Publications by authors named "Hailey Goldberg"

Ubiquitin-dependent proteolysis regulates diverse cellular functions with high substrate specificity, which hinges on the ability of ubiquitin E3 ligases to decode the targets' degradation signals, i.e., degrons.

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The transcription factor BACH1 regulates heme homeostasis and oxidative stress responses and promotes cancer metastasis upon aberrant accumulation. Its stability is controlled by two F-box protein ubiquitin ligases, FBXO22 and FBXL17. Here we show that the homodimeric BTB domain of BACH1 functions as a previously undescribed quaternary structure degron, which is deciphered by the two F-box proteins via distinct mechanisms.

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Although mismatch repair (MMR) is essential for correcting DNA replication errors, it can also recognize other lesions, such as oxidized bases. In G0 and G1, MMR is kept in check through unknown mechanisms as it is error-prone during these cell cycle phases. We show that in mammalian cells, D-type cyclins are recruited to sites of oxidative DNA damage in a PCNA- and p21-dependent manner.

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Article Synopsis
  • * D-type cyclins are recruited to oxidative damage sites, protecting p21 from degradation, which in turn blocks MMR by competing with MMR components for binding to PCNA.
  • * The degradation of D-type cyclins at the G1/S transition is crucial for allowing MMR proteins to interact with PCNA, ensuring proper repair of DNA replication errors; however, persistent cyclin D1 during S-phase can increase mutation rates.
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The risk of zoonotic coronavirus spillover into the human population, as highlighted by the SARS-CoV-2 pandemic, demands the development of pan-coronavirus antivirals. The efficacy of existing antiviral ribonucleoside/ribonucleotide analogs, such as remdesivir, is decreased by the viral proofreading exonuclease NSP14-NSP10 complex. Here, using a novel assay and in silico modeling and screening, we identified NSP14-NSP10 inhibitors that increase remdesivir's potency.

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Neutrophils play a critical role as a first line of defense against invading pathogens. Recently, a new defense strategy of neutrophils was described, in which pathogens are trapped and killed by NETs. However, the exact underlying mechanisms leading to the formation of NETs remain elusive.

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