Polyglutamine (polyQ) diseases are a class of progressive neurodegenerative disorders characterized by the expression of both expanded RNA and misfolded polyQ protein. We previously reported that the direct interaction between expanded RNA and nucleolar protein nucleolin (NCL) impedes RNA () transcription, and eventually triggers nucleolar stress-induced apoptosis in polyQ diseases. Here, we report that a 21-amino acid peptide, named "beta-structured inhibitor for neurodegenerative diseases" (BIND), effectively suppresses toxicity induced by expanded RNA. When administered to a cell model, BIND potently inhibited cell death induced by expanded RNA with an IC value of ∼0.7 µM. We showed that the function of BIND is dependent on Glu2, Lys13, Gly14, Ile18, Glu19, and Phe20. BIND treatment restored the subcellular localization of nucleolar marker protein and the expression level of Through isothermal titration calorimetry analysis, we demonstrated that BIND suppresses nucleolar stress via a direct interaction with RNA in a length-dependent manner. The mean binding constants () of BIND to , , , and RNA are 17.28, 5.60, 4.83, and 0.66 µM, respectively. In vivo, BIND ameliorates retinal degeneration and climbing defects, and extends the lifespan of expressing expanded RNA. These effects suggested that BIND can suppress neurodegeneration in diverse polyQ disease models in vivo and in vitro without exerting observable cytotoxic effect. Our results collectively demonstrated that BIND is an effective inhibitor of expanded RNA-induced toxicity in polyQ diseases.
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http://dx.doi.org/10.1261/rna.062703.117 | DOI Listing |
J Cardiothorac Surg
January 2025
Department of Cardiology, Beijing Anzhen Hospital, Beijing Institute of Heart, Lung, and Blood Vessel Diseases, Capital Medical University, Beijing, 100069, China.
Objective: miRNA, circRNA, and lncRNA play crucial roles in the pathogenesis and progression of myocardial ischemia-reperfusion injury (MI/RI). This study aims to provide valuable insights into miRNA, circRNA, lncRNA, and MI/RI from a bibliometric standpoint, with the goal of fostering further advancements in this area.
Methods: The relevant literature in the field of miRNA, circRNA, lncRNA, and MI/RI was retrieved from the Science Citation Index Expanded (SCI-E) database within Web of Science.
Nat Commun
January 2025
Department of Pharmacy Practice and Science, University of Arizona, Tucson, AZ, USA.
Accurately basecalling sequence backbones in the presence of nucleotide modifications remains a substantial challenge in nanopore sequencing bioinformatics. It has been extensively demonstrated that state-of-the-art basecallers are less compatible with modification-induced sequencing signals. A precise basecalling, on the other hand, serves as the prerequisite for virtually all the downstream analyses.
View Article and Find Full Text PDFGenes Chromosomes Cancer
January 2025
Sahlgrenska Center for Cancer Research, Department of Laboratory Medicine, University of Gothenburg, Gothenburg, Sweden.
Pleomorphic adenoma (PA) is the most common salivary gland tumor. PAs are characterized by chromosomal rearrangements of 8q12 and 12q14-15, leading to gene fusions involving the PLAG1 and HMGA2 oncogenes. Here, we performed the first comprehensive study of the transcriptomic and gene fusion landscape of 38 cytogenetically characterized PAs.
View Article and Find Full Text PDFACS Chem Biol
January 2025
Department of Chemistry, The University of Chicago, Chicago, Illinois 60637, United States.
Small nucleolar RNAs (snoRNAs) are noncoding RNAs primarily known for guiding chemical modifications of RNA, but their broader cellular roles and contributions to human diseases remain elusive. This In Focus article introduces the development of snoRNA-enriched kethoxal-assisted RNA-RNA sequencing (snoKARR-seq), a transcriptome-wide approach to uncover snoRNA targets with enhanced sensitivity and specificity. This method revealed an unexpected role for snoRNAs in protein translocation and secretion, expanding our understanding of their noncanonical functions.
View Article and Find Full Text PDFHum Mol Genet
January 2025
Division of Neurology, Cincinnati Children's Hospital, 3333 Burnet Ave, Cincinnati, OH 45229, United States.
Myotonic Dystrophy type 2 (DM2) is a multisystem disease affecting many tissues, including skeletal muscle, heart, and brain. DM2 is caused by unstable expansion of CCTG repeats in an intron 1 of a gene coding for cellular nuclear binding protein (CNBP). The expanded CCTG repeats cause DM2 pathology due to the accumulation of RNA CCUG repeats, which affect RNA processing in patients' cells.
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