Parkinson disease (PD) is a debilitating neurodegenerative disease for which there are no effective neuroprotective therapies. Converging data from post-mortem brain studies, oxidative toxin models, and PD genetics all implicate altered mitochondrial kinase networks in PD pathogenesis. Mutations in the mitochondrial PTEN-induced kinase 1 (PINK1) occur in familial and possibly sporadic PD. The candidate is an established and productive investigator in the signaling regulation of neuronal fate in culture and animal models of PD pathogenesis. The candidate's published and preliminary work implicate mitochondrial targeting of extracellular signal regulated protein kinase 2 (ERK2) and decreased PINK1 signaling in promoting dopaminergic neuronal cell death. Overexpression of wild type PINK1 confers neuroprotection in cell death models. Thus, identifying downstream targets of PINK1, and of mitochondrial targets of redox-activated ERK2, would represent important steps in understanding mechanisms that regulate neuronal survival and death. Identification of substrates for novel kinases such as PINK1, and of context specific ERK2 targets, can be accomplished using the powerful techniques of phospho-proteomics and mass spectroscopy. This proposal capitalizes on the strong cell signaling, proteomic/metabolomic, pharmaceutical, and neurodegeneration research environments at the University of Pittsburgh. The candidate's immediate goals are to obtain training in mass spectrometry and phospho-proteomics under the mentorship of Billy Day, Director of the Pittsburgh Proteomic Core Facility. Co-mentor Bruce Freeman, expert in free radical biochemistry, will provide complementary training in basic redox proteomics. In addition to short courses, seminars, and technical workshops, practical experience will be derived from a pilot project involving ATP-binding pocket mutagenesis and mass spectrometry to identify substrates of PINK1. Lay summary: This career enhancement award will provide an established physician-scientist studying neurodegenerative diseases with essential cross-training in highly specialized target identification technologies. Solidifying interdisciplinary collaborations will enable the principal investigator to more rapidly translate knowledge on factors that determine whether or not neurons can successfully adapt to disease promoting stresses into novel targets for designing neuroprotective PD therapies. ? ? ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
The Career Enhancement Award (K18)
Project #
1K18DC009120-01
Application #
7334031
Study Section
Special Emphasis Panel (ZDC1-SRB-L (45))
Program Officer
Sklare, Dan
Project Start
2007-09-01
Project End
2009-08-31
Budget Start
2007-09-01
Budget End
2009-08-31
Support Year
1
Fiscal Year
2007
Total Cost
$211,152
Indirect Cost
Name
University of Pittsburgh
Department
Pathology
Type
Schools of Medicine
DUNS #
004514360
City
Pittsburgh
State
PA
Country
United States
Zip Code
15213
Wang, Kent Z Q; Zhu, Jianhui; Dagda, Ruben K et al. (2014) ERK-mediated phosphorylation of TFAM downregulates mitochondrial transcription: implications for Parkinson's disease. Mitochondrion 17:132-40
Chu, Charleen T (2010) Tickled PINK1: mitochondrial homeostasis and autophagy in recessive Parkinsonism. Biochim Biophys Acta 1802:20-8
Cherra 3rd, Salvatore J; Kulich, Scott M; Uechi, Guy et al. (2010) Regulation of the autophagy protein LC3 by phosphorylation. J Cell Biol 190:533-9
Dagda, Ruben K; Cherra 3rd, Salvatore J; Kulich, Scott M et al. (2009) Loss of PINK1 function promotes mitophagy through effects on oxidative stress and mitochondrial fission. J Biol Chem 284:13843-55
Chu, Charleen T; Plowey, Edward D; Dagda, Ruben K et al. (2009) Autophagy in neurite injury and neurodegeneration: in vitro and in vivo models. Methods Enzymol 453:217-49
Dagda, Ruben K; Zhu, Jianhui; Chu, Charleen T (2009) Mitochondrial kinases in Parkinson's disease: converging insights from neurotoxin and genetic models. Mitochondrion 9:289-98
Chu, Charleen T (2008) Eaten alive: autophagy and neuronal cell death after hypoxia-ischemia. Am J Pathol 172:284-7
Dagda, Ruben K; Zhu, Jianhui; Kulich, Scott M et al. (2008) Mitochondrially localized ERK2 regulates mitophagy and autophagic cell stress: implications for Parkinson's disease. Autophagy 4:770-82
Cherra, Salvatore J; Chu, Charleen T (2008) Autophagy in neuroprotection and neurodegeneration: A question of balance. Future Neurol 3:309-323