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1.
Cardiovasc Res ; 120(6): 644-657, 2024 May 07.
Artigo em Inglês | MEDLINE | ID: mdl-38309955

RESUMO

AIMS: Virus infection triggers inflammation and, may impose nutrient shortage to the heart. Supported by type I interferon (IFN) signalling, cardiomyocytes counteract infection by various effector processes, with the IFN-stimulated gene of 15 kDa (ISG15) system being intensively regulated and protein modification with ISG15 protecting mice Coxsackievirus B3 (CVB3) infection. The underlying molecular aspects how the ISG15 system affects the functional properties of respective protein substrates in the heart are unknown. METHODS AND RESULTS: Based on the protective properties due to protein ISGylation, we set out a study investigating CVB3-infected mice in depth and found cardiac atrophy with lower cardiac output in ISG15-/- mice. By mass spectrometry, we identified the protein targets of the ISG15 conjugation machinery in heart tissue and explored how ISGylation affects their function. The cardiac ISGylome showed a strong enrichment of ISGylation substrates within glycolytic metabolic processes. Two control enzymes of the glycolytic pathway, hexokinase 2 (HK2) and phosphofructokinase muscle form (PFK1), were identified as bona fide ISGylation targets during infection. In an integrative approach complemented with enzymatic functional testing and structural modelling, we demonstrate that protein ISGylation obstructs the activity of HK2 and PFK1. Seahorse-based investigation of glycolysis in cardiomyocytes revealed that, by conjugating proteins, the ISG15 system prevents the infection-/IFN-induced up-regulation of glycolysis. We complemented our analysis with proteomics-based advanced computational modelling of cardiac energy metabolism. Our calculations revealed an ISG15-dependent preservation of the metabolic capacity in cardiac tissue during CVB3 infection. Functional profiling of mitochondrial respiration in cardiomyocytes and mouse heart tissue by Seahorse technology showed an enhanced oxidative activity in cells with a competent ISG15 system. CONCLUSION: Our study demonstrates that ISG15 controls critical nodes in cardiac metabolism. ISG15 reduces the glucose demand, supports higher ATP production capacity in the heart, despite nutrient shortage in infection, and counteracts cardiac atrophy and dysfunction.


Assuntos
Infecções por Coxsackievirus , Citocinas , Metabolismo Energético , Glicólise , Mitocôndrias Cardíacas , Miócitos Cardíacos , Ubiquitinas , Animais , Humanos , Masculino , Infecções por Coxsackievirus/metabolismo , Infecções por Coxsackievirus/virologia , Infecções por Coxsackievirus/genética , Citocinas/genética , Citocinas/metabolismo , Modelos Animais de Doenças , Enterovirus Humano B/patogenicidade , Enterovirus Humano B/metabolismo , Interações Hospedeiro-Patógeno , Camundongos Endogâmicos C57BL , Camundongos Knockout , Mitocôndrias Cardíacas/metabolismo , Mitocôndrias Cardíacas/patologia , Miócitos Cardíacos/metabolismo , Miócitos Cardíacos/virologia , Miócitos Cardíacos/patologia , Processamento de Proteína Pós-Traducional , Transdução de Sinais , Ubiquitinas/metabolismo , Ubiquitinas/genética
2.
NPJ Biofilms Microbiomes ; 10(1): 66, 2024 Aug 01.
Artigo em Inglês | MEDLINE | ID: mdl-39085233

RESUMO

The clinical course of COVID-19 is variable and often unpredictable. To test the hypothesis that disease progression and inflammatory responses associate with alterations in the microbiome and metabolome, we analyzed metagenome, metabolome, cytokine, and transcriptome profiles of repeated samples from hospitalized COVID-19 patients and uninfected controls, and leveraged clinical information and post-hoc confounder analysis. Severe COVID-19 was associated with a depletion of beneficial intestinal microbes, whereas oropharyngeal microbiota disturbance was mainly linked to antibiotic use. COVID-19 severity was also associated with enhanced plasma concentrations of kynurenine and reduced levels of several other tryptophan metabolites, lysophosphatidylcholines, and secondary bile acids. Moreover, reduced concentrations of various tryptophan metabolites were associated with depletion of Faecalibacterium, and tryptophan decrease and kynurenine increase were linked to enhanced production of inflammatory cytokines. Collectively, our study identifies correlated microbiome and metabolome alterations as a potential contributor to inflammatory dysregulation in severe COVID-19.


Assuntos
COVID-19 , Citocinas , Disbiose , Microbioma Gastrointestinal , SARS-CoV-2 , Triptofano , Humanos , COVID-19/microbiologia , COVID-19/imunologia , Triptofano/metabolismo , Masculino , Feminino , Pessoa de Meia-Idade , Citocinas/sangue , Citocinas/metabolismo , Metaboloma , Inflamação , Cinurenina/metabolismo , Cinurenina/sangue , Idoso , Adulto
3.
Nat Commun ; 15(1): 2788, 2024 Mar 30.
Artigo em Inglês | MEDLINE | ID: mdl-38555356

RESUMO

Hospital-acquired pneumonia (HAP) is associated with high mortality and costs, and frequently caused by multidrug-resistant (MDR) bacteria. Although prior antimicrobial therapy is a major risk factor for HAP, the underlying mechanism remains incompletely understood. Here, we demonstrate that antibiotic therapy in hospitalized patients is associated with decreased diversity of the gut microbiome and depletion of short-chain fatty acid (SCFA) producers. Infection experiments with mice transplanted with patient fecal material reveal that these antibiotic-induced microbiota perturbations impair pulmonary defense against MDR Klebsiella pneumoniae. This is dependent on inflammatory monocytes (IMs), whose fatty acid receptor (FFAR)2/3-controlled and phagolysosome-dependent antibacterial activity is compromized in mice transplanted with antibiotic-associated patient microbiota. Collectively, we characterize how clinically relevant antibiotics affect antimicrobial defense in the context of human microbiota, and reveal a critical impairment of IM´s antimicrobial activity. Our study provides additional arguments for the rational use of antibiotics and offers mechanistic insights for the development of novel prophylactic strategies to protect high-risk patients from HAP.


Assuntos
Antibacterianos , Anti-Infecciosos , Humanos , Camundongos , Animais , Antibacterianos/farmacologia , Antibacterianos/uso terapêutico , Monócitos , Anti-Infecciosos/farmacologia , Klebsiella pneumoniae , Pulmão
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