Circular RNAs (circRNAs) are widely expressed in animal cells, but their biogenesis and functions are poorly understood. CircRNAs have been shown to act as sponges for miRNAs and may also potentially sponge RNA-binding proteins (RBPs) and are thus predicted to function as robust posttranscriptional regulators of gene expression. The joint analysis of large-scale transcriptome data coupled with computational analyses represents a powerful approach to elucidate possible biological roles of ribonucleoprotein (RNP) complexes. Here, we present a new web tool, CircInteractome (circRNA interactome), for mapping RBP- and miRNA-binding sites on human circRNAs. CircInteractome searches public circRNA, miRNA, and RBP databases to provide bioinformatic analyses of binding sites on circRNAs and additionally analyzes miRNA and RBP sites on junction and junction-flanking sequences. CircInteractome also allows the user the ability to (1) identify potential circRNAs which can act as RBP sponges, (2) design junction-spanning primers for specific detection of circRNAs of interest, (3) design siRNAs for circRNA silencing, and (4) identify potential internal ribosomal entry sites (IRES). In sum, the web tool CircInteractome, freely accessible at http://circinteractome.nia.nih.gov, facilitates the analysis of circRNAs and circRNP biology.
Neuritic plaques, a pathological hallmark in Alzheimer’s disease
(AD) brains, comprise extracellular aggregates of amyloid-beta (Aβ)
peptide and degenerating neurites that accumulate autolysosomes. We found that,
in the brains of patients with AD and in AD mouse models, Aβ
plaque-associated Olig2- and NG2-expressing oligodendrocyte progenitor cells
(OPCs), but not astrocytes, microglia, or oligodendrocytes, exhibit a
senescence-like phenotype characterized by the upregulation of p21/CDKN1A,
p16/INK4/CDKN2A proteins, and senescence-associated β-galactosidase
activity. Molecular interrogation of the Aβ plaque environment revealed
elevated levels of transcripts encoding proteins involved in OPC function,
replicative senescence, and inflammation. Direct exposure of cultured OPCs to
aggregating Aβ triggered cell senescence. Senolytic treatment of AD mice
selectively removed senescent cells from the plaque environment, reduced
neuroinflammation, lessened Aβ load, and ameliorated cognitive deficits.
Our findings suggest a role for Aβ-induced OPC cell senescence in
neuroinflammation and cognitive deficits in AD, and a potential therapeutic
benefit of senolytic treatments.
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