Structural and physicochemical properties of polar lipids from thermophilic archaea
The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and hi...
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Published in | Applied microbiology and biotechnology Vol. 84; no. 2; pp. 249 - 260 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.08.2009
Springer Springer Nature B.V |
Subjects | |
Online Access | Get full text |
ISSN | 0175-7598 1432-0614 1432-0614 |
DOI | 10.1007/s00253-009-2102-9 |
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Abstract | The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and highly branched isoprenoid chains. Many accumulated data indicate that the organism’s response to extremely low pH is the opposite of that to high temperature. The high temperature adaptation does not require the tetraether lipids, while the adaptation of thermophiles to acidic environment requires the tetraether polar lipids. The presence of cyclopentane rings and the role of polar heads are not so straightforward regarding the correlations between fluidity and permeability of the lipid membrane. Due to the unique lipid structures and properties of archaeal lipids, they are a valuable resource in the development of novel biotechnological processes. This microreview focuses primarily on structural and physicochemical properties of polar lipids of (hyper)thermophilic archaea. |
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AbstractList | The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and highly branched isoprenoid chains. Many accumulated data indicate that the organism's response to extremely low pH is the opposite of that to high temperature. The high temperature adaptation does not require the tetraether lipids, while the adaptation of thermophiles to acidic environment requires the tetraether polar lipids. The presence of cyclopentane rings and the role of polar heads are not so straightforward regarding the correlations between fluidity and permeability of the lipid membrane. Due to the unique lipid structures and properties of archaeal lipids, they are a valuable resource in the development of novel biotechnological processes. This microreview focuses primarily on structural and physicochemical properties of polar lipids of (hyper)thermophilic archaea. The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and highly branched isoprenoid chains. Many accumulated data indicate that the organism's response to extremely low pH is the opposite of that to high temperature. The high temperature adaptation does not require the tetraether lipids, while the adaptation of thermophiles to acidic environment requires the tetraether polar lipids. The presence of cyclopentane rings and the role of polar heads are not so straightforward regarding the correlations between fluidity and permeability of the lipid membrane. Due to the unique lipid structures and properties of archaeal lipids, they are a valuable resource in the development of novel biotechnological processes. This microreview focuses primarily on structural and physicochemical properties of polar lipids of (hyper)thermophilic archaea. [PUBLICATION ABSTRACT] The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and highly branched isoprenoid chains. Many accumulated data indicate that the organism's response to extremely low pH is the opposite of that to high temperature. The high temperature adaptation does not require the tetraether lipids, while the adaptation of thermophiles to acidic environment requires the tetraether polar lipids. The presence of cyclopentane rings and the role of polar heads are not so straightforward regarding the correlations between fluidity and permeability of the lipid membrane. Due to the unique lipid structures and properties of archaeal lipids, they are a valuable resource in the development of novel biotechnological processes. This microreview focuses primarily on structural and physicochemical properties of polar lipids of (hyper)thermophilic archaea.The essential general features required for lipid membranes of extremophilic archaea to fulfill biological functions are that they are in the liquid crystalline phase and have extremely low permeability of solutes that is much less temperature sensitive due to a lack of lipid-phase transition and highly branched isoprenoid chains. Many accumulated data indicate that the organism's response to extremely low pH is the opposite of that to high temperature. The high temperature adaptation does not require the tetraether lipids, while the adaptation of thermophiles to acidic environment requires the tetraether polar lipids. The presence of cyclopentane rings and the role of polar heads are not so straightforward regarding the correlations between fluidity and permeability of the lipid membrane. Due to the unique lipid structures and properties of archaeal lipids, they are a valuable resource in the development of novel biotechnological processes. This microreview focuses primarily on structural and physicochemical properties of polar lipids of (hyper)thermophilic archaea. |
Author | Ulrih, Nataša Poklar Raspor, Peter Gmajner, Dejan |
Author_xml | – sequence: 1 givenname: Nataša Poklar surname: Ulrih fullname: Ulrih, Nataša Poklar email: natasa.poklar@bf.uni-lj.si organization: Biotechnical Faculty, Department of Food Science and Technology, University of Ljubljana – sequence: 2 givenname: Dejan surname: Gmajner fullname: Gmajner, Dejan organization: Biotechnical Faculty, Department of Food Science and Technology, University of Ljubljana – sequence: 3 givenname: Peter surname: Raspor fullname: Raspor, Peter organization: Biotechnical Faculty, Department of Food Science and Technology, University of Ljubljana |
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Keywords | Biotechnological applications Archaeosomes Archaeal polar lipids Physicochemical properties Thermophiles Biotechnology Archaeobacteria Bacteria Lipids Thermophily Application |
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SubjectTerms | Adaptation Archaea Archaea - classification Archaea - metabolism Bacteria Biological and medical sciences biosynthesis Biotechnology Chain branching chemistry classification Cyclopentane Energy Fluidity Fundamental and applied biological sciences. Psychology Glycerol High temperature Hydrocarbons Life Sciences Lipid membranes Lipid Metabolism Lipids Lipids - biosynthesis Lipids - chemistry Liquid crystals Membrane permeability Membranes Metabolism Microbial Genetics and Genomics Microbiology Mini-Review Permeability Phase transitions Phylogenetics Physicochemical properties Salinity Solutes Studies temperature Temperature requirements Thermophiles Thermophilic archaea |
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Title | Structural and physicochemical properties of polar lipids from thermophilic archaea |
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