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1.
Adv Virus Res ; 119: 1-38, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38897707

RESUMO

The ubiquitination process is a reversible posttranslational modification involved in many essential cellular functions, such as innate immunity, cell signaling, trafficking, protein stability, and protein degradation. Viruses can use the ubiquitin system to efficiently enter host cells, replicate and evade host immunity, ultimately enhancing viral pathogenesis. Emerging evidence indicates that enveloped viruses can carry free (unanchored) ubiquitin or covalently ubiquitinated viral structural proteins that can increase the efficiency of viral entry into host cells. Furthermore, viruses continuously evolve and adapt to take advantage of the host ubiquitin machinery, highlighting its importance during virus infection. This review discusses the battle between viruses and hosts, focusing on how viruses hijack the ubiquitination process at different steps of the replication cycle, with a specific emphasis on viral entry. We discuss how ubiquitination of viral proteins may affect tropism and explore emerging therapeutics strategies targeting the ubiquitin system for antiviral drug discovery.


Assuntos
Ubiquitinação , Internalização do Vírus , Replicação Viral , Humanos , Ubiquitina/metabolismo , Vírus/metabolismo , Interações Hospedeiro-Patógeno , Proteínas Virais/metabolismo , Proteínas Virais/genética , Viroses/virologia , Viroses/imunologia , Viroses/metabolismo , Animais , Processamento de Proteína Pós-Traducional
2.
J Microbiol ; 62(6): 419-427, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38916789

RESUMO

Extracellular vesicles (EVs), of diverse origin and content, are membranous structures secreted by a broad range of cell types. Recent advances in molecular biology have highlighted the pivotal role of EVs in mediating intercellular communication, facilitated by their ability to transport a diverse range of biomolecules, including proteins, lipids, DNA, RNA and metabolites. A striking feature of EVs is their ability to exert dual effects during viral infections, involving both proviral and antiviral effects. This review explores the dual roles of EVs, particularly in the context of pandemic viruses such as HIV-1 and SARS-CoV-2. On the one hand, EVs can enhance viral replication and exacerbate pathogenesis by transferring viral components to susceptible cells. On the other hand, they have intrinsic antiviral properties, including activation of immune responses and direct inhibition of viral infection. By exploring these contrasting functions, our review emphasizes the complexity of EV-mediated interactions in viral pathogenesis and highlights their potential as targets for therapeutic intervention. The insights obtained from investigating EVs in the context of HIV-1 and SARS-CoV-2 provide a deeper understanding of viral mechanisms and pathologies, and offer a new perspective on managing and mitigating the impact of these global health challenges.


Assuntos
COVID-19 , Vesículas Extracelulares , HIV-1 , SARS-CoV-2 , Replicação Viral , Vesículas Extracelulares/metabolismo , Vesículas Extracelulares/virologia , Humanos , SARS-CoV-2/fisiologia , COVID-19/virologia , HIV-1/fisiologia , Viroses/metabolismo , Viroses/virologia , Infecções por HIV/virologia , Pandemias
3.
Viruses ; 16(6)2024 Jun 19.
Artigo em Inglês | MEDLINE | ID: mdl-38932279

RESUMO

C-terminal binding protein (CtBP), a transcriptional co-repressor, significantly influences cellular signaling, impacting various biological processes including cell proliferation, differentiation, apoptosis, and immune responses. The CtBP family comprises two highly conserved proteins, CtBP1 and CtBP2, which have been shown to play critical roles in both tumorigenesis and the regulation of viral infections. Elevated CtBP expression is noted in various tumor tissues, promoting tumorigenesis, invasiveness, and metastasis through multiple pathways. Additionally, CtBP's role in viral infections varies, exhibiting differing or even opposing effects depending on the virus. This review synthesizes the advances in CtBP's function research in viral infections and virus-associated tumorigenesis, offering new insights into potential antiviral and anticancer strategies.


