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Nicholson, H. E.

Publications and source records attributed to Nicholson, H. E..

2 recordsLinked to original sources

Tumor suppressor collateral damage screens reveal mRNA homeostasis protein HBS1L as a novel vulnerability in ch9p21 driven FOCAD deleted cancer

Chromosomal deletion of tumor suppressor genes often occurs in an imprecise manner, leading to co-deletion of neighboring genes. This collateral damage can create novel dependencies specific to the co-deleted context. One notable example is the dependency on PRMT5 activity in tumors with MTAP deletion, which co-occurs with CDKN2A/B loss, leading to the development of MTA-cooperative PRMT5 inhibitors. To identify additional collateral damage context/target pairs for chromosome 9p and other common loci of chromosomal deletions, we conducted a combinatorial CRISPR screen knocking out frequently co-deleted genes in combination with a focused target library. We identified the gene encoding the ribosome rescue factor PELO as synthetic lethal with loss of gene encoding the SKI complex interacting protein FOCAD, which is frequently co-deleted alongside MTAP and CDKN2A/B on chromosome 9p. A genome-wide screen in FOCAD isogenic cells further identified the ribosome rescue GTPase and PELO binding partner HBS1L as the top synthetic lethal target for FOCAD loss. Analysis of publicly available data and genetic manipulation of HBS1L using orthogonal modalities validated this interaction. HBS1L dependency in FOCAD-deleted cells was rescued by FOCAD re-expression, and FOCAD intact cells could be rendered HBS1L-dependent by FOCAD knockout, demonstrating the context specificity of this interaction. Mechanistically, HBS1L loss led to translational arrest and activated the unfolded protein response in FOCAD-deleted cells. In vivo, HBS1L deletion eliminated growth of FOCAD-deleted tumors. Here we propose a model where the FOCAD/SKI complex and HBS1L/PELO work together to resolve aberrant mRNA-induced ribosomal stalling, making the HBS1L/PELO complex an intriguing novel target for treating FOCAD-deleted tumors.

cancer biology↗

Horizontal Transfer of Histone H3 by Mammalian Cells

The authors have withdrawn their manuscript because many of the experiments described in this paper have not been reproducible, or at least are not robust, in the hands of other members of the Kaelin Laboratory who were not initially involved in this work. While we do see apparent secretion of histone H3 under some conditions, it is usually accompanied by secretion of histone H4. In this regard, the Halo tagged-histone H3 and Halo-tagged H4 constructs used for the single molecule imaging studies we reported, which seemingly confirmed specific secretion and transfer of histone H3, were purported to be sequence validated. Upon resequencing these constructs we discovered a non-synonymous mutation in the Halo tag of the H4 construct. We then redid the imaging experiments with the corrected Halo-H4 together with Halo-H3 and, in contrast to our earlier study, unfused Halo. These experiments were difficult to interpret because of the background signal seen with the unfused Halo but did not support specific secretion and transfer of histones (let alone specific secretion and transfer of histone H3). We have, in some experiments, observed transfer of H3-Cre into reporter cells ex vivo and in vivo, but 1) the transfer is not specific for H3-Cre versus H4-Cre, 2) the transfer efficiency is highly variable, and 3) the transfer efficiency is typically much less than reported in our original paper. We do not yet know whether this lack of reproducibility and robustness reflects technical and biological variables that we do not yet understand and hence were not captured in our experimental protocols. Therefore, the authors do not wish this work to be cited as reference for the project. If you have any questions, please contact the corresponding author.

cell biology↗