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1.
J Mol Biol ; 436(3): 168411, 2024 02 01.
Article in English | MEDLINE | ID: mdl-38135181

ABSTRACT

The aryl hydrocarbon receptor (AHR) is a ligand-dependent transcription factor belonging to the bHLH/PAS protein family and responding to hundreds of natural and chemical substances. It is primarily involved in the defense against chemical insults and bacterial infections or in the adaptive immune response, but also in the development of pathological conditions ranging from inflammatory to neoplastic disorders. Despite its prominent roles in many (patho)physiological processes, the lack of high-resolution structural data has precluded for thirty years an in-depth understanding of the structural mechanisms underlying ligand-binding specificity, promiscuity and activation of AHR. We recently reported a cryogenic electron microscopy (cryo-EM) structure of human AHR bound to the natural ligand indirubin, the chaperone Hsp90 and the co-chaperone XAP2 that provided the first experimental visualization of its ligand-binding PAS-B domain. Here, we report a 2.75 Å resolution structure of the AHR complex bound to the environmental pollutant benzo[a]pyrene (B[a]P). The structure substantiates the existence of a bipartite PAS-B ligand-binding pocket with a geometrically constrained primary binding site controlling ligand binding specificity and affinity, and a secondary binding site contributing to the binding promiscuity of AHR. We also report a docking study of B[a]P congeners that validates the B[a]P-bound PAS-B structure as a suitable model for accurate computational ligand binding assessment. Finally, comparison of our agonist-bound complex with the recently reported structures of mouse and fruit fly AHR PAS-B in different activation states suggests a ligand-induced loop conformational change potentially involved in the regulation of AHR function.


Subject(s)
Benzo(a)pyrene , Environmental Pollutants , Receptors, Aryl Hydrocarbon , Humans , Benzo(a)pyrene/chemistry , Binding Sites , Ligands , Protein Domains , Receptors, Aryl Hydrocarbon/agonists , Receptors, Aryl Hydrocarbon/chemistry , Environmental Pollutants/chemistry
3.
Nat Commun ; 13(1): 7833, 2022 12 20.
Article in English | MEDLINE | ID: mdl-36539424

ABSTRACT

During lagging strand synthesis, DNA Ligase 1 (Lig1) cooperates with the sliding clamp PCNA to seal the nicks between Okazaki fragments generated by Pol δ and Flap endonuclease 1 (FEN1). We present several cryo-EM structures combined with functional assays, showing that human Lig1 recruits PCNA to nicked DNA using two PCNA-interacting motifs (PIPs) located at its disordered N-terminus (PIPN-term) and DNA binding domain (PIPDBD). Once Lig1 and PCNA assemble as two-stack rings encircling DNA, PIPN-term is released from PCNA and only PIPDBD is required for ligation to facilitate the substrate handoff from FEN1. Consistently, we observed that PCNA forms a defined complex with FEN1 and nicked DNA, and it recruits Lig1 to an unoccupied monomer creating a toolbelt that drives the transfer of DNA to Lig1. Collectively, our results provide a structural model on how PCNA regulates FEN1 and Lig1 during Okazaki fragments maturation.


Subject(s)
DNA Polymerase III , DNA Replication , Humans , Proliferating Cell Nuclear Antigen/metabolism , DNA Polymerase III/metabolism , Ligases/metabolism , DNA/metabolism , Flap Endonucleases/metabolism , DNA Ligase ATP/genetics , DNA Ligase ATP/metabolism
4.
Nat Commun ; 12(1): 6095, 2021 10 19.
Article in English | MEDLINE | ID: mdl-34667155

ABSTRACT

Y-family DNA polymerase κ (Pol κ) can replicate damaged DNA templates to rescue stalled replication forks. Access of Pol κ to DNA damage sites is facilitated by its interaction with the processivity clamp PCNA and is regulated by PCNA mono-ubiquitylation. Here, we present cryo-EM reconstructions of human Pol κ bound to DNA, an incoming nucleotide, and wild type or mono-ubiquitylated PCNA (Ub-PCNA). In both reconstructions, the internal PIP-box adjacent to the Pol κ Polymerase-Associated Domain (PAD) docks the catalytic core to one PCNA protomer in an angled orientation, bending the DNA exiting the Pol κ active site through PCNA, while Pol κ C-terminal domain containing two Ubiquitin Binding Zinc Fingers (UBZs) is invisible, in agreement with disorder predictions. The ubiquitin moieties are partly flexible and extend radially away from PCNA, with the ubiquitin at the Pol κ-bound protomer appearing more rigid. Activity assays suggest that, when the internal PIP-box interaction is lost, Pol κ is retained on DNA by a secondary interaction between the UBZs and the ubiquitins flexibly conjugated to PCNA. Our data provide a structural basis for the recruitment of a Y-family TLS polymerase to sites of DNA damage.


Subject(s)
DNA-Directed DNA Polymerase/chemistry , DNA-Directed DNA Polymerase/metabolism , DNA/chemistry , DNA/metabolism , Proliferating Cell Nuclear Antigen/chemistry , Proliferating Cell Nuclear Antigen/metabolism , Cryoelectron Microscopy , DNA/genetics , DNA Damage , DNA-Directed DNA Polymerase/genetics , Humans , Proliferating Cell Nuclear Antigen/genetics , Protein Binding , Ubiquitin/metabolism , Ubiquitination
5.
Nat Commun ; 11(1): 1109, 2020 02 28.
Article in English | MEDLINE | ID: mdl-32111820

ABSTRACT

In eukaryotes, DNA polymerase δ (Pol δ) bound to the proliferating cell nuclear antigen (PCNA) replicates the lagging strand and cooperates with flap endonuclease 1 (FEN1) to process the Okazaki fragments for their ligation. We present the high-resolution cryo-EM structure of the human processive Pol δ-DNA-PCNA complex in the absence and presence of FEN1. Pol δ is anchored to one of the three PCNA monomers through the C-terminal domain of the catalytic subunit. The catalytic core sits on top of PCNA in an open configuration while the regulatory subunits project laterally. This arrangement allows PCNA to thread and stabilize the DNA exiting the catalytic cleft and recruit FEN1 to one unoccupied monomer in a toolbelt fashion. Alternative holoenzyme conformations reveal important functional interactions that maintain PCNA orientation during synthesis. This work sheds light on the structural basis of Pol δ's activity in replicating the human genome.


Subject(s)
DNA Polymerase III/chemistry , DNA Polymerase III/metabolism , Amino Acid Motifs , Catalytic Domain , Cryoelectron Microscopy , DNA/metabolism , DNA Polymerase III/genetics , DNA Replication , Flap Endonucleases/chemistry , Flap Endonucleases/metabolism , Holoenzymes , Humans , Models, Molecular , Proliferating Cell Nuclear Antigen/chemistry , Proliferating Cell Nuclear Antigen/metabolism , Protein Binding , Protein Subunits , Structure-Activity Relationship
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