Assuntos
Oxirredutases do Álcool , Carcinogênese , Proteínas de Ligação a DNA , Viroses , Humanos , Carcinogênese/metabolismo , Viroses/metabolismo , Viroses/virologia , Oxirredutases do Álcool/metabolismo , Proteínas de Ligação a DNA/metabolismo , Proteínas de Ligação a DNA/genética , Animais , Neoplasias/metabolismo , Neoplasias/virologia
4.
Adv Virus Res ; 119: 63-110, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38897709

RESUMO

The surfaces of cells and enveloped viruses alike are coated in carbohydrates that play multifarious roles in infection and immunity. Organisms across all kingdoms of life make use of a diverse set of monosaccharide subunits, glycosidic linkages, and branching patterns to encode information within glycans. Accordingly, sugar-patterning enzymes and glycan binding proteins play integral roles in cell and organismal biology, ranging from glycoprotein quality control within the endoplasmic reticulum to lymphocyte migration, coagulation, inflammation, and tissue homeostasis. Unsurprisingly, genes involved in generating and recognizing oligosaccharide patterns are playgrounds for evolutionary conflicts that abound in cross-species interactions, exemplified by the myriad plant lectins that function as toxins. In vertebrates, glycans bearing acidic nine-carbon sugars called sialic acids are key regulators of immune responses. Various bacterial and fungal pathogens adorn their cells in sialic acids that either mimic their hosts' or are stolen from them. Yet, how viruses commandeer host sugar-patterning enzymes to thwart immune responses remains poorly studied. Here, we review examples of viruses that interact with sialic acid-binding immunoglobulin-like lectins (Siglecs), a family of immune cell receptors that regulate toll-like receptor signaling and govern glycoimmune checkpoints, while highlighting knowledge gaps that merit investigation. Efforts to illuminate how viruses leverage glycan-dependent checkpoints may translate into new clinical treatments that uncloak viral antigens and infected cell surfaces by removing or masking immunosuppressive sialoglycans, or by inhibiting viral gene products that induce their biosynthesis. Such approaches may hold the potential to unleash the immune system to clear long intractable chronic viral infections.


Assuntos
Glicocálix , Vírus , Glicocálix/metabolismo , Humanos , Animais , Vírus/imunologia , Vírus/metabolismo , Polissacarídeos/metabolismo , Lectinas Semelhantes a Imunoglobulina de Ligação ao Ácido Siálico/metabolismo , Viroses/imunologia , Viroses/metabolismo , Viroses/virologia , Interações Hospedeiro-Patógeno/imunologia
5.
Cells ; 13(11)2024 May 22.
Artigo em Inglês | MEDLINE | ID: mdl-38891025

RESUMO

Adrenomedullin (ADM) is a peptide hormone produced primarily in the adrenal glands, playing a crucial role in various physiological processes. As well as improving vascular integrity and decreasing vascular permeability, ADM acts as a vasodilator, positive inotrope, diuretic, natriuretic and bronchodilator, antagonizing angiotensin II by inhibiting aldosterone secretion. ADM also has antihypertrophic, anti-apoptotic, antifibrotic, antioxidant, angiogenic and immunoregulatory effects and antimicrobial properties. ADM expression is upregulated by hypoxia, inflammation-inducing cytokines, viral or bacterial substances, strength of shear stress, and leakage of blood vessels. These pathological conditions are established during systemic inflammation that can result from infections, surgery, trauma/accidents or burns. The ability to rapidly identify infections and the prognostic, predictive power makes it a valuable tool in severe viral and bacterial infections burdened by high incidence and mortality. This review sheds light on the pathophysiological processes that in severe viral or bacterial infections cause endothelitis up to the development of organ damage, the resulting increase in ADM levels dosed through its more stable peptide mid-regional proadrenomedullin (MR-proADM), the most significant studies that attest to its diagnostic and prognostic accuracy in highlighting the severity of viral or bacterial infections and appropriate therapeutic insights.


