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The impact of microbial chelates on mineral weathering and microbial metabolic activity.

机译:微生物螯合物对矿物风化和微生物代谢活性的影响。

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摘要

Geological materials are composed of elements, which can be released into the environment by dissolution or desorption processes and directly impact the metabolic activity of microorganisms. If subjected to environmental stress, microorganisms can adapt by applying unique strategies to safeguard their survival or perpetuate their ecological role in a given habitat. Microbial chelate production improves the chances of obtaining key metals that regulate enzymatic activity. In this dissertation, geochemical controls such as mineral solubility and desorption of nutrients from clays are examined with respect to their influence upon metabolic activity. In turn, the impact of microorganisms upon mineral weathering is investigated with respect to mineral composition and cellular design. A relationship between geologic host materials and biological activity is purported.;The role of microorganisms upon mineral weathering was investigated by collecting soil samples from the tropical rainforest of Barro Colorado Island, Panama. Microorganisms can utilize specific chelating agents to mobilize metals of nutritive benefit, i.e., siderophores for Fe3+ ( Pseudomonas putida), and methanobactin for Cu (Methylosinus trichosporium OB3b). Enhanced Fe3+ solubility from minerals of a Panamanian soil was demonstrated in abiotic and biotic microcosms supplemented with the siderophore, desferrioxamine. Similarly, Cu and SiO 2 solubility was enhanced by methanobactin in increasing concentrations, provided that Cu was present in the mineral phase. To evaluate the vital effect upon Cu leaching from mineral sources, rates of mineral weathering were compared with rates of CH4 oxidation in the presence of Methylosinus trichosporium OB3b. The results indicate that methanotroph activity is sensitive to variations in solid phase Cu concentration provided that Cu is being made bioavailable. A final study investigating how NH4 + and Cu desorption from montmorillonite impacts methanotrophy showed that rates of CH4 oxidation were inhibited by the release of these nutrients in excess amounts.;Microorganisms are sensitive to a diverse assortment of geological materials provided that key nutrients such as Fe, Cu or inorganic-N are present and made bioavailable by mineral dissolution or desorption processes. The efficiency of enzyme activity is controlled by both mineral composition and surrounding geochemical processes. In addition, microorganisms actively participate in the promotion of metal solubility from mineral sources. The findings of this dissertation illustrate that biological and geochemical processes are tied together and are responsible for driving metal cycling in soil environments. Furthermore, a novel linkage between mineral weathering and carbon cycling is revealed, and hinges upon the activity of methanotrophs and their requirement for Cu.
机译:地质物质是由元素组成的,它们可以通过溶解或解吸过程释放到环境中,并直接影响微生物的代谢活性。如果受到环境压力,微生物可以通过应用独特的策略来适应,以保护其生存或在给定的生境中维持其生态作用。微生物螯合物的产生提高了获得调节酶活性的关键金属的机会。本文就矿物化学溶解度和养分从粘土中解吸的地球化学控制方面,探讨了它们对代谢活性的影响。继而,就矿物成分和细胞设计研究了微生物对矿物风化的影响。据报道,地质宿主材料与生物活性之间存在关系。通过收集巴拿马巴罗科罗拉多岛热带雨林的土壤样品,研究了微生物对矿物风化的作用。微生物可以利用特定的螯合剂来调动具有营养益处的金属,例如,Fe3 +的铁载体(恶臭假单胞菌)和美铜菌素的Cu(甲基毛孢子虫OB3b)。在补充了铁载体去铁胺的非生物和生物微观世界中,证明了巴拿马土壤矿物中Fe3 +溶解度的提高。相似地,如果铜在矿相中存在,则不断增加的浓度的甲烷烟碱会提高Cu和SiO 2的溶解度。为了评估对矿物中铜浸出的重要影响,我们将甲基风信子OB3b存在下的矿物风化速率与CH4氧化速率进行了比较。结果表明,只要使铜具有生物利用性,甲烷营养活性对固相铜浓度的变化敏感。最终研究调查了蒙脱石中NH4 +和Cu的解吸如何影响甲烷异养作用,结果表明,过量释放这些养分会抑制CH4氧化速率。微生物对多种地质材料敏感,前提是关键养分如Fe存在铜或无机氮,并通过矿物溶解或解吸过程使其生物可利用。酶活性的效率受矿物成分和周围地球化学过程的控制。另外,微生物积极地参与了来自矿物质源的金属溶解性的促进。本文的研究结果表明,生物和地球化学过程是紧密联系在一起的,并且是驱动土壤环境中金属循环的原因。此外,揭示了矿物风化作用与碳循环之间的新型联系,并取决于甲烷营养生物的活性及其对铜的需求。

著录项

  • 作者

    Kulczycki, Ezra.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Geology.;Geochemistry.;Geobiology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 329 p.
  • 总页数 329
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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