RESUMEN
During development, inflammation or tissue injury, macrophages may successively engulf and process multiple apoptotic corpses via efferocytosis to achieve tissue homeostasis1. How macrophages may rapidly adapt their transcription to achieve continuous corpse uptake is incompletely understood. Transcriptional pause/release is an evolutionarily conserved mechanism, in which RNA polymerase (Pol) II initiates transcription for 20-60 nucleotides, is paused for minutes to hours and is then released to make full-length mRNA2. Here we show that macrophages, within minutes of corpse encounter, use transcriptional pause/release to unleash a rapid transcriptional response. For human and mouse macrophages, the Pol II pause/release was required for continuous efferocytosis in vitro and in vivo. Interestingly, blocking Pol II pause/release did not impede Fc receptor-mediated phagocytosis, yeast uptake or bacterial phagocytosis. Integration of data from three genomic approaches-precision nuclear run-on sequencing, RNA sequencing, and assay for transposase-accessible chromatin using sequencing (ATAC-seq)-on efferocytic macrophages at different time points revealed that Pol II pause/release controls expression of select transcription factors and downstream target genes. Mechanistic studies on transcription factor EGR3, prominently regulated by pause/release, uncovered EGR3-related reprogramming of other macrophage genes involved in cytoskeleton and corpse processing. Using lysosomal probes and a new genetic fluorescent reporter, we identify a role for pause/release in phagosome acidification during efferocytosis. Furthermore, microglia from egr3-deficient zebrafish embryos displayed reduced phagocytosis of apoptotic neurons and fewer maturing phagosomes, supporting defective corpse processing. Collectively, these data indicate that macrophages use Pol II pause/release as a mechanism to rapidly alter their transcriptional programs for efficient processing of the ingested apoptotic corpses and for successive efferocytosis.
Asunto(s)
Eferocitosis , Macrófagos , ARN Polimerasa II , Elongación de la Transcripción Genética , Animales , Humanos , Masculino , Ratones , Apoptosis , Citoesqueleto/metabolismo , Proteína 3 de la Respuesta de Crecimiento Precoz/deficiencia , Proteína 3 de la Respuesta de Crecimiento Precoz/genética , Eferocitosis/genética , Concentración de Iones de Hidrógeno , Macrófagos/inmunología , Macrófagos/metabolismo , Neuronas/metabolismo , Fagosomas/metabolismo , ARN Polimerasa II/metabolismo , Factores de Transcripción/genética , Pez Cebra/embriología , Pez Cebra/genética , Factores de TiempoRESUMEN
Caspases regulate cell death programs in response to environmental stresses, including infection and inflammation, and are therefore critical for the proper operation of the mammalian immune system. Caspase-8 is necessary for optimal production of inflammatory cytokines and host defense against infection by multiple pathogens including Yersinia, but whether this is due to death of infected cells or an intrinsic role of caspase-8 in TLR-induced gene expression is unknown. Caspase-8 activation at death signaling complexes results in its autoprocessing and subsequent cleavage and activation of its downstream apoptotic targets. Whether caspase-8 activity is also important for inflammatory gene expression during bacterial infection has not been investigated. Here, we report that caspase-8 plays an essential cell-intrinsic role in innate inflammatory cytokine production in vivo during Yersinia infection. Unexpectedly, we found that caspase-8 enzymatic activity regulates gene expression in response to bacterial infection as well as TLR signaling independently of apoptosis. Using newly-generated mice in which caspase-8 autoprocessing is ablated (Casp8DA/DA), we now demonstrate that caspase-8 enzymatic activity, but not autoprocessing, mediates induction of inflammatory cytokines by bacterial infection and a wide variety of TLR stimuli. Because unprocessed caspase-8 functions in an enzymatic complex with its homolog cFLIP, our findings implicate the caspase-8/cFLIP heterodimer in control of inflammatory cytokines during microbial infection, and provide new insight into regulation of antibacterial immune defense.
Asunto(s)
Caspasa 8/inmunología , Citocinas/biosíntesis , Inmunidad Innata/inmunología , Transducción de Señal/inmunología , Yersiniosis/inmunología , Animales , Apoptosis , Caspasa 8/metabolismo , Modelos Animales de Enfermedad , Ensayo de Inmunoadsorción Enzimática , Citometría de Flujo , Regulación de la Expresión Génica/inmunología , Técnicas de Silenciamiento del Gen , Ratones , Ratones Endogámicos C57BL , Reacción en Cadena de la Polimerasa , Receptores Toll-Like/inmunologíaRESUMEN
Innate immune responses that are crucial for control of infection are often targeted by microbial pathogens. Blockade of NF-κB and MAPK signaling by the Yersinia virulence factor YopJ inhibits cytokine production by innate immune cells but also triggers cell death. This cell death requires RIPK1 kinase activity and caspase-8, which are engaged by TLR4 and the adaptor protein TRIF. Nevertheless, TLR4- and TRIF-deficient cells undergo significant apoptosis, implicating TLR4/TRIF-independent pathways in the death of Yersinia-infected cells. In this article, we report a key role for TNF/TNFR1 in Yersinia-induced cell death of murine macrophages, which occurs despite the blockade of NF-κB and MAPK signaling imposed by Yersinia on infected cells. Intriguingly, direct analysis of YopJ injection revealed a heterogeneous population of injection-high and injection-low cells, and demonstrated that TNF expression came from the injection-low population. Moreover, TNF production by this subpopulation was necessary for maximal apoptosis in the population of highly injected cells, and TNFR-deficient mice displayed enhanced susceptibility to Yersinia infection. These data demonstrate an important role for collaboration between TNF and pattern recognition receptor signals in promoting maximal apoptosis during bacterial infection, and demonstrate that heterogeneity in virulence factor injection and cellular responses play an important role in promoting anti-Yersinia immune defense.
