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1.
NAR Cancer ; 3(1): zcaa043, 2021 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-34316696

RESUMO

Genome instability is a characteristic enabling factor for carcinogenesis. HelQ helicase is a component of human DNA maintenance systems that prevent or reverse genome instability arising during DNA replication. Here, we provide details of the molecular mechanisms that underpin HelQ function-its recruitment onto ssDNA through interaction with replication protein A (RPA), and subsequent translocation of HelQ along ssDNA. We describe for the first time a functional role for the non-catalytic N-terminal region of HelQ, by identifying and characterizing its PWI-like domain. We present evidence that this domain of HelQ mediates interaction with RPA that orchestrates loading of the helicase domains onto ssDNA. Once HelQ is loaded onto the ssDNA, ATP-Mg2+ binding in the catalytic site activates the helicase core and triggers translocation along ssDNA as a dimer. Furthermore, we identify HelQ-ssDNA interactions that are critical for the translocation mechanism. Our data are novel and detailed insights into the mechanisms of HelQ function relevant for understanding how human cells avoid genome instability provoking cancers, and also how cells can gain resistance to treatments that rely on DNA crosslinking agents.

2.
Nat Commun ; 8(1): 1436, 2017 11 10.
Artigo em Inglês | MEDLINE | ID: mdl-29127347

RESUMO

Archaeal viruses have evolved to infect hosts often thriving in extreme conditions such as high temperatures. However, there is a paucity of information on archaeal virion structures, genome packaging, and determinants of temperature resistance. The rod-shaped virus APBV1 (Aeropyrum pernix bacilliform virus 1) is among the most thermostable viruses known; it infects a hyperthermophile Aeropyrum pernix, which grows optimally at 90 °C. Here we report the structure of APBV1, determined by cryo-electron microscopy at near-atomic resolution. Tight packing of the major virion glycoprotein (VP1) is ensured by extended hydrophobic interfaces, and likely contributes to the extreme thermostability of the helical capsid. The double-stranded DNA is tightly packed in the capsid as a left-handed superhelix and held in place by the interactions with positively charged residues of VP1. The assembly is closed by specific capping structures at either end, which we propose to play a role in DNA packing and delivery.


Assuntos
Aeropyrum/virologia , Vírus de Archaea/genética , Vírus de Archaea/fisiologia , Genoma Viral , Vírus de Archaea/ultraestrutura , Microscopia Crioeletrônica , DNA Super-Helicoidal/química , DNA Super-Helicoidal/genética , DNA Viral/química , DNA Viral/genética , Glicosilação , Interações Hidrofóbicas e Hidrofílicas , Imageamento Tridimensional , Modelos Moleculares , Subunidades Proteicas , Proteínas Estruturais Virais/química , Proteínas Estruturais Virais/genética , Montagem de Vírus/genética
3.
J Biol Chem ; 287(40): 33607-14, 2012 Sep 28.
Artigo em Inglês | MEDLINE | ID: mdl-22869371

RESUMO

Clostridium botulinum neurotoxin type A (BoNT/A) is one of the most potent toxins for humans and a major biothreat agent. Despite intense chemical efforts over the past 10 years to develop inhibitors of its catalytic domain (catBoNT/A), highly potent and selective inhibitors are still lacking. Recently, small inhibitors were reported to covalently modify catBoNT/A by targeting Cys(165), a residue located in the enzyme active site just above the catalytic zinc ion. However, no direct proof of Cys(165) modification was reported, and the poor accessibility of this residue in the x-ray structure of catBoNT/A raises concerns about this proposal. To clarify this issue, the functional role of Cys(165) was first assessed through a combination of site-directed mutagenesis and structural studies. These data suggested that Cys(165) is more involved in enzyme catalysis rather than in structural property. Then by peptide mass fingerprinting and x-ray crystallography, we demonstrated that a small compound containing a sulfonyl group acts as inhibitor of catBoNT/A through covalent modification of Cys(165). The crystal structure of this covalent complex offers a structural framework for developing more potent covalent inhibitors catBoNT/A. Other zinc metalloproteases can be founded in the protein database with a cysteine at a similar location, some expressed by major human pathogens; thus this work should find broader applications for developing covalent inhibitors.


Assuntos
Toxinas Botulínicas Tipo A/antagonistas & inibidores , Clostridium botulinum/metabolismo , Cisteína/química , Domínio Catalítico , Química Farmacêutica/métodos , Cristalografia por Raios X/métodos , Desenho de Fármacos , Inibidores Enzimáticos/farmacologia , Humanos , Cinética , Mutagênese Sítio-Dirigida , Peptídeo Hidrolases/química , Peptídeos/química , Estrutura Terciária de Proteína , Proteínas Recombinantes/química , Proteína 25 Associada a Sinaptossoma/química , Zinco/química
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