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MicroRNA 665 Regulates Dentinogenesis through MicroRNA-Mediated Silencing and Epigenetic Mechanisms
Author(s) -
Hannah M. Heair,
Austin G. Kemper,
Bhaskar Roy,
Helena Bacha Lopes,
Harunur Rashid,
John C. Clarke,
Lubana K. Afreen,
Emanuela Prado Ferraz,
Eddy Kim,
Amjad Javed,
Márcio Mateus Beloti,
Mary MacDougall,
Mohammad Q. Hassan
Publication year - 2015
Publication title -
molecular and cellular biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.14
H-Index - 327
eISSN - 1067-8824
pISSN - 0270-7306
DOI - 10.1128/mcb.00093-15
Subject(s) - microrna , biology , gene silencing , dentinogenesis , microbiology and biotechnology , epigenetics , argonaute , regulation of gene expression , polycomb group proteins , runx2 , transcription factor , odontoblast , small interfering rna , genetics , repressor , rna , gene , pulp (tooth) , pathology , medicine
Studies of proteins involved in microRNA (miRNA) processing, maturation, and silencing have indicated the importance of miRNAs in skeletogenesis, but the specific miRNAs involved in this process are incompletely defined. Here, we identified miRNA 665 (miR-665) as a potential repressor of odontoblast maturation. Studies with cultured cell lines and primary embryonic cells showed that miR-665 represses the expression of early and late odontoblast marker genes and stage-specific proteases involved in dentin maturation. Notably, miR-665 directly targetedDlx3 mRNA and decreasedDlx3 expression. Furthermore, RNA-induced silencing complex (RISC) immunoprecipitation and biotin-labeled miR-665 pulldown studies identifiedKat6a as another potential target of miR-665. KAT6A interacted physically and functionally with RUNX2, activating tissue-specific promoter activity and prompting odontoblast differentiation. Overexpression of miR-665 reduced the recruitment of KAT6A toDspp andDmp1 promoters and prevented KAT6A-induced chromatin remodeling, repressing gene transcription. Taken together, our results provide novel molecular evidence that miR-665 functions in an miRNA-epigenetic regulatory network to control dentinogenesis.

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