The research program in this group is in the area of developmental neurobiology. The adult mammalian brain is composed of a vast number of different neurons. In embryonic development neurons are derived from multipotential precursor cells. When these precursors stop dividing they become committed to give specific neuronal types in a very precise pattern. This commitment step, which occurs in the few hours around the last division, controls critically important features of neuron numbers and types found in the adult brain. Our work is focused on the molecular and cellular mechanisms regulating this process. The key methods we currently employ include: (1) the use of transgenic mice to define DNA sequences that target gene expression to neuronal precursors; (2) dissociated cell and tissue slice culture analysis of growth factors which regulate the proliferation, survival and differentiation of cells in the embryonic brain; and (3) the use of transplanted neuronal precursors to construct chimeric brains carrying genetically engineered functional neurons. These techniques are used to analyze the molecular mechanisms controlling the development and function of the mammalian brain. The results are applicable to understanding the genetic basis of childhood tumors and neurodegenerative diseases of the central nervous system. They may also lead to powerful new therapies to reconstruct the damaged structure found in Parkinson's, Alzheimer's and Huntington's diseases.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Intramural Research (Z01)
Project #
1Z01NS002881-02
Application #
3760359
Study Section
Project Start
Project End
Budget Start
Budget End
Support Year
2
Fiscal Year
1994
Total Cost
Indirect Cost
City
State
Country
United States
Zip Code
Szklarczyk, Arek; Oyler, George; McKay, Ron et al. (2007) Cleavage of neuronal synaptosomal-associated protein of 25 kDa by exogenous matrix metalloproteinase-7. J Neurochem 102:1256-63
Rodriguez-Gomez, Jose A; Lu, Jian-Qiang; Velasco, Ivan et al. (2007) Persistent dopamine functions of neurons derived from embryonic stem cells in a rodent model of Parkinson disease. Stem Cells 25:918-28
Tesar, Paul J; Chenoweth, Josh G; Brook, Frances A et al. (2007) New cell lines from mouse epiblast share defining features with human embryonic stem cells. Nature 448:196-9
Shim, J H; Kim, S E; Woo, D H et al. (2007) Directed differentiation of human embryonic stem cells towards a pancreatic cell fate. Diabetologia 50:1228-38
Xi, Hualin; Shulha, Hennady P; Lin, Jane M et al. (2007) Identification and characterization of cell type-specific and ubiquitous chromatin regulatory structures in the human genome. PLoS Genet 3:e136
Leker, Ronen R; Soldner, Frank; Velasco, Ivan et al. (2007) Long-lasting regeneration after ischemia in the cerebral cortex. Stroke 38:153-61
Chen, Hui-Ling; Pistollato, Francesca; Hoeppner, Daniel J et al. (2007) Oxygen tension regulates survival and fate of mouse central nervous system precursors at multiple levels. Stem Cells 25:2291-301
Murase, Sachiko; McKay, Ronald D (2006) A specific survival response in dopamine neurons at most risk in Parkinson's disease. J Neurosci 26:9750-60
Mallon, Barbara S; Park, Kye-Yoon; Chen, Kevin G et al. (2006) Toward xeno-free culture of human embryonic stem cells. Int J Biochem Cell Biol 38:1063-75
Milhavet, Ollivier; Casanova, Danielle; Chevallier, Nathalie et al. (2006) Neural stem cell model for prion propagation. Stem Cells 24:2284-91

Showing the most recent 10 out of 27 publications