Dynamic properties of the neuronal cytoskeleton affect many aspects of the nervous system, ranging from generation and maintenance of neuronal morphologies to defining functional domains in a neuron. These require genetic and biochemical adaptations of cytoskeletal elements to specific biological requirements of neurons. Some result from programs initiated during differentiation of neurons and glia, while other represent responses to the local environment and are sensitive to subsequent changes in that environment. A variety of biochemical specializations of the neuronal cytoskeleton have been identified. We have recently demonstrated a novel posttranslation modification of axonal tubulin that may be important in the biogenesis of insoluble tubulin. Experiments in this application seek to characterize insoluble tubulin and to define the physiological roles played by stable axonal microtubule segments in neuronal growth and regeneration. Studies on Trembler and Shiverer mice, two mutant strains with deficient myelination, have begun to characterize the local responses of the axon to different microenvironments. The extent to which the glial environment can alter the organization and dynamics of the underlying axonal cytoskeleton will be examined in demyelinated and myelinated nerves. Interactions between myelinating glia and axons in the CNS and PNS will be characterized to determine the extent to which local modulation of the axonal cytoskeleton by the glial environment sculpts the functional architecture of the axon. Based on our demonstration that demyelination of PNS axons affects the organization and phosphorylation of axonal cytoskeletal proteins. We propose to identify metabolic pathways by which myelination alters cytoskeletal phosphorylation. These experiments will identify mechanisms by which a specific molecular response of the axon to its environment is generated. Our goal is to provide a foundation for understanding neuronal dynamics in development, regeneration, and neuropathology.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS023320-11
Application #
2037212
Study Section
Neurology B Subcommittee 2 (NEUB)
Program Officer
Cheung, Mary Ellen
Project Start
1985-04-01
Project End
1998-11-30
Budget Start
1996-12-01
Budget End
1997-11-30
Support Year
11
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of Texas Sw Medical Center Dallas
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
City
Dallas
State
TX
Country
United States
Zip Code
75390
Brady, Scott T; Morfini, Gerardo A (2017) Regulation of motor proteins, axonal transport deficits and adult-onset neurodegenerative diseases. Neurobiol Dis 105:273-282
Moreno, H; Morfini, G; Buitrago, L et al. (2016) Tau pathology-mediated presynaptic dysfunction. Neuroscience 325:30-8
Tiernan, Chelsea T; Combs, Benjamin; Cox, Kristine et al. (2016) Pseudophosphorylation of tau at S422 enhances SDS-stable dimer formation and impairs both anterograde and retrograde fast axonal transport. Exp Neurol 283:318-29
Song, Yuyu; Kang, Minsu; Morfini, Gerardo et al. (2016) Fast axonal transport in isolated axoplasm from the squid giant axon. Methods Cell Biol 131:331-48
Kang, Minsu; Baker, Lisa; Song, Yuyu et al. (2016) Biochemical analysis of axon-specific phosphorylation events using isolated squid axoplasms. Methods Cell Biol 131:199-216
Gatto, Rodolfo G; Chu, Yaping; Ye, Allen Q et al. (2015) Analysis of YFP(J16)-R6/2 reporter mice and postmortem brains reveals early pathology and increased vulnerability of callosal axons in Huntington's disease. Hum Mol Genet 24:5285-98
Song, Yuyu; Brady, Scott T (2015) Post-translational modifications of tubulin: pathways to functional diversity of microtubules. Trends Cell Biol 25:125-36
Morfini, Gerardo A; Bosco, Daryl A; Brown, Hannah et al. (2013) Inhibition of fast axonal transport by pathogenic SOD1 involves activation of p38 MAP kinase. PLoS One 8:e65235
Song, Yuyu; Kirkpatrick, Laura L; Schilling, Alexander B et al. (2013) Transglutaminase and polyamination of tubulin: posttranslational modification for stabilizing axonal microtubules. Neuron 78:109-23
Kanaan, Nicholas M; Morfini, Gerardo; Pigino, Gustavo et al. (2012) Phosphorylation in the amino terminus of tau prevents inhibition of anterograde axonal transport. Neurobiol Aging 33:826.e15-30

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