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1.
Proc Natl Acad Sci U S A ; 118(31)2021 08 03.
Artículo en Inglés | MEDLINE | ID: mdl-34321357

RESUMEN

Many bacteria, including the major human pathogen Pseudomonas aeruginosa, are naturally found in multicellular, antibiotic-tolerant biofilm communities, in which cells are embedded in an extracellular matrix of polymeric molecules. Cell-cell interactions within P. aeruginosa biofilms are mediated by CdrA, a large, membrane-associated adhesin present in the extracellular matrix of biofilms, regulated by the cytoplasmic concentration of cyclic diguanylate. Here, using electron cryotomography of focused ion beam-milled specimens, we report the architecture of CdrA molecules in the extracellular matrix of P. aeruginosa biofilms at intact cell-cell junctions. Combining our in situ observations at cell-cell junctions with biochemistry, native mass spectrometry, and cellular imaging, we demonstrate that CdrA forms an extended structure that projects from the outer membrane to tether cells together via polysaccharide binding partners. We go on to show the functional importance of CdrA using custom single-domain antibody (nanobody) binders. Nanobodies targeting the tip of functional cell-surface CdrA molecules could be used to inhibit bacterial biofilm formation or disrupt preexisting biofilms in conjunction with bactericidal antibiotics. These results reveal a functional mechanism for cell-cell interactions within bacterial biofilms and highlight the promise of using inhibitors targeting biofilm cell-cell junctions to prevent or treat problematic, chronic bacterial infections.


Asunto(s)
Adhesinas Bacterianas/metabolismo , Biopelículas/crecimiento & desarrollo , Pseudomonas aeruginosa/fisiología , Adhesinas Bacterianas/genética , Adhesión Bacteriana , Membrana Celular , Matriz Extracelular , Regulación Bacteriana de la Expresión Génica , Anticuerpos de Dominio Único
2.
Trends Microbiol ; 28(12): 1022-1033, 2020 12.
Artículo en Inglés | MEDLINE | ID: mdl-32536523

RESUMEN

Viruses, as obligate intracellular parasites, exploit cellular pathways and resources in a variety of fascinating ways. A striking example of this is the remodelling of intracellular membranes into specialized structures that support the replication of positive-sense ssRNA (+RNA) viruses infecting eukaryotes. These distinct forms of virus-induced structures include double-membrane vesicles (DMVs), found during viral infections as diverse and notorious as those of coronaviruses, enteroviruses, noroviruses, or hepatitis C virus. Our understanding of these DMVs has evolved over the past 15 years thanks to advances in imaging techniques and modern molecular biology tools. In this article, we review contemporary understanding of the biogenesis, structure, and function of virus-induced DMVs as well as the open questions posed by these intriguing structures.


Asunto(s)
Membranas Intracelulares/virología , Replicación Viral/fisiología , Animales , Coronavirus/fisiología , Enterovirus/fisiología , Hepacivirus/fisiología , Hepatitis C/virología , Interacciones Microbiota-Huesped/fisiología , Humanos , Norovirus/fisiología , Biogénesis de Organelos , ARN Viral , Proteínas Virales
3.
mBio ; 10(3)2019 06 11.
Artículo en Inglés | MEDLINE | ID: mdl-31186324

RESUMEN

Enterovirus genome replication occurs at virus-induced structures derived from cellular membranes and lipids. However, the origin of these replication organelles (ROs) remains uncertain. Ultrastructural evidence of the membrane donor is lacking, suggesting that the sites of its transition into ROs are rare or fleeting. To overcome this challenge, we combined live-cell imaging and serial block-face scanning electron microscopy of whole cells to capture emerging enterovirus ROs. The first foci of fluorescently labeled viral protein correlated with ROs connected to the endoplasmic reticulum (ER) and preceded the appearance of ROs stemming from the trans-Golgi network. Whole-cell data sets further revealed striking contact regions between ROs and lipid droplets that may represent a route for lipid shuttling to facilitate RO proliferation and genome replication. Our data provide direct evidence that enteroviruses use ER and then Golgi membranes to initiate RO formation, demonstrating the remarkable flexibility with which enteroviruses usurp cellular organelles.IMPORTANCE Enteroviruses are causative agents of a range of human diseases. The replication of these viruses within cells relies on specialized membranous structures termed replication organelles (ROs) that form during infection but whose origin remains elusive. To capture the emergence of enterovirus ROs, we use correlative light and serial block-face scanning electron microscopy, a powerful method to pinpoint rare events in their whole-cell ultrastructural context. RO biogenesis was found to occur first at ER and then at Golgi membranes. Extensive contacts were found between early ROs and lipid droplets (LDs), which likely serve to provide LD-derived lipids required for replication. Together, these data establish the dual origin of enterovirus ROs and the chronology of their biogenesis at different supporting cellular membranes.


