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两种脱水生物水熊虫对低磁条件的耐受性。

Tolerance of two anhydrobiotic tardigrades and to hypomagnetic conditions.

作者信息

Erdmann Weronika, Idzikowski Bogdan, Kowalski Wojciech, Kosicki Jakub Z, Kaczmarek Łukasz

机构信息

Department of Animal Taxonomy and Ecology/Faculty of Biology, Adam Mickiewicz University of Poznan, Poznań, Poland.

Institute of Molecular Physics, Polish Academy of Sciences, Poznań, Poland.

出版信息

PeerJ. 2021 Feb 2;9:e10630. doi: 10.7717/peerj.10630. eCollection 2021.

Abstract

The open space is a hostile environment for all lifeforms not only due to vacuum, high radiation, low atmospheric pressure, and extremely low temperature, but also the absence of the geomagnetic field. The geomagnetic field protects Earth mainly from corpuscular radiation, that is, solar wind and cosmic radiation, but above all it influences organisms, including their cells, tissues and organs. Moreover, numerous studies conducted on plants and animals confirmed that hypomagnetic conditions (the term referring to all situations when the magnetic field is weaker than the typical geomagnetic field) have significant influence on the metabolism of living organisms. Although many studies dealt with a variety of aspects related mainly to the influence of hypomagnetic conditions on human health. Very few studies have considered the influence of hypomagnetic conditions on extremophiles. Astrobiologists have long been testing different extremofiles to find out if any multicellular organisms are able to survive in extreme conditions of open space. Among all multicellular extremophiles fit for such research, water bears (Tardigrada) are the most interesting. Not only are they one of the most resistant organisms on Earth, but results obtained from studies on these invertebrates can be extrapolated or applied to vertebrates (including humans). Despite this, studies on the influence of hypomagnetic conditions on tardigrades are rare, so far. In the present study, to test the influence of hypomagnetic conditions on the process of anhydrobiosis while entering and returning from anhydrobiosis, we used two terrestrial anhydrobiotic species that are and . To exclude the ambient magnetic field, experiments were carried out in a special magnetic field shielding chamber. In total, three experiments were conducted: (a) tardigrades in anhydrobiosis, (b) tardigrades entering anhydrobiosis and (c) tardigrades returning to active life. The obtained results clearly showed that even partial isolation from the geomagnetic field, that is, hypomagnetic conditions, has negative influence on anhydrobiotic abilities of both tested tardigrade species. In both species we observed lower survivability rate while entering anhydrobiosis, in anhydrobiotic state and returning to the active state. What is more, we observed a higher mortality rate in than which suggest that different species response to the hypomagnetic conditions in different way. In conclusion, while current knowledge on the influence of hypomagnetic conditions on mortality of invertebrates is very limited, our results suggest that the presence of the magnetic field is a very important factor which should be considered in further research focused on potential survival of Earth organisms in outer space, spacecrafts or different planets and moons.

摘要

开放空间对所有生命形式来说都是一个恶劣的环境,这不仅是因为真空、高辐射、低气压和极低的温度,还因为没有地磁场。地磁场主要保护地球免受微粒辐射,即太阳风和宇宙辐射的影响,但最重要的是,它会影响生物体,包括它们的细胞、组织和器官。此外,对植物和动物进行的大量研究证实,低磁条件(该术语指磁场比典型地磁场弱的所有情况)对生物体的新陈代谢有重大影响。尽管许多研究涉及了主要与低磁条件对人类健康影响相关的各个方面,但很少有研究考虑低磁条件对极端微生物的影响。长期以来,天体生物学家一直在测试不同的极端微生物,以确定是否有任何多细胞生物能够在开放空间的极端条件下生存。在所有适合此类研究的多细胞极端微生物中,水熊(缓步动物门)是最有趣的。它们不仅是地球上最具抵抗力的生物之一,而且对这些无脊椎动物的研究结果可以外推或应用于脊椎动物(包括人类)。尽管如此,到目前为止,关于低磁条件对水熊影响的研究很少。在本研究中,为了测试低磁条件对脱水生物形成过程中进入脱水生物状态和从脱水生物状态恢复时的影响,我们使用了两种陆生脱水生物物种,即 和 。为了排除周围磁场的影响,实验在一个特殊的磁场屏蔽室内进行。总共进行了三个实验:(a)处于脱水生物状态的水熊,(b)进入脱水生物状态的水熊,以及(c)恢复活跃生活的水熊。获得的结果清楚地表明,即使是与地磁场的部分隔离,即低磁条件,也会对两种受试水熊物种的脱水生物能力产生负面影响。在这两个物种中,我们观察到在进入脱水生物状态、处于脱水生物状态以及恢复到活跃状态时,存活率都较低。此外,我们观察到 中的死亡率高于 ,这表明不同物种对低磁条件的反应方式不同。总之,虽然目前关于低磁条件对无脊椎动物死亡率影响的知识非常有限,但我们的结果表明,磁场的存在是一个非常重要的因素,在进一步研究地球生物在外层空间、航天器或不同行星和卫星上的潜在生存能力时应予以考虑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8eb/7863786/bc15abcb76ae/peerj-09-10630-g001.jpg

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