Lipid Mobilization and Gluconeogenesis in Plants: Do Glyoxylate Cycle Enzyme Activities Constitute a Real Cycle? A Hypothesis
Overview
Authors
Affiliations
Glyoxysomes are specialized peroxisomes present in various plant organs such as germinating cotyledons or senescing leaves. They are the site of beta-oxidation and of the glyoxylate cycle. These consecutive pathways are essential to the maintenance of gluconeogenesis initiated by the degradation of reserve or structural lipids. In contrast to mitochondrial beta-oxidation, which is prevalent in animal cells, glyoxysomal beta-oxidation and the glyoxylate cycle have no direct access to the mitochondrial respiratory chain because of the impermeability of the glyoxysomal membrane to the reduced cofactors. The necessity of NAD+ regeneration can conceivably be fulfilled by membrane redox chains and/or by transmembrane shuttles. Experimental evidence based on the active metabolic roles of higher plant glyoxysomes and yeast peroxisomes suggests the coexistence of two mechanisms, namely a reductase/peroxidase membrane redox chain and a malate/aspartate shuttle susceptible to transfer electrons to the mitochondrial ATP generating system. Such a model interconnects beta-oxidation, the glyoxylate cycle, the respiratory chain and gluconeogenesis in such a way that glyoxysomal malate dehydrogenase is an essential and exclusive component of beta-oxidation (NAD+ regeneration). Consequently, the classical view of the glyoxylate cycle is superseded by a tentative reactional scheme deprived of cyclic character.
Johnson B, Allen D, Bates P Plant Physiol. 2024; 197(2).
PMID: 38431525 PMC: 11849776. DOI: 10.1093/plphys/kiae121.
Saladino R, Barontini M, Cossetti C, Di Mauro E, Crestini C Orig Life Evol Biosph. 2011; 41(4):317-30.
PMID: 21424401 DOI: 10.1007/s11084-011-9236-3.
Saladino R, Neri V, Crestini C, Costanzo G, Graciotti M, Di Mauro E J Mol Evol. 2010; 71(2):100-10.
PMID: 20665014 DOI: 10.1007/s00239-010-9366-7.
Ramirez-Trujillo J, Encarnacion S, Salazar E, de los Santos A, Dunn M, Emerich D J Bacteriol. 2007; 189(16):5875-84.
PMID: 17526694 PMC: 1952029. DOI: 10.1128/JB.00385-07.
Breitling R, Sharif O, Hartman M, Krisans S Eukaryot Cell. 2002; 1(6):978-86.
PMID: 12477798 PMC: 138764. DOI: 10.1128/EC.1.6.978-986.2002.