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首页> 外文期刊>International Journal of Geosciences >Life on Earth Originated Where Later Microbial Oxygenic Photosynthesis Precipitated Banded Iron Formation, Suppressing Life Diversification for 1.4 Ga
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Life on Earth Originated Where Later Microbial Oxygenic Photosynthesis Precipitated Banded Iron Formation, Suppressing Life Diversification for 1.4 Ga

机译:地球生命起源于后来的微生物氧合光合作用沉淀形成的带状铁形成,抑制了1.4 Ga的生命多样化

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The earliest Precambrian microbial structures appear in successions with banded iron formations (BIF) suggesting genetic relationships. The hypothesis of the deep ocean origin of BIFs associated with Mid-Ocean Ridge (MOR) like features seems to have been recently supported by the discovery of peculiar microbial ecosystems with unique faunal assemblages restricted to these volcanic vents. However, new sedimentological evidence points to the accumulation of varved BIF in huge, very shallow lakes of hydrothermal-water situated on continental plates while passing through thePolar Regions, where UV radiation is minimal. The mineral-rich solutions seeped from numerous fumaroles, providing suitable conditions for chemical reactions between inorganic components, incidentally creating organic-like self-multiplying molecules long before the biologically-initiated BIF deposition. Some of these early chemoautotrophic prokaryotes developed oxygenic photosynthesis during half a year of solar illumination. The released oxygen formed iron oxides and carbonates deposited with amorphous silica (geyserite) in laminae as BIF during 3.8 - 1.9 Ga. BIF deposition consumed most of the photosynthetic oxygen for 1.4 billion years. Intensified cyanobacteria oxygenic photosynthesis during 2.4 - 2.2 Ga raised the atmospheric oxygen content (Great Oxidation Event) over the Polar Regions, forming an oxygen-ozone shield against UV radiation. It gradually extended to lower latitudes, enabling prokaryotes to leave their ecologically stable habitat and acclimatize in new ecosystems, where they diversified, leading to eukaryote evolution. The 231/2° inclination of Earth’s rotation axis differentiated the solar effect on the Polar Regions, which controlled life evolution on Earth, as well as on planet Mars (25° inclination), where life probably did not evolve beyond early prokaryotes.
机译:最早的前寒武纪微生物结构相继出现,并伴有带状铁形成(BIF),表明存在遗传关系。与海洋中脊(MOR)类似特征相关的BIF的深海起源的假说最近似乎已被发现独特的微生物生态系统所支持,这些微生物生态系统的独特动物群仅限于这些火山喷口。然而,新的沉积学证据表明,在穿过极少紫外线辐射的极地地区的大陆板块上,巨大的,非常浅的热液湖泊中,有脉动的BIF蓄积。从许多喷气孔中渗出的富含矿物质的溶液为无机组分之间的化学反应提供了合适的条件,并在生物引发的BIF沉积之前很久就偶然产生了类似有机物的自增分子。这些早期的化学自养原核生物中的一些在阳光照射的半年内发展了氧的光合作用。在3.8-1.9 Ga下,释放出的氧气形成了以无定形二氧化硅(石膏)沉积在薄片中的氧化铁和碳酸盐,作为BIF。BIF沉积消耗了14亿年的大部分光合作用氧气。在2.4-2.2 Ga期间增强的蓝细菌氧光合作用提高了极区的大气氧含量(大氧化事件),形成了防紫外线辐射的氧臭氧屏蔽层。它逐渐扩展到低纬度地区,使原核生物能够离开其生态稳定的栖息地并适应新的生态系统,使其多样化,从而导致真核生物的进化。地球自转轴的231/2°倾斜度区分了极地地区的太阳效应,该极光区控制了地球以及火星行星(25°倾斜度)的生命演化,那里的生命可能不会演化到早期的原核生物。

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