Assuntos
Adrenomedulina , Infecções Bacterianas , Viroses , Adrenomedulina/metabolismo , Humanos , Infecções Bacterianas/metabolismo , Infecções Bacterianas/complicações , Viroses/metabolismo , Viroses/complicações , Inflamação/patologia , Animais
6.
Front Cell Infect Microbiol ; 14: 1423394, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38887492

RESUMO

Extracellular vesicles (EVs) are membrane-bound vesicles secreted by all cell types that play a central role in cell-to-cell communication. Since these vesicles serve as vehicles of cellular content (nucleic acids, proteins and lipids) with the potential to cross biological barriers, they represent a novel attractive window into an otherwise inaccessible organ, such as the brain. The composition of EVs is cell-type specific and mirrors the physiological condition of the cell-of-origin. Consequently, during viral infection, EVs undergo significant changes in their content and morphology, thereby reflecting alterations in the cellular state. Here, we briefly summarize the potential of brain-derived EVs as a lens into viral infection in the central nervous system, thereby: 1) uncovering underlying pathophysiological processes at play and 2) serving as liquid biopsies of the brain, representing a non-invasive source of biomarkers for monitoring disease activity. Although translating the potential of EVs from research to diagnosis poses complexities, characterizing brain-derived EVs in the context of viral infections holds promise to enhance diagnostic and therapeutic strategies, offering new avenues for managing infectious neurological diseases.


Assuntos
Biomarcadores , Encéfalo , Vesículas Extracelulares , Viroses , Vesículas Extracelulares/metabolismo , Humanos , Biomarcadores/metabolismo , Encéfalo/patologia , Encéfalo/metabolismo , Encéfalo/virologia , Viroses/metabolismo , Animais , Comunicação Celular
7.
Nucleus ; 15(1): 2350178, 2024 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-38717150

RESUMO

Paraspeckles are non-membranous subnuclear bodies, formed through the interaction between the architectural long non-coding RNA (lncRNA) nuclear paraspeckle assembly transcript 1 (NEAT1) and specific RNA-binding proteins, including the three Drosophila Behavior/Human Splicing (DBHS) family members (PSPC1 (Paraspeckle Component 1), SFPQ (Splicing Factor Proline and Glutamine Rich) and NONO (Non-POU domain-containing octamer-binding protein)). Paraspeckle components were found to impact viral infections through various mechanisms, such as induction of antiviral gene expression, IRES-mediated translation, or viral mRNA polyadenylation. A complex involving NEAT1 RNA and paraspeckle proteins was also found to modulate interferon gene transcription after nuclear DNA sensing, through the activation of the cGAS-STING axis. This review aims to provide an overview on how these elements actively contribute to the dynamics of viral infections.


Assuntos
Viroses , Humanos , Viroses/metabolismo , Viroses/genética , Viroses/virologia , Animais , RNA Longo não Codificante/genética , RNA Longo não Codificante/metabolismo , Proteínas de Ligação a RNA/metabolismo , Proteínas de Ligação a RNA/genética
8.
Biochem Soc Trans ; 52(3): 1393-1404, 2024 Jun 26.
Artigo em Inglês | MEDLINE | ID: mdl-38778761

RESUMO

Several biomolecular condensates assemble in mammalian cells in response to viral infection. The most studied of these are stress granules (SGs), which have been proposed to promote antiviral innate immune signaling pathways, including the RLR-MAVS, the protein kinase R (PKR), and the OAS-RNase L pathways. However, recent studies have demonstrated that SGs either negatively regulate or do not impact antiviral signaling. Instead, the SG-nucleating protein, G3BP1, may function to perturb viral RNA biology by condensing viral RNA into viral-aggregated RNA condensates, thus explaining why viruses often antagonize G3BP1 or hijack its RNA condensing function. However, a recently identified condensate, termed double-stranded RNA-induced foci, promotes the activation of the PKR and OAS-RNase L antiviral pathways. In addition, SG-like condensates known as an RNase L-induced bodies (RLBs) have been observed during many viral infections, including SARS-CoV-2 and several flaviviruses. RLBs may function in promoting decay of cellular and viral RNA, as well as promoting ribosome-associated signaling pathways. Herein, we review these recent advances in the field of antiviral biomolecular condensates, and we provide perspective on the role of canonical SGs and G3BP1 during the antiviral response.


