Single-molecule fluorescence resonance energy transfer studies of the human telomerase RNA pseudoknot: Temperature-/urea-dependent folding kinetics and thermodynamics

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Abstract

The ribonucleoprotein telomerase is an RNA-dependent DNA polymerase that catalyzes the repetitive addition of a short, species-specific, DNA sequence to the ends of linear eukaryotic chromosomes. The single RNA component of telomerase contains both the template sequence for DNA synthesis and a functionally critical pseudoknot motif, which can also exist as a less stable hairpin. Here we use a minimal version of the human telomerase RNA pseudoknot to study this hairpin-pseudoknot structural equilibrium using temperature- controlled single-molecule fluorescence resonance energy transfer (smFRET) experiments. The urea dependence of these experiments aids in determination of the folding kinetics and thermodynamics. The wild-type pseudoknot behavior is compared and contrasted to a mutant pseudoknot sequence implicated in a genetic disorder-dyskeratosis congenita. These findings clearly identify that this 2nt noncomplementary mutation destabilizes the folding of the wild-type pseudoknot by substantially reducing the folding rate constant (≈ 400-fold) while only nominally increasing the unfolding rate constant (≈ 5-fold). Furthermore, the urea dependence of the equilibrium and rate constants is used to develop a free energy landscape for this unimolecular equilibrium and propose details about the structure of the transition state. Finally, the urea-dependent folding experiments provide valuable physical insights into the mechanism for destabilization of RNA pseudoknots by such chemical denaturants. © 2014 American Chemical Society.

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Holmstrom, E. D., & Nesbitt, D. J. (2014). Single-molecule fluorescence resonance energy transfer studies of the human telomerase RNA pseudoknot: Temperature-/urea-dependent folding kinetics and thermodynamics. Journal of Physical Chemistry B, 118(14), 3853–3863. https://doi.org/10.1021/jp501893c

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