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211.
氯酚的生物降解特性及其微生物的16SrRNA基因序列分析 总被引:4,自引:0,他引:4
从受氯代有机物污染的土壤中富集分离到对2、4-二氯酚具有高效降解能力的微生物混合菌群。实验表明,降解1mol二氯酚可以定量释放出2mol的氯离子,在生物流化床反应器中,以聚胺酯泡沫块为固定化载体吸附固定化微生物,进行了连续降解氯酚的实验研究,当水力停留时间为24h,二氯酚的初始浓度为30μmol/L时,二氯酚的去除率均在90%以上,利用平板划线法从混合微生物菌群中分离到可以利用二氯酚为唯一碳源和能源的纯种微生物,16SrRNA基因序列分析结果表明,该微生物为Rhodococcus属。 相似文献
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Bioventing is a relatively new technology that uses forced air movement to deliver supplemental oxygen to contaminated soils to stimulate the biodegradation of contaminants by indigenous microorganisms. A bioventing pilot test was initiated at Offutt Air Force Base, Nebraska, in August 1992, at a site contaminated with jet fuel. Air was injected into the subsurface over a period of 15 months, and tests were conducted at 6 months, and again at 15 months, to determine the effectiveness of the system. This article describes the bioventing process and its application at this test site. The results of the pilot test are discussed to illustrate the extent of the remediation accomplished through bioventing. 相似文献
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Werner E. G. Müller 《Die Naturwissenschaften》1995,82(7):321-329
Dedicated to Prof. Dr. H. Risler and Prof. Dr. Dr. h. c. R. K Zahn 相似文献
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Biological diversity--or biodiversity--is the term given to the variety of life on Earth and the natural patterns it forms. The biodiversity we see today is the fruit of billions of years of evolution, shaped by natural processes and, increasingly, by the influence of humans. It forms the web of life of which we are an integral part and upon which we so fully depend. The research on molecular biodiversity tries to lay the scientific foundation of a rational conservation policy that has its roots in various disciplines including systematics/taxonomy (species richness), present day ecology (diversity of ecological systems), and functional genetics (genetic diversity). The results of ongoing genome analyses (genome projects and expressed sequence tag projects) and the achievements of molecular evolution may allow us not only to quantitate the diversity of the present biota but also to extrapolate to their diversification in the future. A link between biodiversity and genomics/molecular evolution will create a platform which we hope may facilitate a sustainable management of organismic life and ensure its exploitation for human benefit. In the present review we outline possible strategies, using the Porifera (sponges) as a prominent example. On the basis of solid taxonomy and ecological data, the high value of this phylum for human application becomes obvious, especially with regard to the field of chemical ecology and the desire to find novel potential drugs for clinical use. In addition, the benefit of trying to make sense of molecular biodiversity using sponges as an example can be seen in the fact that the study of these animals, which are "living fossils", gives us a good insight into the history of our planet, especially with respect to the evolution of Metazoa. 相似文献
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Werner Kroebel 《Die Naturwissenschaften》1962,49(16):361-363
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