Abstract
The distribution of cellular fatty acids in defined lipid classes was analyzed in Micrococcus cerificans after growth on specified hydrocarbons. Neutral lipid, phospholipid, and cell residue fatty acids were qualitatively and quantitatively determined for M. cerificans grown on nutrient broth, tetradecane (C(14)), pentadecane (C(15)), hexadecane (C(16)), and heptadecane (C(17)), respectively. Percentage of total cellular fatty acid localized in defined lipid classes from cells grown on the above growth substrates was (i) neutral lipid-11.8, 1.81, 7.74, 23.1, and 2%; (ii) phospholipid-74.5, 65, 66.43, 62.1, and 86%; (iii) cell residue lipid-13.5, 33.29, 25.82, 14.78, and 11.9%. Phospholipid fatty acid chain length directly reflected the carbon number of the alkane substrate, with 40, 84, 98, and 77% of the fatty acids being 14, 15, 16, and 17 carbons when cells were grown on C(14), C(15), C(16), and C(17)n-alkanes, respectively. The bound lipids of the cell residue after chloroform-methanol extraction were characterized by 2-hydroxydodecanoic and 2-hydroxytetradecanoic acids plus a broad spectrum of fatty acids ranging from C(10) to C(17) chain length. An increase in total unsaturated fatty acid localized in the phospholipids was noted from cells grown on alkanes greater than 15 carbons long. An extracellular accumulation of free fatty acid (FFA) was demonstrated in hexadecane-grown cultures that was not apparent in non-hydrocarbon-grown cultures. Identification of extracellular FFA demonstrated direct derivation from hexadecane oxidation. Studies supporting inhibition of de novo fatty acid biosynthesis in relationship to extracellular FFA and hexadecane oxidation are described. The ability to alter the fatty acid composition of membrane polar lipids in a predictable manner by the alkane carbon source provides an excellent model system for the investigation of membrane structure-function relationships in M. cerificans.
MeSH Terms
Acetates/metabolism
Alkanes/metabolism
Carbon Isotopes
Cell Membrane/metabolism
Chromatography, Gas
Chromatography, Thin Layer
Culture Media
Fatty Acids/analysis,biosynthesis,metabolism
Fatty Acids, Nonesterified/analysis
Fatty Acids, Unsaturated/analysis
Fatty Alcohols/analysis
Lipids/analysis,isolation & purification
Mass Spectrometry
Micrococcus/analysis,growth & development,metabolism
Oxidation-Reduction
Phospholipids/analysis
Chemicals
Acetates
Alkanes
Carbon Isotopes
Culture Media
Fatty Acids
Fatty Acids, Nonesterified
Fatty Acids, Unsaturated
Fatty Alcohols
Lipids
Phospholipids
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Makula R A
Finnerty W R
References (22)
22 references, click to expand
-
QUANTITATIVE ANALYSIS OF FATTY ACIDS BY GAS-LIQUID CHROMATOGRAPHY.
J Lipid Res. 1964 Jan;5:20-7
PMID: 14173324
-
Bacterial hydrocarbon oxidation. II. Ester formation from alkanes.
J Bacteriol. 1959 Nov;78:726-30
PMID: 13834597
-
EFFECT OF TEMPERATURE ON THE COMPOSITION OF FATTY ACIDS IN ESCHERICHIA COLI.
J Bacteriol. 1962 Dec;84(6):1260-7
PMID: 16561982
-
Microbial assimilation of hydrocarbons. I. Fatty acids derived from normal alkanes.
J Bacteriol. 1968 Jun;95(6):2102-7
PMID: 5669891
-
METABOLISM OF STEAROLIC ACID IN YEAST.
J Biol Chem. 1963 Aug;238:2654-9
PMID: 14063287
-
Utilization of aliphatic hydrocarbons by micro-organisms.
Adv Microb Physiol. 1971;5:1-43
PMID: 4950258
-
Fatty acids synthesized from hexadecane by Pseudomonas aeruginosa.
J Bacteriol. 1966 Jan;91(1):183-8
PMID: 4955247
-
The identification of cis-11,12-methylene-2-hydroxyoctadecanoic acid from Thiobacillus thiooxidans.
J Biol Chem. 1969 Sep 10;244(17):4773-8
PMID: 4309150
-
Influence of lipid components of Mycoplasma laidlawii membranes on osmotic fragility of cells.
J Bacteriol. 1966 Feb;91(2):609-16
PMID: 5883100
-
ORIGIN OF PALMITIC ACID CARBON IN PALMITATES FORMED FROM HEXADECANE-1-C-14 AND TETRADECANE-1-C-14 BY MICROCOCCUS CERIFICANS.
J Bacteriol. 1964 Jun;87:1261-5
PMID: 14188700
-
One-step quantitative extraction of medium-chain and long-chain fatty acids from aqueous samples.
J Lipid Res. 1969 Sep;10(5):614-6
PMID: 5808832
-
Microbial assimilation of hydrocarbons. II. Fatty acids derived from 1-alkenes.
J Bacteriol. 1968 Jun;95(6):2108-11
PMID: 5669892
-
Control of fatty acid composition in phospholipids of Escherichia coli: response to fatty acid supplements in a fatty acid auxotroph.
Proc Natl Acad Sci U S A. 1969 Nov;64(3):1057-64
PMID: 4905989
-
Microbial assimilation of hydrocarbons: identification of phospholipids.
J Bacteriol. 1970 Aug;103(2):348-55
PMID: 5432005
-
The mechanisms of microbial oxidations of petroleum hydrocarbons.
Adv Enzymol Relat Areas Mol Biol. 1965;27:469-546
PMID: 4883740
-
Fatty acid composition of the complex lipids of Staphylococcus aureus during the formation of the membrane-bound electron transport system.
J Bacteriol. 1968 Jun;95(6):2198-209
PMID: 5669897
-
Bacterial hydrocarbons: occurrence, structure and metabolism.
Lipids. 1970 Mar;5(3):320-5
PMID: 4985817
-
Mycoplasma membrane lipids: variations in fatty acid composition.
Science. 1969 Apr 25;164(3878):433-4
PMID: 5777213
-
Degradation of labeled propionic and acetic acids.
Arch Biochem Biophys. 1951 Sep;33(2):173-8
PMID: 14885997
-
The biology of hydrocarbons.
Annu Rev Microbiol. 1965;19:183-208
PMID: 5318436
-
COLORIMETRIC ULTRAMICRO METHOD FOR THE DETERMINATION OF FREE FATTY ACIDS.
J Lipid Res. 1965 Jul;6:431-3
PMID: 14336215
-
Microbial assimilation of hydrocarbons: phospholipid metabolism.
J Bacteriol. 1971 Sep;107(3):806-14
PMID: 5095290