Circulation Journal
Online ISSN : 1347-4820
Print ISSN : 1346-9843
ISSN-L : 1346-9843
Myocardial Disease
Microtubule Disorganization Affects the Mitochondrial Permeability Transition Pore in Cardiac Myocytes
Azumi KumazawaHideki KatohDaishi NonakaTomoyuki WatanabeMasao SaotomeTsuyoshi UrushidaHiroshi SatohHideharu Hayashi
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Supplementary material

2014 Volume 78 Issue 5 Pages 1206-1215

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Abstract
Background: Microtubule (MT) disorganization is related to cardiac disorders. To elucidate the mechanism by which disorganization of the MT network deteriorates cardiac function, the relationship between MT disorganization and mitochondrial permeability transition pore (mPTP) in cardiac myocytes was investigated. Methods and Results: The effects of MT stabilization (by paclitaxel) and MT disruption (by nocodazole) on mitochondrial membrane potential (ΔΨm) and the opening of mPTP were measured in permeabilized Sprague-Dawley rat myocytes. Both paclitaxel and nocodazole depolarized ΔΨm and opened mPTP. When isolated mitochondria were exposed to paclitaxel or nocodazole, there were no changes in ΔΨm. The effects of paclitaxel or nocodazole on ΔΨm depolarization and mPTP were inhibited by cyclosporin A. Treatment of myocytes with 0Ca+BAPTA or inhibition of sarcoplasmic reticulum (SR) Ca2+ uptake by thapsigargin prevented the effect of paclitaxel on mPTP, but not that of nocodazole. Inhibition of the mitochondrial Ca2+ uniporter by Ru360 did not alter the effect of paclitaxel on mPTP. Paclitaxel reduced the expression of the mitochondrial fusion protein, mitofusin-2, and induced mitochondrial fragmentation. Conclusions: Disruption of the MT network by nocodazole might destroy the MT-mitochondria connection and alter mitochondrial function. MT disorganization by paclitaxel could regulate mPTP through the outer mitochondrial membrane complex and the Ca2+-sensitive signaling pathway, which also interacts with the mitochondrial fusion protein, mitofusin-2.  (Circ J 2014; 78: 1206–1215)
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© 2014 THE JAPANESE CIRCULATION SOCIETY
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