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Ability of bacteria to promote the formation of fine-grained minerals on their surfaces

机译:细菌能够在其表面上促进细粒矿物质的形成

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The surfaces of bacteria are highly interactive with their environment. Whether the bacterium is gram-negative or gram- positive, most surfaces are charged at neutral pH because of the ionization of the reactive chemical groups which stud them. Since prokaryotes have a high surface area-to-volume ratio, this can have surprising ramifications. For example, many bacteria can concentrate dilute environmental metals and silicates on their surfaces and initiate the development of fine-grained minerals. In natural environments, it is not unusual to find such bacteria closely associated with the minerals which they have helped develop. Since bacteria usually prefer to grow as biofilms on macroscopic surfaces in most natural ecosystems (supposedly to take advances of the nutrient concentrative effect of the interface), they can form films micrometers -to-mm-thick. Using a gram-negative bacterial model, we have found that lipopolysaccharide (a surface component) is important in the initial attachment of the bacterium to the substratum. This macromolecule is also important for the entrapment of metals and the instigation of mineral development. Eventually, biofilms become so mineralized that the shape and form of the constituent bacteria are preserved and embedded in the rock as it forms. These mineralized bacteria are called `microfossils' and it is possible that the same set of circumstances could have preserved small lifeforms on Mars given similar environmental conditions.
机译:细菌的表面与他们的环境高度互动。该细菌是克革兰阴性还是克阳性,由于反应性化学基团的电离,大多数表面在中性pH下充电。由于原核生物具有高表面积到体积比,因此这可能具有令人惊讶的后果。例如,许多细菌可以将稀释的环境金属和硅酸盐浓缩,并开始发育细粒矿物质的发育。在自然环境中,发现与他们帮助发展的矿物质密切相关的细菌并不罕见。由于细菌通常较宁愿在大多数天然生态系统中以宏观表面生长为生物膜(所谓的界面的营养浓缩效果),它们可以形成薄膜微米-TO-厚。使用革兰氏阴性细菌模型,我们发现脂多糖(表面组分)在初始将细菌附着到底层中是重要的。这种大分子对于捕获金属和矿物发育的灌注也很重要。最终,生物膜变得如此矿化,使得构成细菌的形状和形式被保存并在岩石中嵌入岩石中。这些矿化细菌被称为“Microfossils”,并且可以在MARS给出类似的环境条件时,相同的情况可能在火星上保留了小的Lifeforms。

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