The pulmonary toxicity associated with amiodarone therapy is the major factor limiting the widespread use of this extremely effective antidysrhythmic agent. This proposal seeks to determine the mechanism of amiodarone toxicity by use of a novel in vitro cell culture system using human pulmonary artery endothelial (HPAE) cells. Findings from the initial portion of the grant indicate: 1) amiodarone induces a significant and prolonged increase in the cytosolic C++ of HPAE cells, 2) the increase in cytosolic Ca++ results (at least initially) from Ca++ entry across the plasma membrane, 3) amiodarone induces HPAE cell injury using the same concentration of the drug and length of incubation required to induce Ca++ changes, and 4) blocking the increase in cytosolic Ca++ (by use of Ca++-free media or addition of alpha-tocopherol) also blocks the cell injury induced by amiodarone. These findings provide strong support for the hypothesis: amiodarone induces a pathologic increase in cytosolic Ca++ by initially increasing Ca++ entry across the cell membrane which results in a cascade of cellular events leading to irreversible cell injury. We propose the following Specific Aims: 1) to determine the mechanism(s) of amiodarone-induced Ca++ entry across the plasma membrane, 2) to determine if amiodarone induces release of Ca++ from intracellular stores, 3) to determine if there is widespread activation of Ca++-dependent pathways and 4) to provide evidence for """"""""cause-effect"""""""" relationship between the increase in cytosolic Ca++ and biologic evidence of cellular toxicity. If the above findings are true, this proposal will offer an entirely new direction to the study of amiodarone toxicity and may suggest fundamentally different strategies in the future therapeutic approaches to patients with this life-threatening drug toxicity.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL036124-06
Application #
3350800
Study Section
Toxicology Subcommittee 2 (TOX)
Project Start
1988-07-01
Project End
1995-08-31
Budget Start
1991-09-15
Budget End
1992-08-31
Support Year
6
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Indiana University-Purdue University at Indianapolis
Department
Type
Schools of Medicine
DUNS #
005436803
City
Indianapolis
State
IN
Country
United States
Zip Code
46202
Hirko, Aaron C; Dallasen, Renee; Jomura, Sachiko et al. (2008) Modulation of inflammatory responses after global ischemia by transplanted umbilical cord matrix stem cells. Stem Cells 26:2893-901
Jomura, Sachiko; Uy, Marc; Mitchell, Kathy et al. (2007) Potential treatment of cerebral global ischemia with Oct-4+ umbilical cord matrix cells. Stem Cells 25:98-106
Pfeiffer, D R; Gudz, T I; Novgorodov, S A et al. (1995) The peptide mastoparan is a potent facilitator of the mitochondrial permeability transition. J Biol Chem 270:4923-32
Kachel, D L; Martin 2nd, W J (1994) Cyclophosphamide-induced lung toxicity: mechanism of endothelial cell injury. J Pharmacol Exp Ther 268:42-6
Sokol, P P; Longenecker, K L; Kachel, D L et al. (1993) Mechanism of putrescine transport in human pulmonary artery endothelial cells. J Pharmacol Exp Ther 265:60-6
Retz, J L; Martin 2nd, W J (1992) Amiodarone pulmonary toxicity. Intensive Care Med 18:388-90
Martin 2nd, W J (1990) Mechanisms of amiodarone pulmonary toxicity. Clin Chest Med 11:131-8
Kachel, D L; Moyer, T P; Martin 2nd, W J (1990) Amiodarone-induced injury of human pulmonary artery endothelial cells: protection by alpha-tocopherol. J Pharmacol Exp Ther 254:1107-12
Powis, G; Olsen, R; Standing, J E et al. (1990) Amiodarone-mediated increase in intracellular free Ca2+ associated with cellular injury to human pulmonary artery endothelial cells. Toxicol Appl Pharmacol 103:156-64
Martin 2nd, W J; Kachel, D L; Vilen, T et al. (1989) Mechanism of phospholipidosis in amiodarone pulmonary toxicity. J Pharmacol Exp Ther 251:272-8

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