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Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States.

Publication ,  Journal Article
Ganser, LR; Kelly, ML; Patwardhan, NN; Hargrove, AE; Al-Hashimi, HM
Published in: J Mol Biol
February 14, 2020

Many promising RNA drug targets have functions that require the formation of RNA-protein complexes, but inhibiting RNA-protein interactions can prove difficult using small molecules. Regulatory RNAs have been shown to transiently form excited conformational states (ESs) that remodel local aspects of secondary structure. In some cases, the ES conformation has been shown to be inactive and to be poorly recognized by protein binding partners. In these cases, specifically targeting and stabilizing the RNA ES using a small molecule provides a rational structure-based strategy for inhibiting RNA activity. However, this requires that a small molecule discriminates between two conformations of the same RNA to preferentially bind and stabilize the short-lived low-abundance ES relative to the long-lived more abundant ground state (GS). Here, we tested the feasibility of this approach by designing a mutant that inverts the conformational equilibrium of the HIV-1 transactivation response element (TAR) RNA, such that the native GS conformation becomes a low-abundance ES. Using this mutant and NMR chemical shift mapping experiments, we show that argininamide, a ligand mimic of TAR's cognate protein binding partner Tat, is able to restore a native-like conformation by preferentially binding and stabilizing the transient and low-populated ES. A synthetic small molecule optimized to bind the TAR GS also partially stabilized the ES, whereas an aminoglycoside molecule that binds RNAs nonspecifically did not preferentially stabilize the ES to a similar extent. These results support the feasibility of inhibiting RNA activity using small molecules that preferentially bind and stabilize the ES.

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Published In

J Mol Biol

DOI

EISSN

1089-8638

Publication Date

February 14, 2020

Volume

432

Issue

4

Start / End Page

1297 / 1304

Location

Netherlands

Related Subject Headings

  • Viral Proteins
  • RNA, Viral
  • Protein Conformation
  • Protein Binding
  • Nucleic Acid Conformation
  • Magnetic Resonance Spectroscopy
  • HIV-1
  • HIV Long Terminal Repeat
  • Biochemistry & Molecular Biology
  • 3107 Microbiology
 

Citation

APA
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ICMJE
MLA
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Ganser, L. R., Kelly, M. L., Patwardhan, N. N., Hargrove, A. E., & Al-Hashimi, H. M. (2020). Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States. J Mol Biol, 432(4), 1297–1304. https://doi.org/10.1016/j.jmb.2019.12.009
Ganser, Laura R., Megan L. Kelly, Neeraj N. Patwardhan, Amanda E. Hargrove, and Hashim M. Al-Hashimi. “Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States.J Mol Biol 432, no. 4 (February 14, 2020): 1297–1304. https://doi.org/10.1016/j.jmb.2019.12.009.
Ganser LR, Kelly ML, Patwardhan NN, Hargrove AE, Al-Hashimi HM. Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States. J Mol Biol. 2020 Feb 14;432(4):1297–304.
Ganser, Laura R., et al. “Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States.J Mol Biol, vol. 432, no. 4, Feb. 2020, pp. 1297–304. Pubmed, doi:10.1016/j.jmb.2019.12.009.
Ganser LR, Kelly ML, Patwardhan NN, Hargrove AE, Al-Hashimi HM. Demonstration that Small Molecules can Bind and Stabilize Low-abundance Short-lived RNA Excited Conformational States. J Mol Biol. 2020 Feb 14;432(4):1297–1304.
Journal cover image

Published In

J Mol Biol

DOI

EISSN

1089-8638

Publication Date

February 14, 2020

Volume

432

Issue

4

Start / End Page

1297 / 1304

Location

Netherlands

Related Subject Headings

  • Viral Proteins
  • RNA, Viral
  • Protein Conformation
  • Protein Binding
  • Nucleic Acid Conformation
  • Magnetic Resonance Spectroscopy
  • HIV-1
  • HIV Long Terminal Repeat
  • Biochemistry & Molecular Biology
  • 3107 Microbiology