Assuntos
RNA Helicases , Proteínas com Motivo de Reconhecimento de RNA , RNA Viral , Grânulos de Estresse , Humanos , Animais , Proteínas com Motivo de Reconhecimento de RNA/metabolismo , RNA Helicases/metabolismo , RNA Viral/metabolismo , Grânulos de Estresse/metabolismo , SARS-CoV-2/fisiologia , Imunidade Inata , Transdução de Sinais , Condensados Biomoleculares/metabolismo , Proteínas de Ligação a Poli-ADP-Ribose/metabolismo , Viroses/tratamento farmacológico , Viroses/metabolismo , DNA Helicases/metabolismo , eIF-2 Quinase/metabolismo , Endorribonucleases/metabolismo , COVID-19/virologia , COVID-19/imunologia
9.
Mol Aspects Med ; 97: 101279, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38772081

RESUMO

The first line of defense against viral infection of the host cell is the cellular lipid membrane, which is also a crucial first site of contact for viruses. Lipids may sometimes be used as viral receptors by viruses. For effective infection, viruses significantly depend on lipid rafts during the majority of the viral life cycle. It has been discovered that different viruses employ different lipid raft modification methods for attachment, internalization, membrane fusion, genome replication, assembly, and release. To preserve cellular homeostasis, cells have potent antioxidant, detoxifying, and cytoprotective capabilities. Nuclear factor erythroid 2-related factor 2 (NRF2), widely expressed in many tissues and cell types, is one crucial component controlling electrophilic and oxidative stress (OS). NRF2 has recently been given novel tasks, including controlling inflammation and antiviral interferon (IFN) responses. The activation of NRF2 has two effects: it may both promote and prevent the development of viral diseases. NRF2 may also alter the host's metabolism and innate immunity during viral infection. However, its primary function in viral infections is to regulate reactive oxygen species (ROS). In several research, the impact of NRF2 on lipid metabolism has been examined. NRF2 is also involved in the control of lipids during viral infection. We evaluated NRF2's function in controlling viral and lipid infections in this research. We also looked at how lipids function in viral infections. Finally, we investigated the role of NRF2 in lipid modulation during viral infections.


Assuntos
Metabolismo dos Lipídeos , Fator 2 Relacionado a NF-E2 , Estresse Oxidativo , Viroses , Fator 2 Relacionado a NF-E2/metabolismo , Fator 2 Relacionado a NF-E2/genética , Humanos , Viroses/metabolismo , Viroses/imunologia , Viroses/virologia , Animais , Espécies Reativas de Oxigênio/metabolismo , Transdução de Sinais , Microdomínios da Membrana/metabolismo , Imunidade Inata , Interações Hospedeiro-Patógeno
10.
Curr Opin Virol ; 66: 101411, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38718574

RESUMO

Virus infection activates specific pattern recognition receptors and immune signal transduction, resulting in pro-inflammatory cytokine production and activation of innate immunity. We describe here the molecular organization of early signaling pathways downstream of viral recognition, including conformational changes, post-translational modifications, formation of oligomers, and generation of small-molecule second messengers. Such molecular organization allows tight regulation of immune signal transduction, characterized by swift but transient responses, nonlinearity, and signal amplification. Pathologies of early immune signaling caused by genomic mutations illustrate the fine regulation of the immune transduction cascade.


Assuntos
Imunidade Inata , Transdução de Sinais , Viroses , Humanos , Animais , Viroses/imunologia , Viroses/virologia , Viroses/metabolismo , Vírus/genética , Vírus/imunologia , Processamento de Proteína Pós-Traducional , Interações Hospedeiro-Patógeno , Receptores de Reconhecimento de Padrão/metabolismo , Citocinas/metabolismo
11.
Adv Protein Chem Struct Biol ; 140: 493-523, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38762278

