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Effects of Guanidine Inhibitors on Mung Bean Mitochondria

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Journal Plant Physiol
Specialty Physiology
Date 1970 Jul 1
PMID 16657415
Citations 5
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Abstract

The effects of phenylethylbiguanidide, decamethylenediguanidide, and octylguanidine have been studied with mung bean hypocotyl mitochondria (Phaseolus aureus var. Jumbo) supplied with malate, reduced nicotinamide adenine dinucleotide, succinate, or ascorbate-tetramethyl-p-phenylenediamine as substrates. The guanidines act as energy transfer inhibitors, all three inhibiting all three phosphorylation sites. Phenylethylbiguanidide causes only partial inhibition even at relatively high concentrations. Decamethylenediguanidide inhibits about 70% of the malate respiration, 55% of the succinate respiration, and 35% of the ascorbate-tetramethyl-p-phenylenediamine respiration.Octylguanidine inhibits all three phosphorylation sites and the cyanide-insensitive respiration, but to differing extents and at different concentrations. Both states 3 and 4 are inhibited by octylguanidine. Inhibition of state 4 is preceded by an uncoupling action at lower concentrations of inhibitor, while inhibition of state 3 is influenced by the state of the mitochondria when the inhibitor is added. Application of the guanidine to state 4 mitochondria is more effective than application to mitochondria already in state 3.

Citing Articles

The Respiratory Chain of Plant Mitochondria: XI. Electron Transport from Succinate to Endogenous Pyridine Nucleotide in Mung Bean Mitochondria.

Storey B Plant Physiol. 1971; 48(6):694-701.

PMID: 16657863 PMC: 396931. DOI: 10.1104/pp.48.6.694.


Energy-linked Functions of Submitochondrial Particles Prepared from Mung Bean Mitochondria.

Wilson S, Bonner W Plant Physiol. 1970; 46(1):31-5.

PMID: 16657417 PMC: 396528. DOI: 10.1104/pp.46.1.31.


Preparation and some properties of submitochondrial particles from tightly coupled mung bean mitochondria.

Wilson S, Bonner W Plant Physiol. 1970; 46(1):25-30.

PMID: 16657416 PMC: 396527. DOI: 10.1104/pp.46.1.25.


Succinate-driven reverse electron transport in the respiratory chain of plant mitochondria. The effects of rotenone and adenylates in relation to malate and oxaloacetate metabolism.

Rustin P, Lance C Biochem J. 1991; 274 ( Pt 1):249-55.

PMID: 2001241 PMC: 1149945. DOI: 10.1042/bj2740249.


Cyanide-insensitive oxidation of ascorbate + NNN'N'-tetramethyl-p-phenylenediamine mixture by mung-bean (Phaseolus aureus) mitochondria. An energy-linked function.

Wilson S Biochem J. 1978; 176(1):129-36.

PMID: 728100 PMC: 1186212. DOI: 10.1042/bj1760129.

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