Staphylococcus aureus forms biofilms on biotic and abiotic surfaces, enabling persistent infections that evade immune clearance. Although many S. aureus strains can produce the biofilm-associated exopolysaccharide, poly-β-1,6-N-acetyl-D-glucosamine (PNAG), they often form protein-dominated biofilm matrices in vitro, leaving a role for PNAG unclear. Using intravital imaging in a foreign-body infection model, we found that PNAG in biofilms hinders neutrophil access and delays bacterial clearance. Neutrophil elastase was crucial for eventual biofilm clearance. In vivo PNAG labeling revealed that the exopolysaccharide forms a physical barrier that prevents neutrophils from reaching bacterial clusters. In contrast, PNAG-deficient strains permitted greater neutrophil infiltration and were cleared more rapidly than wild-type bacteria. Enzymatic degradation of PNAG with the glycoside hydrolases PgaB or dispersin B (DspB) disrupted the biofilm, restored neutrophil access, and enhanced bacterial clearance. Together, these findings identify PNAG as a key structural barrier protecting S. aureus from innate immunity and suggest that targeting PNAG with glycoside hydrolases may offer a promising therapeutic strategy for biofilm-associated S. aureus infections.IMPORTANCEThe biofilm-associated exopolysaccharide PNAG is frequently expressed in Staphylococcus aureus clinical isolates but is often reduced during laboratory passage, with expression highly dependent on growth conditions. While in vitro analyses have revealed that PNAG is not a dominant matrix component, our intravital imaging of community-acquired methicillin-resistant S. aureus (CA-MRSA) skin infections demonstrates that PNAG is robustly produced in vivo and plays a central role in immune evasion. These findings highlight how PNAG function in tissue environments may be non-obvious in vitro and underscore the need for in vivo models to understand biofilm pathogenesis. By revealing PNAG as a key barrier to neutrophil-mediated clearance, this work positions PNAG and PNAG-targeting glycoside hydrolases as compelling therapeutic candidates for treating antibiotic-resistant S. aureus biofilm infections, a major cause of morbidity in both healthcare and community settings.
Concussions can cause debilitating symptoms despite no evidence of structural changes on diagnostic imaging. The cellular events occurring in the brain parenchyma following concussion, especially repetitive concussion, are not well elucidated. We developed a concussion model to induce a confined area of injury without causing frank hemorrhage. Using intravital microscopy, we observe activation of the vasculature that supported neutrophil rolling and platelet adhesion but no overt cellular recruitment from blood into brain parenchyma. Activated resident, not monocyte-derived, macrophages relocated to the injury site via Cx3cr1 and phagocytosed dysfunctional/detached astrocytes via scavenger receptors and TLR4, particularly after repetitive concussion. Additionally, microglia sealed areas of blood-brain barrier (BBB) disruption via purinergic pathways. Using a splitCre approach to dissect microglia and perivascular macrophages, we show that microglial invasion into the injury site is key to reducing BBB disruption. Our data suggest that microglia repair the BBB following concussion, but in doing so significantly alter the cellular ultrastructure of the brain milieu.
Pathogens have evolved to be highly adapted to their natural host. Community-associated methicillin-resistant Staphylococcus aureus USA300, for instance, is a lineage responsible for the epidemic of skin and soft tissue infections (SSTIs) in humans. Owing to its human tropism, mechanisms that enabled the rise of USA300 as a major skin pathogen remain incompletely defined. By leveraging a rodent-adapted strain of S. aureus, we developed a natural model of SSTIs. We found that LukMF', a pore-forming leukocidin homolog to the human-specific LukSF-PV toxin, drives skin pathology in mice. LukMF' lyses neutrophils via the chemokine receptor CCR1, which in turn fuels inflammatory pathology and microbial survival within the infectious nidus. Ablation of CCR1, depletion of neutrophils, or vaccination with LukMF' all protected mice from skin pathology. Thus, these data support epidemiological studies linking leukocidins with human SSTIs and highlight the power of natural models to unearth potential targets to curtail infections.
