Modulation of opening of rat liver mitochondrial membrane permeability transition pore by different fractions of the leaves of Cnestis ferruginea. D.C
Adisa, R.A.; Alabi, T.D.; Olorunsogo, O.O.
African Journal of Medicine and Medical Sciences 41 Suppl: 157-169
2012
ISSN/ISBN: 0309-3913 PMID: 23678652 Document Number: 659525
Increased attention is now directed towards the search for novel naturally occurring anticancer agents that can induce mitochondrial membrane permeability transition (MMPT) pore opening and cell death as a chemotherapeutic mechanism to combat cancer incidence. The inductive effects of partially purified fractions of leaves of Cnestis ferruginea- on rat liver MMPT pore opening was investigated. De-fatted methanol extract of leaves of Cnestis ferruginea was partitioned between water, chloroform, ethylacetate, or butanol separately in succession. The extract solutions were concentrated at 40 degrees C to obtain water (WF), chloroform (CF), ethylacetate (EF) and butanol (BF) fractions. The effects of these fractions (0.2- 1.4 mg/ml) on MMPT pore opening or mitochondrial swelling in the presence and absence of calcium were evaluated The effects of these fractions on the rat liver mitochondrial F0F1-ATPase activity were also assessed. Ca(2+)-induced MMPT pore opening was inhibited by 1 mg/ml each of MECF, CF, BF, WF and EF by 75.0%, 83.0%, 88.0%, 68.0%, and 71.0%, respectively and compared with the effect of spermine, a standard inhibitor. However, in the absence of Ca2+, the fractions significantly induced MMPT pore opening in intact mitochondria by 7.0, 5.7, 0.7, 4.8, 10.9 folds, respectively. In normal rat liver mitochondria, F1F0-ATPase activity was stimulated maximally by MECF, CF, EF, BF and WF by 4.7, 12.7, 1.6, 3.6 and 1.5 folds, respectively, thus indicating that the chloroform fraction is the most potent and therefore contains the active principle in the plant. The present study revealed that the leaves of Cnestis ferruginea contain bioactive substances that induced mitochondrial membrane permeability transition and activated the specific activity of F0F1 ATPase. Thus, suggesting strongly that these bioactive agents may serve as a useful chemotherapeutic strategy in cancer therapy.