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Ammerlaan, D.

Publications and source records attributed to Ammerlaan, D..

2 recordsLinked to original sources

Recruitment of Fpt1 to tRNA genes requires TFIIIB and the N-terminal TPR array of TFIIIC subunit {tau}131

Transfer-RNA genes (tDNAs) in budding yeast recruit varying amounts of Fpt1, a regulator of RNA polymerase III (RNAPIII) occupancy. Fpt1 occupancy resembles that of the general transcription factor TFIIIC but how Fpt1 is recruited to tDNAs remains unclear. Here we show that both TFIIIB and TFIIIC are required for Fpt1 binding under active as well as repressive RNAPIII conditions. Depletion of TFIIIB reduced Fpt1 occupancy without affecting TFIIIC. In contrast, TFIIIC depletion led to reduced Fpt1 and a gene-specific reduction in TFIIIB occupancy. Moreover, upon depletion of TFIIIC, Fpt1 and TFIIIB were lost to different extents. We identified the C-terminal intrinsically disordered region of Fpt1 as critical for increased Fpt1 binding under repressive conditions. Within this region, a short -helix was predicted to interact with the N-terminal tetratricopeptide repeat array of the TFIIIC subunit {tau}131, a region also known to interact with TFIIIB. Deletion of this -helix abrogated stress-induced Fpt1 recruitment to tDNAs, as did mutations in the predicted interaction surface of {tau}131, while having a milder effect on TFIIIB occupancy. Together, these findings uncovered a dual and dynamic mechanism of Fpt1 recruitment to tDNAs with independent contributions of TFIIIB and TFIIIC.

molecular biology↗

Distant sequence regions of JBP1 contribute to J-DNA binding

Base-J ({beta}-D-Glucopyranosyloxymethyluracil) is a modified DNA nucleotide that replaces 1% of thymine in kinetoplastid flagellates. The biosynthesis and maintenance of base-J depends on the base-J Binding Protein 1 (JBP1), that has a thymidine hydroxylase domain (THD) and a J-DNA binding domain (JDBD). How the THD synergizes with the JDBD to hydroxylate thymine in specific genomic sites, maintaining base-J during semi-conservative DNA replication, remains unclear. Here we present a crystal structure of the JDBD including a previously disordered DNA-contacting loop and use it as starting point for Molecular Dynamics (MD) simulations and computational docking studies to propose recognition models for JDBD binding to J-DNA. These models guided mutagenesis experiments, providing additional data for docking, which reveals a binding mode for JDBD onto J-DNA. This model, together with the crystallographic structure of the TET2 JBP1-homologue in complex with DNA and the AlphaFold model of full-length JBP1, allowed us to hypothesize that the flexible JBP1 N-terminus contributes to DNA-binding, which we confirmed experimentally. A high-resolution JBP1:J-DNA complex, which must involve conformational changes, would however need to be determined experimentally to further understand this unique underlying molecular mechanism that ensures replication of epigenetic information.

biochemistry↗