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1.
IBRO Neurosci Rep ; 10: 75-82, 2021 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-33842913

RESUMO

Neural stem cells (NSC) restrict their differentiation potential as the central nervous system develops. Experimental evidence suggests that the mechanisms governing the transition from the neurogenic to the gliogenic phase irreversibly affect the ability of NSC to generate neurons. Cell cycle regulation has been associated with cell fate in different models. In this work, we assessed the temporal correlation between the loss of the neurogenic potential and cell cycle lengthening of NSC obtained from embryonic mouse spinal cords, during the transition of the neurogenic to the gliogenic phase, using neurospheres. We also used the cell cycle inhibitor Olomoucine to increase cell cycle length by decreasing the proliferation rate. Our results show that neurospheres obtained from a neurogenic stage give rise mostly to neurons, whereas those obtained from later stages produce preferentially glial cells. During the transition from neurogenesis to gliogenesis, the proliferation rate dropped, and the cell cycle length increased 1.5 folds, as monitored by DNA BrdU incorporation. Interestingly, Olomoucine-treated neurogenic-neurospheres display a reduced proliferation rate and preserve their neurogenic potential. Our results suggest that the mechanisms that restrict the differentiation potential of NSC are independent of the proliferation control.

2.
Mech Ageing Dev ; 192: 111360, 2020 12.
Artigo em Inglês | MEDLINE | ID: mdl-32976914

RESUMO

Recently, mutations in the RNA polymerase III subunit A (POLR3A) have been described as the cause of the neonatal progeria or Wiedemann-Rautenstrauch syndrome (WRS). POLR3A has important roles in transcription regulation of small RNAs, including tRNA, 5S rRNA, and 7SK rRNA. We aim to describe the cellular and molecular features of WRS fibroblasts. Cultures of primary fibroblasts from one WRS patient [monoallelic POLR3A variant c.3772_3773delCT (p.Leu1258Glyfs*12)] and one control patient were cultured in vitro. The mutation caused a decrease in the expression of wildtype POLR3A mRNA and POLR3A protein and a sharp increase in mutant protein expression. In addition, there was an increase in the nuclear localization of the mutant protein. These changes were associated with an increase in the number and area of nucleoli and to a high increase in the expression of pP53 and pH2AX. All these changes were associated with premature senescence. The present observations add to our understanding of the differences between Hutchinson-Gilford progeria syndrome and WRS and opens new alternatives to study cell senesce and human aging.


Assuntos
Retardo do Crescimento Fetal , Fibroblastos , Progéria , RNA Polimerase III , Proteína Supressora de Tumor p53/metabolismo , Nucléolo Celular/fisiologia , Células Cultivadas , Senescência Celular/fisiologia , Dano ao DNA , Retardo do Crescimento Fetal/genética , Retardo do Crescimento Fetal/patologia , Fibroblastos/fisiologia , Fibroblastos/ultraestrutura , Expressão Gênica , Humanos , Mutação , Progéria/genética , Progéria/patologia , RNA Polimerase III/genética , RNA Polimerase III/metabolismo , RNA Ribossômico 5S/metabolismo
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