Literature DB >> 12697384

Activity of isosteviol lactone on mitochondrial metabolism.

Welligton L Braguini1, Maria A Biazon Gomes, Brás H de Oliveira, Eva G S Carnieri, Maria Eliane M Rocha, Maria Benigna M de Oliveira.   

Abstract

Isosteviol lactone (LAC), a lactone derivative of the diterpenic acid isosteviol (ISO) was evaluated for its effect on the oxidative metabolism of mitochondria isolated from rat liver. In this model, LAC (1 mM) depressed the phosphorylation efficiency, as shown by the decreased respiratory control coefficient (RCC) and ADP/O ratio. LAC (1 mM) inhibited NADH oxidase (45%), succinate oxidase (34%) and promoted low-level inhibitions on succinate dehydrogenase (13%), succinate-cytochrome c oxide-reductase (23%), cytochrome c oxidase (10%), and NADH dehydrogenase (13%). Glutamate dehydrogenase was also a target for LAC, as it was 85% inhibited by 1 mM LAC. Cyclic voltammetry data showed that LAC, as well as ISO, does not undergo redox reactions under current experimental conditions. LAC (0.05-0.75 mM) inhibited the swelling dependent on the glutamate oxidation, 50% of the effect occurring at 0.5 mM LAC. Swelling supported by KNO(3) and valinomycin was also inhibited over all concentrations used of LAC and ISO, the effect being of a lower intensity for LAC, suggesting that the modification of the structure of ISO by lactonization diminished its interaction with the membrane. This could contribute to attenuation of the toxic effects described for ISO on mitochondrial function, such as those on respiratory chain enzymatic complexes and phosphorylating activity.

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Year:  2003        PMID: 12697384     DOI: 10.1016/s0378-4274(03)00074-2

Source DB:  PubMed          Journal:  Toxicol Lett        ISSN: 0378-4274            Impact factor:   4.372


  2 in total

1.  19-Benzo-yloxy-13,16-seco-ent-beyeran 13,16-lactone.

Authors:  Jin Cai; Xiaoming Zha
Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2010-12-15

2.  Isosteviol Protects Free Fatty Acid- and High Fat Diet-Induced Hepatic Injury via Modulating PKC-β/p66Shc/ROS and Endoplasmic Reticulum Stress Pathways.

Authors:  Hongwei Yi; Deyi Xu; Xudong Wu; Fang Xu; Lin Lin; Huiping Zhou
Journal:  Antioxid Redox Signal       Date:  2019-01-28       Impact factor: 7.468

  2 in total

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