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  Heat Stress Dictates Microbial Lipid Composition along a Thermal Gradient in Marine Sediments

Sollich, M., Yoshinaga, M. Y., Haeusler, S., Price, R. E., Hinrichs, K.-U., & Buehring, S. I. (2017). Heat Stress Dictates Microbial Lipid Composition along a Thermal Gradient in Marine Sediments. FRONTIERS IN MICROBIOLOGY, 8: 1550. doi:10.3389/fmicb.2017.01550.

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Sollich, Miriam, Author
Yoshinaga, Marcos Y., Author
Haeusler, Stefan1, Author           
Price, Roy E., Author
Hinrichs, Kai-Uwe, Author
Buehring, Solveig I., Author
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1Permanent Research Group Microsensor, Max Planck Institute for Marine Microbiology, Max Planck Society, ou_2481711              

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Free keywords: WATER HYDROTHERMAL VENT; GLYCEROL TETRAETHER LIPIDS; INTACT POLAR LIPIDS; YELLOWSTONE-NATIONAL-PARK; TERRESTRIAL HOT-SPRINGS; UPPER TEMPERATURE LIMIT; HELLENIC VOLCANIC ARC; MILOS ISLAND GREECE; AEGEAN SEA MILOS; GROWTH TEMPERATUREMicrobiology; membrane lipids; heat stress; bioenergetics; bacteria; archaea; shallow-water hydrothermal sediments; membrane fluidity/permeability; adaptation;
 Abstract: Temperature exerts a first-order control on microbial populations, which constantly adjust the fluidity and permeability of their cell membrane lipids to minimize loss of energy by ion diffusion across the membrane. Analytical advances in liquid chromatography coupled to mass spectrometry have allowed the detection of a stunning diversity of bacterial and archaeal lipids in extreme environments such as hot springs, hydrothermal vents and deep subsurface marine sediments. Here, we investigated a thermal gradient from 18 to 101 degrees C across a marine sediment field and tested the hypothesis that cell membrane lipids provide a major biochemical basis for the bioenergetics of archaea and bacteria under heat stress. This paper features a detailed lipidomics approach with the focus on membrane lipid structure-function. Membrane lipids analyzed here include polar lipids of bacteria and polar and core lipids of archaea. Reflecting the low permeability of their ether-linked isoprenoids, we found that archaeal polar lipids generally dominate over bacterial lipids in deep layers of the sediments influenced by hydrothermal fluids. A close examination of archaeal and bacterial lipids revealed a membrane quandary: not only low permeability, but also increased fluidity of membranes are required as a unified property of microbial membranes for energy conservation under heat stress. For instance, bacterial fatty acids were composed of longer chain lengths in concert with higher degree of unsaturation while archaea modified their tetraethers by incorporation of additional methyl groups at elevated sediment temperatures. It is possible that these configurations toward a more fluidized membrane at elevated temperatures are counterbalanced by the high abundance of archaeal glycolipids and bacterial sphingolipids, which could reduce membrane permeability through strong intermolecular hydrogen bonding. Our results provide a new angle for interpreting membrane lipid structure-function enabling archaea and bacteria to survive and grow in hydrothermal systems.

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Language(s): eng - English
 Dates: 2017
 Publication Status: Published online
 Pages: 19
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: ISI: 000408205700001
DOI: 10.3389/fmicb.2017.01550
 Degree: -

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Title: FRONTIERS IN MICROBIOLOGY
Source Genre: Journal
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Publ. Info: PO BOX 110, EPFL INNOVATION PARK, BUILDING I, LAUSANNE, 1015, SWITZERLAND : FRONTIERS MEDIA SA
Pages: - Volume / Issue: 8 Sequence Number: 1550 Start / End Page: - Identifier: ISSN: 1664-302X