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1.
Braz. j. med. biol. res ; 54(7): e10579, 2021. tab, graf
Article in English | LILACS | ID: biblio-1249313

ABSTRACT

NOTCH pathway proteins, including the transcriptional factor HES1, play crucial roles in the development of the inner ear by means of the lateral inhibition mechanism, in which supporting cells have their phenotype preserved while they are prevented from becoming hair cells. Genetic manipulation of this pathway has been demonstrated to increase hair cell number. The present study aimed to investigate gene expression effects in hair cells and supporting cells after Hes1-shRNA lentivirus transduction in organotypic cultures of the organ of Corti from postnatal-day-3 mice. Forty-eight hours after in vitro knockdown, Hes1 gene expression was reduced at both mRNA and protein levels. Myo7a (hair cell marker) and Sox2 (progenitor cell marker) mRNA levels also significantly increased. The modulation of gene expression in the organ of Corti upon Hes1 knockdown is consistent with cell phenotypes related to lateral inhibition mechanism interference in the inner ear. The lentivirus-based expression of Hes1-shRNA is a valuable strategy for genetic interference in the organ of Corti and for future evaluation of its efficacy in protocols aiming at the regeneration of hair cells in vivo.


Subject(s)
Animals , Rats , Cochlea , Basic Helix-Loop-Helix Transcription Factors/genetics , Organ of Corti , Cell Differentiation , Receptors, Notch , Transcription Factor HES-1/genetics , Hair Cells, Auditory
2.
Braz. j. med. biol. res ; 47(12): 1029-1035, 12/2014. graf
Article in English | LILACS | ID: lil-727661

ABSTRACT

DNA methylation is essential in X chromosome inactivation and genomic imprinting, maintaining repression of XIST in the active X chromosome and monoallelic repression of imprinted genes. Disruption of the DNA methyltransferase genes DNMT1 and DNMT3B in the HCT116 cell line (DKO cells) leads to global DNA hypomethylation and biallelic expression of the imprinted gene IGF2 but does not lead to reactivation of XIST expression, suggesting that XIST repression is due to a more stable epigenetic mark than imprinting. To test this hypothesis, we induced acute hypomethylation in HCT116 cells by 5-aza-2′-deoxycytidine (5-aza-CdR) treatment (HCT116-5-aza-CdR) and compared that to DKO cells, evaluating DNA methylation by microarray and monitoring the expression of XIST and imprinted genes IGF2, H19, and PEG10. Whereas imprinted genes showed biallelic expression in HCT116-5-aza-CdR and DKO cells, the XIST locus was hypomethylated and weakly expressed only under acute hypomethylation conditions, indicating the importance of XIST repression in the active X to cell survival. Given that DNMT3A is the only active DNMT in DKO cells, it may be responsible for ensuring the repression of XIST in those cells. Taken together, our data suggest that XIST repression is more tightly controlled than genomic imprinting and, at least in part, is due to DNMT3A.


Subject(s)
Humans , DNA Methylation/genetics , Epigenetic Repression/genetics , Genome, Human , Genome/genetics , Genomic Imprinting/genetics , Insulin-Like Growth Factor II/genetics , RNA, Long Noncoding/genetics , Azacitidine/administration & dosage , Azacitidine/analogs & derivatives , /genetics , DNA Methylation/drug effects , Gene Knockout Techniques , Genome, Human/drug effects , In Situ Hybridization, Fluorescence/methods , Microarray Analysis , Polymorphism, Single Nucleotide , Proteins/metabolism , RNA, Long Noncoding/metabolism , Real-Time Polymerase Chain Reaction/methods , Reverse Transcriptase Polymerase Chain Reaction/methods
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