Cryo-EM structures of PNKP engaged with non-ligatable SSBs at three unique positions within the nucleosome reveal that PNKP locally deforms nucleosomal DNA to reposition the SSBs into the kinase and phosphatase active sites, providing a structural basis for the efficient processing of SSBs throughout the nucleosome.
Abstract
Genomic DNA is packaged into chromatin through a fundamental repeating unit known as the nucleosome core particle. Chromatinized DNA is under constant assault from endogenous and exogenous sources of damage, which must be effectively repaired to preserve genome stability. Single-strand breaks (SSBs) with chemically heterogeneous DNA ends are one of the most prevalent forms of genomic DNA damage. These SSBs must be enzymatically processed prior to downstream gap-filling DNA synthesis and/or nick ligation during single-strand break repair (SSBR). Polynucleotide kinase phosphatase (PNKP) is a multifunctional end-processing enzyme that possesses two catalytic activities important for converting non-ligatable SSBs into ligatable SSBs. To date, a mechanistic description for how PNKP processes non-ligatable SSBs in the context of chromatin to initiate SSBR remains undefined. Here, we utilize a combination of biochemical assays and cryogenic electron microscopy (cryo-EM) to define the structural basis of end processing in the nucleosome by PNKP. Cryo-EM structures of PNKP engaged with non-ligatable SSBs at three unique positions within the nucleosome reveal that PNKP locally deforms nucleosomal DNA to reposition the SSBs into the kinase and phosphatase active sites, providing a structural basis for the efficient processing of SSBs throughout the nucleosome. Additional cryo-EM structures reveal the PNKP FHA domain also engages the nucleosome acidic patch during non-ligatable SSB recognition, which accelerates the processing of non-ligatable SSBs in the nucleosome. Together, these findings provide important mechanistic insight into the initial end processing step of chromatin-based SSBR.
DNA double-strand breaks, one of the most cytotoxic forms of DNA damage, are primarily repaired by non-homologous end joining (NHEJ) in human cells. NHEJ is initiated by the Ku70/80 heterodimer (Ku) and DNA-dependent protein kinase catalytic subunit (DNA-PKcs), followed by factors that bridge and ligate DNA ends. Ku...
Wei-Fen Lu, Alex Vogt, S. Lees-Miller et al.· Nature Communications· 0 citations
Mitochondrial DNA (mtDNA) maintenance is essential for cellular homeostasis, and defects in mtDNA replication are linked to a broad spectrum of mitochondrial diseases. During replication, DNA polymerase γ (Polγ) must traverse duplex junctions and stable secondary structures, yet how the human enzyme overcomes these bar...
S. Miguez-Amil, A. Grande-García, Plaza G. A. Ismael et al.· bioRxiv· 0 citations
Abstract DNA double-strand breaks (DSBs) are highly cytotoxic DNA lesions because they disrupt the connectivity of the DNA strand. Homologous recombination (HR) is a high-fidelity DSB repair pathway that copies the sequence spanning the break from a homologous template, but how DNA ends are held together during HR rema...
Joshua R. Heyza, Mariia Mikhova, Cody Phillips et al.· Nucleic Acids Research· 0 citations
Current advances in understanding the molecular mechanisms by which human and yeast CAF-1 complexes are recruited to sites of DNA synthesis and how CAF-1 function is coordinated with other histone chaperones during replication and repair are summarized.
Ian P. Hall, Carly A. Nowoj, Lynne M. Dieckman· Biomolecules· 0 citations
DNA polymerase gamma (Polγ) forms stable complexes with RNA–DNA primer–template substrates, exhibiting greater stability and lower misincorporation than on DNA-primed substrates and has implications for understanding the molecular basis of mitochondrial disease.
Viktoriia Sokolova, Gina Buchel, S. Strock et al.· Nucleic Acids Research· 0 citations
The successful construction of ΔNAP9 demonstrates that bacterial cells can carry out basic cellular functions in the absence of co-evolved chromatin proteins, highlighting the potential for radical (re-)engineering of prokaryotic chromatin and systems of gene expression.
Paul Villain, A. Hocher, Jacques Serizay et al.· bioRxiv· 1 citation
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.