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Hercik, K.

Publications and source records attributed to Hercik, K..

2 recordsLinked to original sources

Catalytic and Structural Insights into Neil3-Dependent Unhooking of Endogenous Abasic DNA Crosslink

Abasic (Ap) sites arise frequently in genomic DNA and can form interstrand crosslinks (Ap-ICLs) that block DNA replication and threaten genome stability. The DNA glycosylase NEIL3 is required for replication-coupled repair of Ap-ICLs, yet its catalytic mechanism has remained unclear, as biochemical studies report lyase-dependent strand cleavage whereas cellular systems indicate incision-free unhooking. Here, we show that the catalytic outcome of NEIL3 is determined by the N-terminal processing of its NEI domain. Using biochemically and structurally defined NEI variants, we demonstrate that a native-like processed form (V2M), in which valine 2 is replaced by an initiating methionine, efficiently unhooks Ap-ICLs by releasing the crosslinked strand without generating toxic DNA strand breaks, and without {beta}- or {delta}-elimination. In contrast, an unprocessed form (M1) exhibits elevated Ap-lyase activity and generates strand breaks. Time-resolved Schiff-base trapping in the presence of a reducing agent reveals distinct high-molecular-weight intermediates during Ap-ICL unhooking. A crystal structure of NEIL3 bound to native-like substrate in form of a single-stranded DNA identifies features underlying its preference for fork-like substrates. Together, these findings reconcile previously conflicting models of NEIL3 function and define a mechanistic framework for replication-coupled repair of endogenous crosslinks, Ap-ICL, preserving fork integrity.

biochemistry↗

Structure of the Hibernating Francisella tularensis Ribosome and Mechanistic Insights into Its Inhibition by Antibiotics

Francisella tularensis is the causative agent of tularemia, a zoonotic disease named after the city of Tulare, California. Symptoms include sudden fever, chills, fatigue, and swollen lymph nodes, among others, and without treatment it is very serious or even fatal. In addition, F. tularensis is considered a potential bioterrorism threat due to its high infectivity and lethality. Ribosomes are key targets for many classes of antibiotics. In this study, we examined the F. tularensis ribosome and determined its structure at 2.8[A] resolution using cryo-electron microscopy. Notably, we observed the stress-induced ribosome-associated inhibitor A (RaiA) protein bound to the ribosome. RaiA functions as a molecular hibernation factor, inhibiting bacterial translation in response to stress or nutrient deprivation. This mechanism parallels that described in the model organism Escherichia coli and in several pathogenic bacteria, such as Staphylococcus aureus. Furthermore, we solved structures of the antibiotics chloramphenicol and gentamicin bound to the F. tularensis ribosome. Collectively, these results provide structural insights that highlight previously unexplored opportunities for therapeutic intervention.

microbiology↗