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DOI: 10.1371/journal.pone.0102810
论文题名:
Magneto-Chemotaxis in Sediment: First Insights
作者: Xuegang Mao; Ramon Egli; Nikolai Petersen; Marianne Hanzlik; Xiuming Liu
刊名: PLOS ONE
ISSN: 1932-6203
出版年: 2014
发表日期: 2014-7-17
卷: 9, 期:7
语种: 英语
英文关键词: Sediment ; Mycobacterium tuberculosis ; Magnetic fields ; Swimming ; Cell polarity ; Flagellar rotation ; Oxygen ; Chemotaxis
英文摘要: Magnetotactic bacteria (MTB) use passive alignment with the Earth magnetic field as a mean to increase their navigation efficiency in horizontally stratified environments through what is known as magneto-aerotaxis (M-A). Current M-A models have been derived from MTB observations in aqueous environments, where a >80% alignment with inclined magnetic field lines produces a one-dimensional search for optimal living conditions. However, the mean magnetic alignment of MTB in their most widespread living environment, i.e. sediment, has been recently found to be <1%, greatly reducing or even eliminating the magnetotactic advantage deduced for the case of MTB in water. In order to understand the role of magnetotaxis for MTB populations living in sediment, we performed first M-A observations with lake sediment microcosms. Microcosm experiments were based on different combinations of (1) MTB position with respect to their preferred living depth (i.e. above, at, and below), and (2) magnetic field configurations (i.e. correctly and incorrectly polarized vertical fields, horizontal fields, and zero fields). Results suggest that polar magnetotaxis is more complex than implied by previous experiments, and revealed unexpected differences between two types of MTB living in the same sediment. Our main findings are: (1) all investigated MTB benefit of a clear magnetotactic advantage when they need to migrate over macroscopic distances for reaching their optimal living depth, (2) magnetotaxis is not used by all MTB under stationary, undisturbed conditions, (3) some MTB can rely only on chemotaxis for macroscopic vertical displacements in sediment while other cannot, and (4) some MTB use a fixed polar M-A mechanisms, while other can switch their M-A polarity, performing what can be considered as a mixed polar-axial M-A. These observations demonstrate that sedimentary M-A is controlled by complex mechanical, chemical, and temporal factors that are poorly reproduced in aqueous environments.
URL: http://journals.plos.org/plosone/article/file?id=10.1371/journal.pone.0102810&type=printable
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/19532
Appears in Collections:过去全球变化的重建
影响、适应和脆弱性
科学计划与规划
气候变化与战略
全球变化的国际研究计划
气候减缓与适应
气候变化事实与影响

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作者单位: College of Geographical Sciences, Fujian Normal University, Fuzhou, China;Department of Earth and Environmental Sciences, Ludwig-Maximilians University, Munich, Germany;Central institute for Meteorology and Geodynamics, Vienna, Austria;Department of Earth and Environmental Sciences, Ludwig-Maximilians University, Munich, Germany;Chemistry Department, Munich Technical University, Munich, Germany;College of Geographical Sciences, Fujian Normal University, Fuzhou, China;Department of Environment and Geography, Macquarie University, Sydney, Australia

Recommended Citation:
Xuegang Mao,Ramon Egli,Nikolai Petersen,et al. Magneto-Chemotaxis in Sediment: First Insights[J]. PLOS ONE,2014-01-01,9(7)
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