RESUMO

Immune-metabolic interactions play a pivotal role in both host defense and susceptibility to various diseases. Immunometabolism, an interdisciplinary field, seeks to elucidate how metabolic processes impact the immune system. In the context of viral infections, macrophages are often exploited by viruses for their replication and propagation. These infections trigger significant metabolic reprogramming within macrophages and polarization of distinct M1 and M2 phenotypes. This metabolic reprogramming involves alterations in standard- pathways such as the Krebs cycle, glycolysis, lipid metabolism, the pentose phosphate pathway, and amino acid metabolism. Disruptions in the balance of key intermediates like spermidine, itaconate, and citrate within these pathways contribute to the severity of viral diseases. In this chapter, we describe the manipulation of metabolic pathways by viruses and how they crosstalk between signaling pathways to evade the immune system. This intricate interplay often involves the upregulation or downregulation of specific metabolites, making these molecules potential biomarkers for diseases like HIV, HCV, and SARS-CoV. Techniques such as Nuclear Magnetic Resonance (NMR) and Mass Spectrometry, are the evaluative ways to analyze these metabolites. Considering the importance of macrophages in the inflammatory response, addressing their metabolome holds great promise for the creating future therapeutic targets aimed at combating a wide spectrum of viral infections.


Assuntos
Macrófagos , Viroses , Humanos , Macrófagos/metabolismo , Macrófagos/imunologia , Viroses/imunologia , Viroses/metabolismo , COVID-19/imunologia , COVID-19/metabolismo , COVID-19/virologia , SARS-CoV-2/imunologia , SARS-CoV-2/metabolismo
12.
Virus Res ; 345: 199384, 2024 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-38702018

RESUMO

Due to the limited size of viral genomes, hijacking host machinery by the viruses taking place throughout the virus life cycle is inevitable for the survival and proliferation of the virus in the infected hosts. Recent reports indicated that Annexin A2 (AnxA2), a calcium- and lipid-binding cellular protein, plays an important role as a critical regulator in various steps of the virus life cycle. The multifarious AnxA2 functions in cells, such as adhesion, adsorption, endocytosis, exocytosis, cell proliferation and division, inflammation, cancer metastasis, angiogenesis, etc., are intimately related to the various clinical courses of viral infection. Ubiquitous expression of AnxA2 across multiple cell types indicates the broad range of susceptibility of diverse species of the virus to induce disparate viral disease in various tissues, and intracellular expression of AnxA2 in the cytoplasmic membrane, cytosol, and nucleus suggests the involvement of AnxA2 in the regulation of the different stages of various virus life cycles within host cells. However, it is yet unclear as to the molecular processes on how AnxA2 and the infected virus interplay to regulate virus life cycles and thereby the virus-associated disease courses, and hence elucidation of the molecular mechanisms on AnxA2-mediated virus life cycle will provide essential clues to develop therapeutics deterring viral disease.


Assuntos
Anexina A2 , Anexina A2/metabolismo , Anexina A2/genética , Humanos , Replicação Viral , Interações Hospedeiro-Patógeno , Animais , Viroses/metabolismo , Viroses/virologia , Vírus/genética , Vírus/metabolismo , Vírus/crescimento & desenvolvimento , Internalização do Vírus
13.
Angew Chem Int Ed Engl ; 63(28): e202404703, 2024 Jul 08.
Artigo em Inglês | MEDLINE | ID: mdl-38655625

RESUMO

Self-assembly in living cells represents one versatile strategy for drug delivery; however, it suffers from the limited precision and efficiency. Inspired by viral traits, we here report a cascade targeting-hydrolysis-transformation (THT) assembly of glycosylated peptides in living cells holistically resembling viral infection for efficient cargo delivery and combined tumor therapy. We design a glycosylated peptide via incorporating a ß-galactose-serine residue into bola-amphiphilic sequences. Co-assembling of the glycosylated peptide with two counterparts containing irinotecan (IRI) or ligand TSFAEYWNLLSP (PMI) results in formation of the glycosylated co-assemblies SgVEIP, which target cancer cells via ß-galactose-galectin-1 association and undergo galactosidase-induced morphological transformation. While GSH-reduction causes release of IRI from the co-assemblies, the PMI moieties release p53 and facilitate cell death via binding with protein MDM2. Cellular experiments show membrane targeting, endo-/lysosome-mediated internalization and in situ formation of nanofibers in cytoplasm by SgVEIP. This cascade THT process enables efficient delivery of IRI and PMI into cancer cells secreting Gal-1 and overexpressing ß-galactosidase. In vivo studies illustrate enhanced tumor accumulation and retention of the glycosylated co-assemblies, thereby suppressing tumor growth. Our findings demonstrate an in situ assembly strategy mimicking viral infection, thus providing a new route for drug delivery and cancer therapy in the future.