Asunto(s)
Retículo Endoplásmico/ultraestructura , Enterovirus/fisiología , Aparato de Golgi/ultraestructura , Microscopía Electrónica de Rastreo , Replicación Viral , Animales , Chlorocebus aethiops , Retículo Endoplásmico/virología , Infecciones por Enterovirus , Aparato de Golgi/virología , Procesamiento de Imagen Asistido por Computador , Gotas Lipídicas/ultraestructura , Células Vero
4.
Biochim Biophys Acta Proteins Proteom ; 1866(9): 973-981, 2018 09.
Artículo en Inglés | MEDLINE | ID: mdl-29908328

RESUMEN

Electron cryotomography (cryo-ET) is an imaging technique uniquely suited to the study of bacterial ultrastructure and cell biology. Recent years have seen a surge in structural and cell biology research on bacteria using cryo-ET. This research has driven major technical developments in the field, with applications emerging to address a wide range of biological questions. In this review, we explore the diversity of cryo-ET approaches used for structural and cellular microbiology, with a focus on in situ localization and structure determination of macromolecules. The first section describes strategies employed to locate target macromolecules within large cellular volumes. Next, we explore methods to study thick specimens by sample thinning. Finally, we review examples of macromolecular structure determination in a cellular context using cryo-ET. The examples outlined serve as powerful demonstrations of how the cellular location, structure, and function of any bacterial macromolecule of interest can be investigated using cryo-ET.


Asunto(s)
Bacterias/ultraestructura , Proteínas Bacterianas/análisis , Sustancias Macromoleculares/análisis , Proteínas Bacterianas/ultraestructura , Microscopía por Crioelectrón/métodos , Tomografía con Microscopio Electrónico/métodos , Sustancias Macromoleculares/ultraestructura , Técnicas Microbiológicas
5.
Cell Rep ; 21(3): 587-599, 2017 Oct 17.
Artículo en Inglés | MEDLINE | ID: mdl-29045829

RESUMEN

Enteroviruses reorganize cellular endomembranes into replication organelles (ROs) for genome replication. Although enterovirus replication depends on phosphatidylinositol 4-kinase type IIIß (PI4KB), its role, and that of its product, phosphatidylinositol 4-phosphate (PI4P), is only partially understood. Exploiting a mutant coxsackievirus resistant to PI4KB inhibition, we show that PI4KB activity has distinct functions both in proteolytic processing of the viral polyprotein and in RO biogenesis. The escape mutation rectifies a proteolytic processing defect imposed by PI4KB inhibition, pointing to a possible escape mechanism. Remarkably, under PI4KB inhibition, the mutant virus could replicate its genome in the absence of ROs, using instead the Golgi apparatus. This impaired RO biogenesis provided an opportunity to investigate the proposed role of ROs in shielding enteroviral RNA from cellular sensors. Neither accelerated sensing of viral RNA nor enhanced innate immune responses was observed. Together, our findings challenge the notion that ROs are indispensable for enterovirus genome replication and immune evasion.


Asunto(s)
Enterovirus/genética , Enterovirus/fisiología , Genoma Viral/genética , Antígenos de Histocompatibilidad Menor/metabolismo , Orgánulos/metabolismo , Fosfotransferasas (Aceptor de Grupo Alcohol)/metabolismo , ARN Viral/biosíntesis , ARN Viral/genética , Replicación Viral , Antivirales/metabolismo , Enterovirus/crecimiento & desarrollo , Aparato de Golgi/metabolismo , Aparato de Golgi/ultraestructura , Células HeLa , Humanos , Proteolisis , Proteínas Virales/metabolismo
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