Asunto(s)
Proteínas Adaptadoras del Transporte Vesicular/metabolismo , Apoptosis , Macrófagos/microbiología , Macrófagos/fisiología , Factores de Necrosis Tumoral/metabolismo , Yersiniosis/inmunología , Yersinia pseudotuberculosis/patogenicidad , Animales , Proteínas Bacterianas/genética , Caspasa 1/metabolismo , Muerte Celular , Inmunidad Innata , L-Lactato Deshidrogenasa/metabolismo , Ratones , Plásmidos/genética , Transducción de Señal , Receptor Toll-Like 4/inmunología , Factores de Necrosis Tumoral/deficiencia , Factores de Necrosis Tumoral/inmunología , Yersinia pseudotuberculosis/inmunologíaRESUMEN
The NKG2D receptor is expressed on the surface of NK, T, and macrophage lineage cells and plays an important role in antiviral and antitumor immunity. To evade NKG2D recognition, herpesviruses block the expression of NKG2D ligands on the surface of infected cells using a diverse repertoire of sabotage methods. Cowpox and monkeypox viruses have taken an alternate approach by encoding a soluble NKG2D ligand, the orthopoxvirus major histocompatibility complex (MHC) class I-like protein (OMCP), which can block NKG2D-mediated cytotoxicity. This approach has the advantage of targeting a single conserved receptor instead of numerous host ligands that exhibit significant sequence diversity. Here, we show that OMCP binds the NKG2D homodimer as a monomer and competitively blocks host ligand engagement. We have also determined the 2.25-Å-resolution crystal structure of OMCP from the cowpox virus Brighton Red strain, revealing a truncated MHC class I-like platform domain consisting of a beta sheet flanked with two antiparallel alpha helices. OMCP is generally similar in structure to known host NKG2D ligands but has notable variations in regions typically used to engage NKG2D. Additionally, the determinants responsible for the 14-fold-higher affinity of OMCP for human than for murine NKG2D were mapped to a single loop in the NKG2D ligand-binding pocket.
Asunto(s)
Virus de la Viruela Vacuna/química , Subfamilia K de Receptores Similares a Lectina de Células NK/química , Proteínas Virales/química , Secuencia de Aminoácidos , Animales , Virus de la Viruela Vacuna/patogenicidad , Cristalografía por Rayos X , Humanos , Ratones , Modelos Moleculares , Datos de Secuencia Molecular , Subfamilia K de Receptores Similares a Lectina de Células NK/metabolismo , Unión Proteica , Estructura Cuaternaria de Proteína , Homología de Secuencia de Aminoácido , Proteínas Virales/metabolismoRESUMEN
Any pathogen worth its salt has mechanisms to evade, subvert, or antagonize host innate immune responses induced by pattern recognition receptors. Resistance against such pathogens therefore requires alternative means to activate protective immune responses. Intriguingly, the receptors that regulate antimicrobial gene expression are coupled to cell death pathways that are activated by blockade of NF-κB and MAPK signaling. In this review, we discuss the regulation of apoptosis in response to pathogen disruption of immune signaling and the role of this cell death response in protection against such pathogens. Stanley often observed that bacterial pathogens are excellent cell biologists and immunologists, and he noted that studying pathogen-host interactions could pave the way to new insights about host biology. Indeed, how Yersinia and other pathogens disrupt innate immune signaling has provided new insight into these pathways and revealed new ways to think about immunogenic properties of apoptosis during bacterial infection.
