» Articles » PMID: 16662427

Involvement of Glyoxysomal Lipase in the Hydrolysis of Storage Triacylglycerols in the Cotyledons of Soybean Seedlings

Overview
Journal Plant Physiol
Specialty Physiology
Date 1982 Jul 1
PMID 16662427
Citations 9
Authors
Affiliations
Soon will be listed here.
Abstract

The total cotyledon extract of soybean (Glycine max [L.] Merr. var. Coker 136) seedlings underwent lipolysis as measured by the release of fatty acids. The highest lipolytic activity occurred at pH 9. This lipolytic activity was absent in the dry seeds and increased after germination concomitant with the decrease in total lipids. Using spherosomes (lipid bodies) isolated from the cotyledons during the peak stage of lipolysis (5-7 days) as substrates, about 40% of the lipase activity was found in the glyoxysomes after organelle breakage had been accounted for; the remaining activity was distributed among other subcellular fractions but none was found in the spherosomal fraction. The glyoxysomal lipase had maximal activity at pH 9, and catalyzed the hydrolysis of tri-, di-, and monoacylglycerols of linoleic acid, the most abundant fatty acid in soybean. The spherosomes contained a neutral lipase that could hydrolyze monolinolein and N-methylindoxylmyristate, but not trilinolein. This spherosomal lipase activity dropped off rapidly during early seedling growth, preceding lipolysis. Spherosomes isolated from either dry or germinated seeds did not possess lipolytic activity, and spherosomes from germinated seeds but not from dry seeds could serve as substrates for the glyoxysomal lipase. It is concluded that the glyoxysomal lipase is the enzyme catalyzing the initial hydrolysis of storage triacylglycerols.

Citing Articles

Label-free in situ imaging of oil body dynamics and chemistry in germination.

Waschatko G, Billecke N, Schwendy S, Jaurich H, Bonn M, Vilgis T J R Soc Interface. 2016; 13(123).

PMID: 27798279 PMC: 5095225. DOI: 10.1098/rsif.2016.0677.


Formation of complex ether lipids from 1-O-alkylglycerols in cell suspension cultures of rape.

Weber N, Mangold H Planta. 2013; 158(2):111-8.

PMID: 24264539 DOI: 10.1007/BF00397703.


An Antibody to the Castor Bean Glyoxysomal Lipase (62 kD) also Binds to a 62 kD Protein in Extracts from Many Young Oilseed Plants.

Hills M, Beevers H Plant Physiol. 1987; 85(4):1084-8.

PMID: 16665808 PMC: 1054398. DOI: 10.1104/pp.85.4.1084.


Purification and properties of glyoxysomal lipase from castor bean.

Maeshima M, Beevers H Plant Physiol. 1985; 79(2):489-93.

PMID: 16664437 PMC: 1074912. DOI: 10.1104/pp.79.2.489.


Lipase in the Lipid Bodies of Corn Scutella during Seedling Growth.

Lin Y, Wimer L, Huang A Plant Physiol. 1983; 73(2):460-3.

PMID: 16663239 PMC: 1066484. DOI: 10.1104/pp.73.2.460.


References
1.
Ory R, St Angelo A, Altschul A . Castor bean lipase: action on its endogenous substrate. J Lipid Res. 1960; 1:208-13. View

2.
Beevers H . Glyoxysomes of castor bean endosperm and their relation to gluconeogenesis. Ann N Y Acad Sci. 1969; 168(2):313-24. DOI: 10.1111/j.1749-6632.1969.tb43118.x. View

3.
Moreau R, Huang A . Oxidation of fatty alcohol in the cotyledons of jojoba seedlings. Arch Biochem Biophys. 1979; 194(2):422-30. DOI: 10.1016/0003-9861(79)90636-2. View

4.
Nixon M, Chan S . A simple and sensitive colorimetric method for the determination of long-chain free fatty acids in subcellular organelles. Anal Biochem. 1979; 97(2):403-9. DOI: 10.1016/0003-2697(79)90093-9. View

5.
Muto S, Beevers H . Lipase Activities in Castor Bean Endosperm during Germination. Plant Physiol. 1974; 54(1):23-8. PMC: 541496. DOI: 10.1104/pp.54.1.23. View