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The association and uptake of hydrophobic organic chemicals by gram-negative organisms during bioremediation processes.

机译:革兰氏阴性生物在生物修复过程中对疏水性有机化学物质的结合和吸收。

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For this dissertation, studies were conducted to determine the transport mechanism for naphthalene by a Pseudomonas fluorescens isolate and to determine the nature of association of octadecane with the membranes of a Pseudomonas aeruginosa isolate in the presence of a mono-rhamnolipid biosurfactant. Also, a model that describes the passive diffusion of a non-charged hydrophobic organic chemical through the cellular envelope of a Gram-negative organism was developed.; In studies conducted, evidence was obtained which suggests the presence of a specific transport system for naphthalene in Pseudomonas fluorescens strain Uper-1. By monitoring the effects of azide and 2,4-dinitrophenol on naphthalene transport in strain Uper-1, which displays a Nah{dollar}sp+{dollar} phenotype, evidence was obtained supporting an energy-dependent entry of naphthalene into the cells. Also, by monitoring the effects of naphthalene analogues on naphthalene assimilation, evidence was obtained which supports the presence of a specific system for naphthalene transport in this organism. These, and additional results have indicated that cells of P. fluorescens strain Uper-1 possess an energy-dependent, protein-mediated active transport system for naphthalene assimilation.; The objective of this study is to determine the interaction of a mono-rhamnolipid biosurfactant and octadecane to the cellular envelope of Pseudomonas aeruginosa strain PG201. Evidence was obtained which shows that the association of octadecane to the membranes of strain PG201 was enhanced in the presence of the mono-rhamnolipid at levels near the critical micelle concentration. Also, the association of octadecane was more specific to the outer membrane than the cytoplasmic membrane in the presence of the mono-rhamnolipid biosurfactant.; For this study, a model was developed which describes the passive diffusion of a hydrophobic organic chemical through the cellular envelope of a Gram-negative organism. This model was used to accurately predict the biodegradation rate of octadecane in a separate mineralization study. This model shows that the partitioning of octadecane into the outer membrane and the characteristics of the periplasmic space (diffusion coefficient and thickness) are the controlling factors. Also, it was shown that the outer membrane formed a formable barrier to the partitioning of octadecane into the cellular envelope.
机译:对于本论文,进行了研究以确定荧光假单胞菌分离物对萘的转运机理,并确定在单鼠李糖脂生物表面活性剂存在下十八烷与铜绿假单胞菌分离物的膜缔合的性质。另外,建立了描述不带电荷的疏水性有机化学物质通过革兰氏阴性生物的细胞包膜的被动扩散的模型。在进行的研究中,获得的证据表明在荧光假单胞菌菌株Uper-1中存在萘的特定转运系统。通过监测叠氮化物和2,4-二硝基苯酚对显示Nah {dol} sp + {dollar}表型的Uper-1菌株中萘运输的影响,获得了支持萘依赖能量进入细胞的证据。而且,通过监测萘类似物对萘同化的影响,获得了支持该生物中萘运输的特定系统存在的证据。这些以及其他结果表明,荧光假单胞菌Uper-1细胞具有用于萘吸收的能量依赖的,蛋白质介导的主动转运系统。这项研究的目的是确定单鼠李糖脂生物表面活性剂和十八烷与铜绿假单胞菌PG201的细胞膜之间的相互作用。获得的证据表明,在单鼠李糖脂的存在下,接近临界胶束浓度的水平,十八烷与菌株PG201的膜的缔合得到增强。同样,在存在单鼠李糖脂生物表面活性剂的情况下,十八烷的缔合对细胞外膜的特异性高于胞质膜。对于本研究,开发了一个模型,该模型描述了疏水性有机化学物质通过革兰氏阴性生物的细胞包膜的被动扩散。在单独的矿化研究中,该模型用于准确预测十八烷的生物降解率。该模型表明十八烷分配到外膜中以及周质空间的特征(扩散系数和厚度)是控制因素。此外,还表明外膜形成了可形成的屏障,以阻止十八烷分配到细胞包膜中。

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