Assuntos
Sistemas de Liberação de Medicamentos , Glicopeptídeos , Humanos , Glicopeptídeos/química , Glicopeptídeos/metabolismo , Animais , Viroses/tratamento farmacológico , Viroses/metabolismo , Irinotecano/química , Irinotecano/farmacologia , Camundongos , Linhagem Celular Tumoral
14.
Biochim Biophys Acta Mol Cell Res ; 1871(5): 119723, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38599324

RESUMO

Viruses have evolved complex mechanisms to exploit host factors for replication and assembly. In response, host cells have developed strategies to block viruses, engaging in a continuous co-evolutionary battle. This dynamic interaction often revolves around the competition for essential resources necessary for both host cell and virus replication. Notably, iron, required for the biosynthesis of several cofactors, including iron­sulfur (FeS) clusters, represents a critical element in the ongoing competition for resources between infectious agents and host. Although several recent studies have identified FeS cofactors at the core of virus replication machineries, our understanding of their specific roles and the cellular processes responsible for their incorporation into viral proteins remains limited. This review aims to consolidate our current knowledge of viral components that have been characterized as FeS proteins and elucidate how viruses harness these versatile cofactors to their benefit. Its objective is also to propose that viruses may depend on incorporation of FeS cofactors more extensively than is currently known. This has the potential to revolutionize our understanding of viral replication, thereby carrying significant implications for the development of strategies to target infections.


Assuntos
Proteínas Ferro-Enxofre , Proteínas Virais , Replicação Viral , Proteínas Ferro-Enxofre/metabolismo , Proteínas Ferro-Enxofre/genética , Humanos , Proteínas Virais/metabolismo , Proteínas Virais/genética , Vírus/metabolismo , Vírus/genética , Viroses/metabolismo , Viroses/virologia , Ferro/metabolismo , Animais , Interações Hospedeiro-Patógeno
15.
Nucleic Acids Res ; 52(9): 5209-5225, 2024 May 22.
Artigo em Inglês | MEDLINE | ID: mdl-38636948

RESUMO

RNA silencing is a post-transcriptional gene-silencing mechanism mediated by microRNAs (miRNAs). However, the regulatory mechanism of RNA silencing during viral infection is unclear. TAR RNA-binding protein (TRBP) is an enhancer of RNA silencing that induces miRNA maturation by interacting with the ribonuclease Dicer. TRBP interacts with a virus sensor protein, laboratory of genetics and physiology 2 (LGP2), in the early stage of viral infection of human cells. Next, it induces apoptosis by inhibiting the maturation of miRNAs, thereby upregulating the expression of apoptosis regulatory genes. In this study, we show that TRBP undergoes a functional conversion in the late stage of viral infection. Viral infection resulted in the activation of caspases that proteolytically processed TRBP into two fragments. The N-terminal fragment did not interact with Dicer but interacted with type I interferon (IFN) signaling modulators, such as protein kinase R (PKR) and LGP2, and induced ER stress. The end results were irreversible apoptosis and suppression of IFN signaling. Our results demonstrate that the processing of TRBP enhances apoptosis, reducing IFN signaling during viral infection.


