This proposal's long standing objective is understanding the cellular events and molecular mechanisms that govern development of the mammalian central nervous system. The present proposal focuses on the issue of regulation of cell number allocated to the building of the cerebral cortex. Cell production in the embryonic ventricular zone (VZ) depends on rate of cell birth, fraction of cells leaving the cycle, extent of programmed cell death (PCD) and potential for postdevelopmental neurogenesis. New technology allows the analysis of the fundamental cellular and molecular mechanisms controlling cell number in mammals including primates. Three interrelated specific aims are proposed: !) examination of whether the members of Notch and Delta/Jagged gene families modulate proliferation and cell-fate restriction of VZ progenitors in the mouse and monkey cerebrum, and determine their involvement in regulating number and ratio of neurons with distinct cellular and laminar fates: 2) examine the role of PCD in controlling cell number in the VZ and cortical architecture by manipulating apoptosis through the use of transgenic mice that exhibit decreased apoptosis (CPP32 -/-) alone or in combination with mutants defective for the protector gene (Bcl-xl). Mechanisms of resistance of CPP32 deficient neurons to induced PCD will be studied in vitro and in heterochronic transplants; 3) examine whether or not postdevelopmental neurogenesis occurs in the adult monkey hippocampal formation with the most sensitive techniques and whether or not proliferation can be induced by agents that promote proliferation or environmental factors. The proposal brings knowledge derived from genes identified in invertebrates and from genetically engineered mice to the study of primate neurobiology with the goal of increasing our knowledge of normal and pathological cortical development.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
3R01NS014841-25S1
Application #
6795705
Study Section
Neurology B Subcommittee 2 (NEUB)
Program Officer
Leblanc, Gabrielle G
Project Start
1991-05-01
Project End
2004-04-30
Budget Start
2003-05-01
Budget End
2004-04-30
Support Year
25
Fiscal Year
2003
Total Cost
$245,250
Indirect Cost
Name
Yale University
Department
Neurosciences
Type
Schools of Medicine
DUNS #
043207562
City
New Haven
State
CT
Country
United States
Zip Code
06520
Morozov, Yury M; Sun, Yu-Yo; Kuan, Chia-Yi et al. (2016) Alteration of SLP2-like immunolabeling in mitochondria signifies early cellular damage in developing and adult mouse brain. Eur J Neurosci 43:245-57
Rash, Brian G; Ackman, James B; Rakic, Pasko (2016) Bidirectional radial Ca(2+) activity regulates neurogenesis and migration during early cortical column formation. Sci Adv 2:e1501733
Son, Alexander I; Hashimoto-Torii, Kazue; Rakic, Pasko et al. (2016) EphA4 has distinct functionality from EphA7 in the corticothalamic system during mouse brain development. J Comp Neurol 524:2080-92
Duque, Alvaro; Krsnik, Zeljka; Kostovi?, Ivica et al. (2016) Secondary expansion of the transient subplate zone in the developing cerebrum of human and nonhuman primates. Proc Natl Acad Sci U S A 113:9892-7
Benoit, Jamie; Ayoub, Albert E; Rakic, Pasko (2015) Transcriptomics of critical period of visual cortical plasticity in mice. Proc Natl Acad Sci U S A 112:8094-9
Brennand, K; Savas, J N; Kim, Y et al. (2015) Phenotypic differences in hiPSC NPCs derived from patients with schizophrenia. Mol Psychiatry 20:361-8
Reilly, Steven K; Yin, Jun; Ayoub, Albert E et al. (2015) Evolutionary genomics. Evolutionary changes in promoter and enhancer activity during human corticogenesis. Science 347:1155-9
Radonji?, Nevena V; Ayoub, Albert E; Memi, Fani et al. (2014) Diversity of cortical interneurons in primates: the role of the dorsal proliferative niche. Cell Rep 9:2139-51
Rash, Brian G; Rakic, Pasko (2014) Neuroscience. Genetic resolutions of brain convolutions. Science 343:744-5
Hashimoto-Torii, Kazue; Torii, Masaaki; Fujimoto, Mitsuaki et al. (2014) Roles of heat shock factor 1 in neuronal response to fetal environmental risks and its relevance to brain disorders. Neuron 82:560-72

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