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Frederick, K.

Publications and source records attributed to Frederick, K..

2 recordsLinked to original sources

Mechanochemical Decoupling of ATP Hydrolysis and RNA Translocation in SARS-CoV-2 nsp13 by the L405D Mutation

SARS-CoV-2 nonstructural protein 13 (nsp13) is a highly conserved helicase that couples ATP hydrolysis to RNA translocation through long-range allosteric communication between its ATPase and RNA-binding domains. In prior work, we identified L405 as a key regulator of interdomain motions and proposed that the L405D mutation would disrupt this coupling by perturbing conformational translocations required for translocation [J. Phys. Chem. B 2024 v128 492-503]. Subsequent experiments confirmed that L405D attenuates helicase activity while largely preserving ATPase activity, implicating a breakdown in ATP-to-RNA coupling [J. Biol. Chem. 2026 v302 111198]. Here, we provide a data-driven explanation for this decoupling by combining Gaussian accelerated molecular dynamics (GaMD) simulations with Shape-GMM clustering and linear discriminant analysis. Whereas wild-type nsp13 exhibits both conformational selection and induction, L405D collapses the conformational landscape to operate predominantly through selection, eliminating ATP-induced structural transitions required for efficient catalytic cycling. This loss of induction traps the ATP-binding pocket in a mid-open conformation, impairing product release and reducing ATP turnover, while simultaneously disrupting coordinated motif-RNA interactions required for inchworm translocation. These findings establish that mutation-induced reshaping of conformational ensembles can modulate access to reaction-competent states, providing a general framework for understanding how targeted mutations disrupt catalytic function through allosteric ensemble remodeling in motor proteins.

biophysics↗

A frameshift mutation in the murine Prkra gene causes dystonia and exhibits abnormal cerebellar development and reduced eIF2α phosphorylation.

Mutations in Prkra gene, which encodes PACT/RAX cause early onset primary dystonia DYT-PRKRA, a movement disorder that disrupts coordinated muscle movements. PACT/RAX activates protein kinase R (PKR, aka EIF2AK2) by a direct interaction in response to cellular stressors to mediate phosphorylation of the subunit of the eukaryotic translation initiation factor 2 (eIF2). Mice homozygous for a naturally arisen, recessively inherited frameshift mutation, Prkralear-5J exhibit progressive dystonia. In the present study, we investigate the biochemical and developmental consequences of the Prkralear-5J mutation. Our results indicate that the truncated PACT/RAX protein retains its ability to interact with PKR, however, it inhibits PKR activation. Furthermore, mice homozygous for the mutation have abnormalities in the cerebellar development as well as a severe lack of dendritic arborization of Purkinje neurons. Additionally, reduced eIF2 phosphorylation is noted in the cerebellums and Purkinje neurons of the homozygous Prkralear-5J mice. These results indicate that PACT/RAX mediated regulation of PKR activity and eIF2 phosphorylation plays a role in cerebellar development and contributes to the dystonia phenotype resulting from this mutation. Summary StatementThis study shows, for the first time, a role of reduced eIF2 phosphorylation in DYT-PRKRA and the cerebellum development in a mouse model.

molecular biology↗