Assuntos
Apoptose , Caspases , Proteínas de Ligação a RNA , Humanos , Caspases/metabolismo , Linhagem Celular , eIF-2 Quinase/metabolismo , eIF-2 Quinase/genética , Estresse do Retículo Endoplasmático/genética , Células HEK293 , Células HeLa , Interferon Tipo I/metabolismo , Interferon Tipo I/genética , MicroRNAs/metabolismo , MicroRNAs/genética , Ribonuclease III/metabolismo , Ribonuclease III/genética , Proteínas de Ligação a RNA/metabolismo , Proteínas de Ligação a RNA/genética , Transdução de Sinais , Viroses/genética , Viroses/metabolismo
16.
Exp Mol Med ; 56(4): 799-808, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38658699

RESUMO

The dynamic spatial organization of genomes across time, referred to as the four-dimensional nucleome (4DN), is a key component of gene regulation and biological fate. Viral infections can lead to a reconfiguration of viral and host genomes, impacting gene expression, replication, latency, and oncogenic transformation. This review provides a summary of recent research employing three-dimensional genomic methods such as Hi-C, 4C, ChIA-PET, and HiChIP in virology. We review how viruses induce changes in gene loop formation between regulatory elements, modify chromatin accessibility, and trigger shifts between A and B compartments in the host genome. We highlight the central role of cellular chromatin organizing factors, such as CTCF and cohesin, that reshape the 3D structure of both viral and cellular genomes. We consider how viral episomes, viral proteins, and viral integration sites can alter the host epigenome and how host cell type and conditions determine viral epigenomes. This review consolidates current knowledge of the diverse host-viral interactions that impact the 4DN.


Assuntos
Genoma Viral , Humanos , Animais , Interações Hospedeiro-Patógeno , Vírus/metabolismo , Vírus/genética , Cromatina/metabolismo , Viroses/virologia , Viroses/metabolismo
17.
Int J Mol Sci ; 25(8)2024 Apr 18.
Artigo em Inglês | MEDLINE | ID: mdl-38674036

RESUMO

CX3CL1, also named fractalkine or neurotactin, is the only known member of the CX3C chemokine family that can chemoattract several immune cells. CX3CL1 exists in both membrane-anchored and soluble forms, with each mediating distinct biological activities. CX3CL1 signals are transmitted through its unique receptor, CX3CR1, primarily expressed in the microglia of the central nervous system (CNS). In the CNS, CX3CL1 acts as a regulator of microglia activation in response to brain disorders or inflammation. Recently, there has been a growing interest in the role of CX3CL1 in regulating cell adhesion, chemotaxis, and host immune response in viral infection. Here, we provide a comprehensive review of the changes and function of CX3CL1 in various viral infections, such as human immunodeficiency virus (HIV), SARS-CoV-2, influenza virus, and cytomegalovirus (CMV) infection, to highlight the emerging roles of CX3CL1 in viral infection and associated diseases.


Assuntos
Quimiocina CX3CL1 , Viroses , Quimiocina CX3CL1/metabolismo , Humanos , Viroses/metabolismo , Viroses/imunologia , Viroses/virologia , Animais , COVID-19/virologia , COVID-19/metabolismo , COVID-19/imunologia , SARS-CoV-2/patogenicidade , SARS-CoV-2/fisiologia , Microglia/metabolismo , Microglia/virologia , Receptor 1 de Quimiocina CX3C/metabolismo , Receptor 1 de Quimiocina CX3C/genética
18.
Cell Rep ; 43(4): 114095, 2024 Apr 23.
Artigo em Inglês | MEDLINE | ID: mdl-38613787

RESUMO

Interferon (IFN) contributes to the host's antiviral response by inducing IFN-stimulated genes (ISGs). However, their functional targets and the mechanism of action remain elusive. Here, we report that one such ISG, TRIM21, interacts with and degrades the TRPV2 channel in myeloid cells, reducing its expression and providing host protection against viral infections. Moreover, viral infection upregulates TRIM21 in paracrine and autocrine manners, downregulating TRPV2 in neighboring cells to prevent viral spread to uninfected cells. Consistently, the Trim21-/- mice are more susceptible to HSV-1 and VSV infection than the Trim21+/+ littermates, in which viral susceptibility is rescued by inhibition or deletion of TRPV2. Mechanistically, TRIM21 catalyzes the K48-linked ubiquitination of TRPV2 at Lys295. TRPV2K295R is resistant to viral-infection-induced TRIM21-dependent ubiquitination and degradation, promoting viral infection more profoundly than wild-type TRPV2 when reconstituted into Lyz2-Cre;Trpv2fl/fl myeloid cells. These findings characterize targeting the TRIM21-TRPV2 axis as a conducive strategy to control viral spread to bystander cells.


