Extreme Life Isyensya (ELI), PB 65, 9050, Gentbrugge, Belgium.
Flatiron Institute Center for Computational Biology, Simons Foundation, 162 5th Ave., New York, 10010, USA.
Sci Rep. 2019 Mar 1;9(1):3310. doi: 10.1038/s41598-019-39699-w.
Eukarya have been discovered in the deep subsurface at several locations in South Africa, but how organisms reach the subsurface remains unknown. We studied river-subsurface fissure water systems and identified Eukarya from a river that are genetically identical for 18S rDNA. To further confirm that these are identical species one metazoan species recovered from the overlying river interbred successfully with specimen recovered from an underlying mine at -1.4 km. In situ seismic simulation experiments were carried out and show seismic activity to be a major force increasing the hydraulic conductivity in faults allowing organisms to create ecosystems in the deep subsurface. As seismic activity is a non-selective force we recovered specimen of algae and Insecta that defy any obvious other explanation at a depth of -3.4 km. Our results show there is a steady flow of surface organisms to the deep subsurface where some survive and adapt and others perish. As seismic activity is also present on other planets and moons in our solar system the mechanism elucidated here may be relevant for future search and selection of landing sites in planetary exploration.
在南非的几个地方的深地下层发现了真核生物,但这些生物是如何到达地下深处的仍然未知。我们研究了河流-地下裂缝水系统,并从一条河流中鉴定出了 18S rDNA 完全相同的真核生物。为了进一步证实这些是相同的物种,我们从覆盖河流的上方采集到的一种后生动物与从地下 1.4 公里的矿山中采集到的样本成功杂交。进行了原位地震模拟实验,结果表明地震活动是增加断层水力传导性的主要力量,使生物能够在深部地下形成生态系统。由于地震活动是一种非选择性的力量,我们在-3.4 公里的深处回收了藻类和昆虫的样本,这在其他方面无法解释。我们的研究结果表明,有稳定的地表生物流向深部地下,其中一些生物生存和适应,而另一些生物则死亡。由于地震活动也存在于我们太阳系中的其他行星和卫星上,因此这里阐明的机制可能与未来行星探测中着陆点的搜索和选择有关。