Mitochondrial shape and size are governed by frequent fission and fusion events. Recently, defects in mitochondrial morphological caused by aberrant mitochondrial fission and fusion in mitochondria have been found to lead to optic neurodegeneration associated with autosomal dominant optic atrophy (adOA), and in apoptosis. These findings underscore the physiological importance of mitochondrial fission and fusion in cells. We propose a chemical genetic approach to investigate both the molecular mechanisms and physiological implications of mitochondrial membrane dynamics. We have identified small molecule inhibitors of these processes through screens conducted at the Institute of Chemistry and Cell Biology at Harvard. The most potent to date is a mitochondrial fission inhibitor that targets the mitochondrial fission dynamin-related GTPase and acts with equal efficacy in yeast and mammalian cells. We will exploit this inhibitor to determine the mechanistic role of dynamin-related GTPases in mitochondrial fission. We will also characterize our other candidate inhibitors from our screen and identify their targets to examine the molecular mechanisms of both mitochondrial fission and fusion. We exploit our inhibitors further in mammalian cell culture model systems to examine the physiological role of mitochondrial membrane dynamics in apoptosis and to test the theraputic effects of small molecule fission inhibitors on optic atrophies that result from mitochondrial dysfunction.

Agency
National Institute of Health (NIH)
Institute
National Eye Institute (NEI)
Type
Research Project (R01)
Project #
1R01EY015924-01
Application #
6816558
Study Section
Cell Development and Function Integrated Review Group (CDF)
Program Officer
Hunter, Chyren
Project Start
2004-09-01
Project End
2007-08-31
Budget Start
2004-09-01
Budget End
2005-08-31
Support Year
1
Fiscal Year
2004
Total Cost
$309,517
Indirect Cost
Name
University of California Davis
Department
Anatomy/Cell Biology
Type
Schools of Arts and Sciences
DUNS #
047120084
City
Davis
State
CA
Country
United States
Zip Code
95618
Lackner, Laura L; Nunnari, Jodi (2010) Small molecule inhibitors of mitochondrial division: tools that translate basic biological research into medicine. Chem Biol 17:578-83
Hoppins, Suzanne; Nunnari, Jodi (2009) The molecular mechanism of mitochondrial fusion. Biochim Biophys Acta 1793:20-6
Cassidy-Stone, Ann; Chipuk, Jerry E; Ingerman, Elena et al. (2008) Chemical inhibition of the mitochondrial division dynamin reveals its role in Bax/Bak-dependent mitochondrial outer membrane permeabilization. Dev Cell 14:193-204
Lee, Young Jin; Lackner, Laura L; Nunnari, Jodi M et al. (2007) Shotgun cross-linking analysis for studying quaternary and tertiary protein structures. J Proteome Res 6:3908-17
Hoppins, Suzanne; Lackner, Laura; Nunnari, Jodi (2007) The machines that divide and fuse mitochondria. Annu Rev Biochem 76:751-80
Meeusen, Shelly; DeVay, Rachel; Block, Jennifer et al. (2006) Mitochondrial inner-membrane fusion and crista maintenance requires the dynamin-related GTPase Mgm1. Cell 127:383-95
Ingerman, Elena; Perkins, Edward M; Marino, Michael et al. (2005) Dnm1 forms spirals that are structurally tailored to fit mitochondria. J Cell Biol 170:1021-7
Ingerman, Elena; Nunnari, Jodi (2005) A continuous, regenerative coupled GTPase assay for dynamin-related proteins. Methods Enzymol 404:611-9
Yoo, Choong Leol; Fettinger, James C; Kurth, Mark J (2005) Stannous chloride in alcohol: a one-pot conversion of 2-nitro-N-arylbenzamides to 2,3-dihydro-1H-quinazoline-4-ones. J Org Chem 70:6941-3