Targeting microRNA-dependent control of X chromosome inactivation improves the Rett Syndrome phenotype
Abstract
Abstract X chromosome inactivation (XCI) is induced by Xist long non-coding RNA and protein-coding genes. However, the role of small non-coding RNA function in XCI remains unidentified. Our genome-wide, loss-of-function CRISPR/Cas9 screen in female fibroblasts identified microRNAs (miRNAs) as regulators of XCI. A striking finding is the identification of miR106a among the top candidates from the screen. Loss of miR106a is accompanied by altered Xist interactome, leading to dissociation and destabilization of Xist. XCI interference via miR106a inhibition has therapeutic implications for Rett syndrome (RTT) girls with a defective X-linked MECP2 gene. Here, we discovered that the inhibition of miR106a significantly improves several facets of RTT pathology: it increases the life span, enhances locomotor activity and exploratory behavior, and diminishes breathing variabilities. Our results suggest that miR106a targeting offers a feasible therapeutic strategy for RTT and other monogenic X-linked neurodevelopmental disorders.
Article Details
Authors (23)
Song Lou
Rachisan DJiake Tihagam
Urszula N. Wasko
Zaffar Equbal
Sanjay Venkatesan
Klaudia Braczyk
Piotr Przanowski
Bon Il Koo
Ilyas Saltani
Arjun Tushir Singh
Shibi Likhite
Samantha Powers
George M. P. R. Souza
Robert A. Maxwell
Jun Yu
Department of Earth System Science, University of California
Lihua J. Zhu
Mark Beenhakker
Stephen B. G. Abbott
Zhipeng Lu
Department of Chemistry and Chemical Biology, Baker Laboratory
Michael R. Green
Kathrin C. Meyer
Jogender Tushir-Singh
Sanchita Bhatnagar