Asunto(s)
Infecciones Bacterianas/inmunología , Procesamiento Proteico-Postraduccional , Proteína Serina-Treonina Quinasas de Interacción con Receptores/metabolismo , Yersiniosis/inmunología , Yersinia/patogenicidad , Animales , Apoptosis , Infecciones Bacterianas/microbiología , Interacciones Huésped-Patógeno , Humanos , Muerte Celular Inmunogénica , Ratones , FN-kappa B/metabolismo , Receptores de Reconocimiento de Patrones/metabolismo , Transducción de Señal , Yersinia/inmunología , Yersiniosis/microbiologíaRESUMEN
Many pathogens deliver virulence factors or effectors into host cells in order to evade host defenses and establish infection. Although such effector proteins disrupt critical cellular signaling pathways, they also trigger specific antipathogen responses, a process termed "effector-triggered immunity." The Gram-negative bacterial pathogen Yersinia inactivates critical proteins of the NF-κB and MAPK signaling cascade, thereby blocking inflammatory cytokine production but also inducing apoptosis. Yersinia-induced apoptosis requires the kinase activity of receptor-interacting protein kinase 1 (RIPK1), a key regulator of cell death, NF-κB, and MAPK signaling. Through the targeted disruption of RIPK1 kinase activity, which selectively disrupts RIPK1-dependent cell death, we now reveal that Yersinia-induced apoptosis is critical for host survival, containment of bacteria in granulomas, and control of bacterial burdens in vivo. We demonstrate that this apoptotic response provides a cell-extrinsic signal that promotes optimal innate immune cytokine production and antibacterial defense, demonstrating a novel role for RIPK1 kinase-induced apoptosis in mediating effector-triggered immunity to circumvent pathogen inhibition of immune signaling.
Asunto(s)
Apoptosis/inmunología , Proteína Serina-Treonina Quinasas de Interacción con Receptores/inmunología , Infecciones por Yersinia pseudotuberculosis/inmunología , Yersinia pseudotuberculosis/inmunología , Animales , Apoptosis/genética , Citocinas/inmunología , Citocinas/metabolismo , Resistencia a la Enfermedad/genética , Resistencia a la Enfermedad/inmunología , Interacciones Huésped-Patógeno/inmunología , Inmunidad Innata/genética , Inmunidad Innata/inmunología , Sistema de Señalización de MAP Quinasas/genética , Sistema de Señalización de MAP Quinasas/inmunología , Macrófagos/inmunología , Macrófagos/metabolismo , Macrófagos/microbiología , Ratones Endogámicos C57BL , Ratones Noqueados , Modelos Inmunológicos , FN-kappa B/inmunología , FN-kappa B/metabolismo , Proteína Serina-Treonina Quinasas de Interacción con Receptores/genética , Proteína Serina-Treonina Quinasas de Interacción con Receptores/metabolismo , Transducción de Señal/genética , Transducción de Señal/inmunología , Análisis de Supervivencia , Yersinia pseudotuberculosis/fisiología , Infecciones por Yersinia pseudotuberculosis/genética , Infecciones por Yersinia pseudotuberculosis/microbiologíaRESUMEN
The abundance of innate and adaptive immune cells that reside together with trillions of beneficial commensal microorganisms in the mammalian gastrointestinal tract requires barrier and regulatory mechanisms that conserve host-microbial interactions and tissue homeostasis. This homeostasis depends on the diverse functions of intestinal epithelial cells (IECs), which include the physical segregation of commensal bacteria and the integration of microbial signals. Hence, IECs are crucial mediators of intestinal homeostasis that enable the establishment of an immunological environment permissive to colonization by commensal bacteria. In this Review, we provide a comprehensive overview of how IECs maintain host-commensal microbial relationships and immune cell homeostasis in the intestine.
Asunto(s)
Células Epiteliales/inmunología , Interacciones Huésped-Patógeno/inmunología , Mucosa Intestinal/citología , Mucosa Intestinal/inmunología , Inmunidad Adaptativa , Animales , Células Presentadoras de Antígenos/inmunología , Homeostasis/inmunología , Humanos , Inmunidad Innata , Intestino Grueso/citología , Intestino Grueso/inmunología , Intestino Delgado/citología , Intestino Delgado/inmunología , Linfocitos/inmunología , Ratones , Transducción de Señal/inmunología , SimbiosisRESUMEN
The predominantly epithelial cell-derived cytokines IL-25, IL-33, and thymic stromal lymphopoietin (TSLP) can promote CD4(+) Th2 cell-dependent immunity, inflammation, and tissue repair at barrier surfaces through the induction of multiple innate immune cell populations. IL-25 and IL-33 were previously shown to elicit four innate cell populations, named natural helper cells, nuocytes, innate type 2 helper cells, and multipotent progenitor type 2 (MPP(type2)) cells, now collectively termed group 2 innate lymphoid cells (ILC2). In contrast to other types of ILC2, MPP(type2) cells exhibit multipotent potential and do not express T1/ST2 or IL-7Rα, suggesting that MPP(type2) cells may be a distinct population. Here, we show that IL-33 elicits robust ILC2 responses, whereas IL-25 predominantly promotes MPP(type2) cell responses at multiple tissue sites with limited effects on ILC2 responses. MPP(type2) cells were distinguished from ILC2 by their differential developmental requirements for specific transcription factors, distinct genome-wide transcriptional profile, and functional potential. Furthermore, IL-25-induced MPP(type2) cells promoted Th2 cytokine-associated inflammation after depletion of ILC2. These findings indicate that IL-25 simultaneously elicits phenotypically and functionally distinct innate lymphoid- and nonlymphoid-associated cell populations and implicate IL-25-elicited MPP(type2) cells and extramedullary hematopoiesis in the promotion of Th2 cytokine responses at mucosal surfaces.