Critical temperatures for the interaction of free fatty acids with the erythrocyte membrane. 1988

A Csordas, and M Rybczynska
Institute of Medical Chemistry and Biochemistry, University of Innsbruck, Austria.

Non-esterified long-chain fatty acids reduce the extent of hypotonic hemolysis at a certain low concentration range but cause hemolysis at higher concentrations. This biphasic behavior was investigated at different temperatures (0-37 degrees C) for lauric (12:0), myristic (14:0), palmitoleic (16:1), oleic (cis-18:1) and elaidic (trans-18:1) acids. The results are summarized as follows: (A) the fatty acids examined exhibit a high degree of specificity in their thermotropic behavior; (B) oleic acid protects against hypotonic hemolysis even at the highest concentrations, up to 15 degrees C, when it becomes hemolytic, but only in a limited concentration range; (C) elaidic acid does not affect the osmotic stability of erythrocytes up to 20 degrees C, when it starts protecting: above 30 degrees C, it becomes hemolytic at the highest concentrations; (D) palmitoleic acid is an excellent protecting agent at all temperatures in a certain concentration range, becoming hemolytic at higher concentrations; (E) lauric acid protects up to 30 degrees C and becomes hemolytic only above this temperature; (F) myristic acid exhibits an extremely unusual behavior at 30 and 37 degrees C by having alternating concentration ranges of protecting and hemolytic effects; (G) there is a common critical temperature for hemolysis at 30 degrees C for saturated and trans-unsaturated fatty acids; (H) the initial slope of Arrhenius plots of percent hemolysis at the concentration of maximum protection is negative for cis-unsaturated fatty acids and positive for saturated and trans-unsaturated fatty acids.

UI MeSH Term Description Entries
D007850 Lauric Acids 12-Carbon saturated monocarboxylic acids. Dodecanoic Acids,Acids, Dodecanoic,Acids, Lauric
D009227 Myristic Acids 14-carbon saturated monocarboxylic acids. Tetradecanoic Acids,Acids, Myristic,Acids, Tetradecanoic
D009829 Oleic Acids A group of fatty acids that contain 18 carbon atoms and a double bond at the omega 9 carbon. Octadecenoic Acids,Acids, Octadecenoic,Acids, Oleic
D009996 Osmotic Fragility RED BLOOD CELL sensitivity to change in OSMOTIC PRESSURE. When exposed to a hypotonic concentration of sodium in a solution, red cells take in more water, swell until the capacity of the cell membrane is exceeded, and burst. Saline Fragility,Fragility, Osmotic,Fragility, Saline
D010169 Palmitic Acids A group of 16-carbon fatty acids that contain no double bonds. Acids, Palmitic
D004910 Erythrocyte Membrane The semi-permeable outer structure of a red blood cell. It is known as a red cell 'ghost' after HEMOLYSIS. Erythrocyte Ghost,Red Cell Cytoskeleton,Red Cell Ghost,Erythrocyte Cytoskeleton,Cytoskeleton, Erythrocyte,Cytoskeleton, Red Cell,Erythrocyte Cytoskeletons,Erythrocyte Ghosts,Erythrocyte Membranes,Ghost, Erythrocyte,Ghost, Red Cell,Membrane, Erythrocyte,Red Cell Cytoskeletons,Red Cell Ghosts
D005230 Fatty Acids, Nonesterified FATTY ACIDS found in the plasma that are complexed with SERUM ALBUMIN for transport. These fatty acids are not in glycerol ester form. Fatty Acids, Free,Free Fatty Acid,Free Fatty Acids,NEFA,Acid, Free Fatty,Acids, Free Fatty,Acids, Nonesterified Fatty,Fatty Acid, Free,Nonesterified Fatty Acids
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D013696 Temperature The property of objects that determines the direction of heat flow when they are placed in direct thermal contact. The temperature is the energy of microscopic motions (vibrational and translational) of the particles of atoms. Temperatures
D019301 Oleic Acid An unsaturated fatty acid that is the most widely distributed and abundant fatty acid in nature. It is used commercially in the preparation of oleates and lotions, and as a pharmaceutical solvent. (Stedman, 26th ed) 9-Octadecenoic Acid,Oleate,cis-9-Octadecenoic Acid,9 Octadecenoic Acid,cis 9 Octadecenoic Acid

Related Publications

A Csordas, and M Rybczynska
June 1997, Biochemistry and molecular biology international,
A Csordas, and M Rybczynska
August 1995, Scandinavian journal of clinical and laboratory investigation,
A Csordas, and M Rybczynska
November 2020, Langmuir : the ACS journal of surfaces and colloids,
A Csordas, and M Rybczynska
January 1984, Acta haematologica Polonica,
A Csordas, and M Rybczynska
June 2009, Multiple sclerosis (Houndmills, Basingstoke, England),
A Csordas, and M Rybczynska
June 1998, Biochemical and biophysical research communications,
A Csordas, and M Rybczynska
May 1995, Biochimica et biophysica acta,
A Csordas, and M Rybczynska
November 1987, Lancet (London, England),
A Csordas, and M Rybczynska
October 2014, Leukemia research,
Copied contents to your clipboard!