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Ross, C. J.

Publications and source records attributed to Ross, C. J..

2 recordsLinked to original sources

Inducible formation of fusion transcripts upregulates haploinsufficient CHD2 gene expression

Modes of action of long noncoding RNAs (lncRNAs) are poorly understood. CHASERR is a broadly expressed lncRNA located immediately upstream of the promoter of the CHD2 gene. We show that antisense oligonucleotides (ASOs) targeting conserved motifs in CHASERRs last exon induce the formation of a fusion transcript joining CHASERR to CHD2. This fusion transcript is exported to the cytoplasm and translated into full-length CHD2 protein. Deleting the same motifs in mice mimics the ASO effect, increasing CHD2 protein without causing the deleterious effects associated with full CHASERR ablation. The fusion transcripts are also expressed endogenously, induced in activated neurons, and their constitutive induction affects neuronal gene expression and chromatin accessibility. Perinatal introduction of the ASO into Chd2+/- mice up-regulates CHD2 expression and alleviates behavioral phenotypes caused by CHD2 haploinsufficiency, providing a therapeutic route to CHD2 haploinsufficiency. This concept of targeting upstream genes with ASOs to induce transcript fusion can be extended to other gene pairs, and is thus a broadly relevant approach for increasing haploinsufficient gene expression.

molecular biology↗

Conserved RNA-binding protein interactions mediate syntologous lncRNA functions

Syntologous long noncoding RNAs (lncRNAs) are loci with conserved genomic positions that often show little or no sequence similarity. Despite diverging primary sequences, lncRNA syntologs from distant species can carry out similar functions. However, determinants underlying conserved functions of syntologous lncRNA transcripts with no sequence similarity remain unknown. Using CASC15 and melanoma formation as a paradigm for fast evolving lncRNAs and their functions, we found that human and zebrafish CASC15 syntologs with no detectable sequence similarity retained their function across 450 million years of evolution. Similar to the casc15-deficient zebrafish, CASC15-mutant human melanoma cells show increased cell migration. Expression of human CASC15 in zebrafish rescues loss of casc15 function by attenuating melanoma formation. This conserved function is supported by a set of RNA-binding proteins, interacting with both zebrafish and human CASC15 transcripts. Together, our findings demonstrate that conserved RNA-protein interactions can define functions of rapidly evolving lncRNA transcripts.

molecular biology↗