Assuntos
Ribonucleoproteínas , Canais de Cátion TRPV , Ubiquitinação , Viroses , Animais , Humanos , Camundongos , Regulação para Baixo , Células HEK293 , Herpesvirus Humano 1/fisiologia , Interferons/metabolismo , Camundongos Endogâmicos C57BL , Camundongos Knockout , Células Mieloides/metabolismo , Ribonucleoproteínas/metabolismo , Canais de Cátion TRPV/metabolismo , Canais de Cátion TRPV/genética , Viroses/metabolismo
19.
Life Sci ; 347: 122653, 2024 Jun 15.
Artigo em Inglês | MEDLINE | ID: mdl-38663839

RESUMO

Autophagy is a cellular degradation system that recycles or degrades damaged organelles, viral particles, and aggregated proteins through the lysosomal pathway. Autophagy plays an indispensable role in cellular homeostasis and communication processes. An interesting aspect is that autophagy also mediates the secretion of cellular contents, a process known as secretory autophagy. Secretory autophagy differs from macroautophagy, which sequesters recruited proteins, organelles, or viral particles into autophagosomes and degrades these sequesters in lysosomes, while the secretory autophagy pathway participates in the extracellular export of cellular contents sequestered by autophagosomes through autophagy and endosomal modulators. Recent evidence reveals that secretory autophagy is pivotal in the occurrence and progression of diseases. In this review, we summarize the molecular mechanisms of secretory autophagy. Furthermore, we review the impact of secretory autophagy on diseases, including cancer, viral infectious diseases, neurodegenerative diseases, and cardiovascular diseases. Considering the pleiotropic actions of secretory autophagy on diseases, studying the mechanism of secretory autophagy may help to understand the relevant pathophysiological processes.


Assuntos
Autofagia , Humanos , Autofagia/fisiologia , Animais , Doenças Neurodegenerativas/metabolismo , Doenças Neurodegenerativas/patologia , Neoplasias/patologia , Neoplasias/metabolismo , Viroses/metabolismo , Viroses/patologia , Autofagossomos/metabolismo , Lisossomos/metabolismo , Doenças Cardiovasculares/metabolismo , Doenças Cardiovasculares/patologia , Doenças Cardiovasculares/fisiopatologia
20.
Life Sci ; 346: 122643, 2024 Jun 01.
Artigo em Inglês | MEDLINE | ID: mdl-38614308

RESUMO

Lectins are protein or glycoprotein molecules with a specific ability to bind to carbohydrates. From viruses to mammals, they are found in various organisms and exhibit remarkable diverse structures and functions. They are significant contributors to defense mechanisms against microbial attacks in plants. They are also involved in functions such as controlling lymphocyte migration, regulating glycoprotein biosynthesis, cell-cell recognition, and embryonic development in animals. In addition, lectins serve as invaluable molecular tools in various biological and medical disciplines due to their reversible binding ability and enable the monitoring of cell membrane changes in physiological and pathological contexts. Microbial lectins, often referred to as adhesins, play an important role in microbial colonization, pathogenicity, and interactions among microorganisms. Viral lectins are located in the bilayered viral membrane, whereas bacterial lectins are found intracellularly and on the bacterial cell surface. Microfungal lectins are typically intracellular and have various functions in host-parasite interaction, and in fungal growth and morphogenesis. Although microbial lectin studies are less extensive than those of plants and animals, they provide insights into the infection mechanisms and potential interventions. Glycan specificity, essential functions in infectious diseases, and applications in the diagnosis and treatment of viral and bacterial infections are critical aspects of microbial lectin research. In this review, we will discuss the application and therapeutic potential of viral, bacterial and microfungal lectins.


Assuntos
Lectinas , Humanos , Lectinas/metabolismo , Animais , Infecções Bacterianas/tratamento farmacológico , Infecções Bacterianas/metabolismo , Viroses/tratamento farmacológico , Viroses/metabolismo , Bactérias/metabolismo , Vírus/metabolismo , Vírus/patogenicidade
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