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1.
Viruses ; 15(3)2023 02 28.
Artigo em Inglês | MEDLINE | ID: mdl-36992351

RESUMO

Hepatitis B virus (HBV) relies on the core protein (HBc) to establish productive infection, as defined by the formation of the covalently closed circularized DNA (cccDNA), as well as to carry out almost every step of the lifecycle following cccDNA formation. Multiple copies of HBc form an icosahedral capsid shell that encapsidates the viral pregenomic RNA (pgRNA) and facilitates the reverse transcription of pgRNA to a relaxed circular DNA (rcDNA) within the capsid. During infection, the complete HBV virion, which contains an outer envelope layer in addition to the internal nucleocapsid containing rcDNA, enters human hepatocytes via endocytosis and traffics through the endosomal compartments and the cytosol to deliver its rcDNA to the nucleus to produce cccDNA. In addition, progeny rcDNA, newly formed in cytoplasmic nucleocapsids, is also delivered to the nucleus in the same cell to form more cccDNA in a process called intracellular cccDNA amplification or recycling. Here, we focus on recent evidence demonstrating differential effects of HBc in affecting cccDNA formation during de novo infection vs. recycling, obtained using HBc mutations and small molecule inhibitors. These results implicate a critical role of HBc in determining HBV trafficking during infection, as well as in nucleocapsid disassembly (uncoating) to release rcDNA, events essential for cccDNA formation. HBc likely functions in these processes via interactions with host factors, which contributes critically to HBV host tropism. A better understanding of the roles of HBc in HBV entry, cccDNA formation, and host species tropism should accelerate ongoing efforts to target HBc and cccDNA for the development of an HBV cure and facilitate the establishment of convenient animal models for both basic research and drug development.


Assuntos
Vírus da Hepatite B , Hepatite B , Animais , Humanos , Vírus da Hepatite B/genética , Vírus da Hepatite B/metabolismo , Capsídeo/metabolismo , DNA Circular/genética , DNA Circular/metabolismo , DNA Viral/genética , DNA Viral/metabolismo , Replicação Viral/genética , Células Hep G2 , Proteínas do Capsídeo/genética , RNA Viral/metabolismo
2.
Nat Microbiol ; 5(12): 1464-1471, 2020 12.
Artigo em Inglês | MEDLINE | ID: mdl-32895527

RESUMO

Anthrax lethal toxin (LT), produced by Bacillus anthracis, comprises a receptor-binding moiety, protective antigen and the lethal factor (LF) protease1,2. Although LF is known to cleave mitogen-activated protein kinase kinases (MEKs/MKKs) and some variants of the NLRP1 inflammasome sensor, targeting of these pathways does not explain the lethality of anthrax toxin1,2. Here we report that the regulatory subunits of phosphoinositide-3 kinase (PI3K)-p85α (PIK3R1) and p85ß (PIK3R2)3,4-are substrates of LF. Cleavage of these proteins in a proline-rich region between their N-terminal Src homology and Bcr homology domains disrupts homodimer formation and impacts PI3K signalling. Mice carrying a mutated p85α that cannot be cleaved by LF show a greater resistance to anthrax toxin challenge. The LF(W271A) mutant cleaves p85α with lower efficiency and is non-toxic to mice but can regain lethality when combined with PI3K pathway inhibitors. We provide evidence that LF targets two signalling pathways that are essential for growth and metabolism and that the disabling of both pathways is likely necessary for lethal anthrax infection.


Assuntos
Antraz/enzimologia , Antígenos de Bactérias/metabolismo , Antígenos de Bactérias/toxicidade , Bacillus anthracis/enzimologia , Bacillus anthracis/metabolismo , Toxinas Bacterianas/metabolismo , Toxinas Bacterianas/toxicidade , Classe Ia de Fosfatidilinositol 3-Quinase/metabolismo , Peptídeo Hidrolases/metabolismo , Fosfatidilinositol 3-Quinases/metabolismo , Motivos de Aminoácidos , Animais , Antraz/genética , Antraz/microbiologia , Classe Ia de Fosfatidilinositol 3-Quinase/química , Classe Ia de Fosfatidilinositol 3-Quinase/genética , Humanos , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Peptídeo Hidrolases/genética , Fosfatidilinositol 3-Quinases/química , Fosfatidilinositol 3-Quinases/genética
3.
J Leukoc Biol ; 108(3): 773-786, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32421904

RESUMO

Anthrax lethal toxin (LT) is a protease that activates the NLRP1b inflammasome sensor in certain rodent strains. Unlike better-studied sensors, relatively little is known about the priming requirements for NLRP1b. In this study, we investigate the rapid and striking priming-independent LT-induced release of IL-1ß in mice within hours of toxin challenge. We find IL-1ß release to be a NLRP1b- and caspase-1-dependent, NLRP3 and caspase-11-independent event that requires both neutrophils and peptidyl arginine deiminiase-4 (PAD4) activity. The simultaneous LT-induced IL-18 response is neutrophil-independent. Bone marrow reconstitution experiments in mice show toxin-induced IL-1ß originates from hematopoietic cells. LT treatment of neutrophils in vitro did not induce IL-1ß, neutrophil extracellular traps (NETs), or pyroptosis. Although platelets interact closely with neutrophils and are also a potential source of IL-1ß, they were unable to bind or endocytose LT and did not secrete IL-1ß in response to the toxin. LT-treated mice had higher levels of cell-free DNA and HMGB1 in circulation than PBS-treated controls, and treatment of mice with recombinant DNase reduced the neutrophil- and NLRP1-dependent IL-1ß release. DNA sensor AIM2 deficiency, however, did not impact IL-1ß release. These data, in combination with the findings on PAD4, suggest a possible role for in vivo NETs or cell-free DNA in cytokine induction in response to LT challenge. Our findings suggest a complex interaction of events and/or mediators in LT-treated mice with the neutrophil as a central player in induction of a profound and rapid inflammatory response to toxin.


Assuntos
Proteínas Adaptadoras de Transdução de Sinal/fisiologia , Antígenos de Bactérias/toxicidade , Proteínas Reguladoras de Apoptose/fisiologia , Bacillus anthracis/patogenicidade , Toxinas Bacterianas/toxicidade , Armadilhas Extracelulares/fisiologia , Interleucina-1beta/metabolismo , Neutrófilos/metabolismo , Proteína-Arginina Desiminase do Tipo 4/fisiologia , Proteínas Adaptadoras de Transdução de Sinal/deficiência , Animais , Antraz/imunologia , Antígenos de Bactérias/farmacologia , Proteínas Reguladoras de Apoptose/deficiência , Bacillus anthracis/fisiologia , Toxinas Bacterianas/farmacologia , Inflamassomos/fisiologia , Camundongos , Camundongos da Linhagem 129 , Camundongos Congênicos , Camundongos Endogâmicos BALB C , Camundongos Endogâmicos C57BL , Camundongos Knockout , Camundongos SCID , Monócitos/efeitos dos fármacos , Monócitos/fisiologia , Proteína 3 que Contém Domínio de Pirina da Família NLR/deficiência , Neutrófilos/efeitos dos fármacos , Proteína-Arginina Desiminase do Tipo 4/deficiência , Piroptose/efeitos dos fármacos , Quimera por Radiação , Especificidade da Espécie , Esporos Bacterianos
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