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Systematically Studying the Effect of Small Molecules Interacting with RNA in Cellular and Preclinical Models

Overview
Journal ACS Chem Biol
Specialties Biochemistry
Biology
Date 2021 Jun 24
PMID 34166593
Citations 5
Authors
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Abstract

The interrogation and manipulation of biological systems by small molecules is a powerful approach in chemical biology. Ideal compounds selectively engage a target and mediate a downstream phenotypic response. Although historically small molecule drug discovery has focused on proteins and enzymes, targeting RNA is an attractive therapeutic alternative, as many disease-causing or -associated RNAs have been identified through genome-wide association studies. As the field of RNA chemical biology emerges, the systematic evaluation of target validation and modulation of target-associated pathways is of paramount importance. In this Review, through an examination of case studies, we outline the experimental characterization, including methods and tools, to evaluate comprehensively the impact of small molecules that target RNA on cellular phenotype.

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References
1.
Garcia-Lopez A, Llamusi B, Orzaez M, Perez-Paya E, Artero R . In vivo discovery of a peptide that prevents CUG-RNA hairpin formation and reverses RNA toxicity in myotonic dystrophy models. Proc Natl Acad Sci U S A. 2011; 108(29):11866-71. PMC: 3141925. DOI: 10.1073/pnas.1018213108. View

2.
Minuesa G, Albanese S, Xie W, Kazansky Y, Worroll D, Chow A . Small-molecule targeting of MUSASHI RNA-binding activity in acute myeloid leukemia. Nat Commun. 2019; 10(1):2691. PMC: 6584500. DOI: 10.1038/s41467-019-10523-3. View

3.
Grover A, Houlden H, Baker M, Adamson J, Lewis J, Prihar G . 5' splice site mutations in tau associated with the inherited dementia FTDP-17 affect a stem-loop structure that regulates alternative splicing of exon 10. J Biol Chem. 1999; 274(21):15134-43. DOI: 10.1074/jbc.274.21.15134. View

4.
Benhamou R, Angelbello A, Wang E, Disney M . A Toxic RNA Catalyzes the Cellular Synthesis of Its Own Inhibitor, Shunting It to Endogenous Decay Pathways. Cell Chem Biol. 2020; 27(2):223-231.e4. PMC: 7081931. DOI: 10.1016/j.chembiol.2020.01.003. View

5.
Kim K, Chadalapaka G, Lee S, Yamada D, Sastre-Garau X, Defossez P . Identification of oncogenic microRNA-17-92/ZBTB4/specificity protein axis in breast cancer. Oncogene. 2011; 31(8):1034-44. PMC: 3288192. DOI: 10.1038/onc.2011.296. View