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PMID: 11373291 Published · ppublish English Journal Article

Molecular mechanisms of water and solute transport across archaebacterial lipid membranes.

The Journal of biological chemistry ·Vol. 276 ·No. 29 ·2001-07-20 ·Pages 27266-71

Mathai JC, Sprott GD, Zeidel ML

Abstract

Archaebacteria thrive in environments characterized by anaeobiosis, saturated salt, and both high and low extremes of temperature and pH. The bulk of their membrane lipids are polar, characterized by the archaeal structural features typified by ether linkage of the glycerol backbone to isoprenoid chains of constant length, often fully saturated, and with sn-2,3 stereochemistry opposite that of glycerolipids of Bacteria and Eukarya. Also unique to these bacteria are macrocyclic archaeol and membrane spanning caldarchaeol lipids that are found in some extreme thermophiles and methanogens. To define the barrier function of archaebacterial membranes and to examine the effects of these unique structural features on permeabilities, we investigated the water, solute (urea and glycerol), proton, and ammonia permeability of liposomes formed by these lipids. Both the macrocyclic archaeol and caldarchaeol lipids reduced the water, ammonia, urea, and glycerol permeability of liposomes significantly (6-120-fold) compared with diphytanylphosphatidylcholine liposomes. The presence of the ether bond and phytanyl chains did not significantly affect these permeabilities. However, the apparent proton permeability was reduced 3-fold by the presence of an ether bond. The presence of macrocyclic archaeol and caldarchaeol structures further reduced apparent proton permeabilities by 10-17-fold. These results indicate that the limiting mobility of the midplane hydrocarbon region of the membranes formed by macrocyclic archaeol and caldarchaeol lipids play a significant role in reducing the permeability properties of the lipid membrane. In addition, it appears that substituting ether for ester bonds presents an additional barrier to proton flux.

MeSH Terms
Archaea/metabolism Biological Transport Membrane Lipids/metabolism Osmosis Permeability Water/metabolism
Chemicals
Membrane Lipids Water
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Mathai J C
Renal-Electrolyte Division, Department of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania 15261, USA. mathaij@msx.dept-med.pitt.edu
Sprott G D
Zeidel M L
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2001-07-20
Epub
2001-00-23
Pages
27266-71
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
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