和进化关系的信息。也可以使用方法来原位分析微生物群落的基因表达和代谢活性。它们使得将微生物多样性与生态过程联系起来,并弥合实验室微生物学,微生物生态学和普通生态学之间的差距成为可能。微生物生态学的发展高度依赖于从纯培养或混合培养中研究微生物获得的信息。这些研究集中于鉴定参与重要的微生物相互作用和生态过程(如寄生,共生,分解和氮转化)的基因,酶,代谢物等。最近,在大型基因组计划中获得的结果强烈刺激了微生物生态学的这种“以生物为导向”的分支。目前正在对多种微生物进行基因,转录本,蛋白质和代谢途径的大规模测序和功能分析,其中包括特征明确的“模型生物”(如酿酒酵母)以及具有重要生态意义的几种物种。 。 “后基因组”项目未来的主要挑战是破译基因型与表型之间的关系,并将分子机制与适应性变异联系起来。这些也是生态学中的核心问题。微生物生态学与分子生物学之间的紧密联系应激发我们在这些生态学领域取得进一步的进步,并将普通生态学与有机生物学更紧密地结合在一起。

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