Modulating mechanotransduction by inhibiting yes-associated protein (YAP) in mice yields wound regeneration without scarring. However, rodents are loose-skinned and fail to recapitulate key aspects of human wound repair. We sought to elucidate the effects of YAP inhibition in red Duroc pig wounds, the most human-like model of scarring. We show that one-time treatment with verteporfin, a YAP inhibitor, immediately after wounding is sufficient to prevent scarring and to drive wound regeneration in pigs. By performing single-cell RNA sequencing (scRNA-seq) on porcine wounds in conjunction with spatial proteomic analysis, we found perturbations in fibroblast dynamics with verteporfin treatment and the presence of putative pro-regenerative/profibrotic fibroblasts enriched in regenerating/scarring pig wounds, respectively. We also identified differences in enriched myeloid cell subpopulations after treatment and linked this observation to increased elaboration of interleukin-33 (IL-33) in regenerating wounds. Finally, we validated our findings in a xenograft wound model containing human neonatal foreskin engrafted onto nude mice and used scRNA-seq of human wound cells to draw parallels with fibroblast subpopulation dynamics in porcine wounds. Collectively, our findings provide support for the clinical translation of local mechanotransduction inhibitors to prevent human skin scarring, and they clarify a YAP/IL-33 signaling axis in large animal wound regeneration.
Immune-derived hunger hormones restore tissue after infection.
Staphylococcus aureus ( S. aureus ) can form biofilms on biotic or abiotic surfaces making biofilm infections a relevant clinical problem. Biofilms can evade immunity and resist antimicrobial treatment, and as such an understanding of biofilm infection in vivo is necessary to inform new therapeutics. Using a mouse model of S. aureus foreign-body skin infection and intravital microscopy, we imaged the interactions between neutrophils and S. aureus biofilm. We observed that neutrophils were separated from bacteria by a biofilm matrix composed of the polysaccharide intercellular adhesin (PIA), an exopolysaccharide chemically designated as poly-N-acetylglucosamine (PNAG) that is produced by enzymatic machinery encoded by the icaADBC operon. Infection with icaADBC-deficient S. aureus strains led to increased neutrophil infiltration and access to bacteria and resulted in full clearance of infection by 7 days. Moreover, enzymatic treatment with PgaB, which hydrolyzes partially deacetylated PNAG, was shown to disaggregate the biofilm giving neutrophils access into the infection site to improve clearance. Taken together, our results show that PNAG shelters S. aureus biofilms from innate host defense, and that targeting the biofilm matrix with glycoside hydrolases is a promising therapeutic avenue to treat S. aureus biofilm infections.Author Summary Staphylococcus aureus is a major cause of biofilm-associated infections, which pose a major threat to human health. A biofilm is difficult to treat since bacteria are protected from antimicrobials within an extracellular matrix. This study is the first to show that the PgaB enzyme, a glycoside hydrolase, can disrupt the S. aureus biofilm matrix in vivo. Disrupting the biofilm matrix with PgaB gives neutrophils access to bacteria for elimination.### Competing Interest StatementThe authors have declared no competing interest.
AbstractStaphylococcus aureus(S. aureus) can form biofilms on biotic or abiotic surfaces making biofilm infections a relevant clinical problem. Biofilms can evade immunity and resist antimicrobial treatment, and as such an understanding of biofilm infectionin vivois necessary to inform new therapeutics. Using a mouse model ofS. aureusforeign-body skin infection and intravital microscopy, we imaged the interactions between neutrophils andS. aureusbiofilm. We observed that neutrophils were separated from bacteria by a biofilm matrix composed of the polysaccharide intercellular adhesin (PIA), an exopolysaccharide chemically designated as poly-N-acetylglucosamine (PNAG) that is produced by enzymatic machinery encoded by theicaADBCoperon. Infection withicaADBC-deficient S. aureusstrains led to increased neutrophil infiltration and access to bacteria and resulted in full clearance of infection by 7 days. Moreover, enzymatic treatment with PgaB, which hydrolyzes partially deacetylated PNAG, was shown to disaggregate the biofilm giving neutrophils access into the infection site to improve clearance. Taken together, our results show that PNAG sheltersS. aureusbiofilms from innate host defense, and that targeting the biofilm matrix with glycoside hydrolases is a promising therapeutic avenue to treatS. aureusbiofilm infections.Author SummaryStaphylococcus aureusis a major cause of biofilm-associated infections, which pose a major threat to human health. A biofilm is difficult to treat since bacteria are protected from antimicrobials within an extracellular matrix. This study is the first to show that the PgaB enzyme, a glycoside hydrolase, can disrupt theS. aureusbiofilm matrix in vivo. Disrupting the biofilm matrix with PgaB gives neutrophils access to bacteria for elimination.
Severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) enters the respiratory tract, where it infects the alveoli epithelial lining. However, patients have sequelae that extend well beyond the alveoli into the pulmonary vasculature and, perhaps, beyond to the brain and other organs. Because of the dynamic events within blood vessels, histology does not report platelet and neutrophil behavior. Because of the rapid nontranscriptional response of these cells, neither single-cell RNA sequencing nor proteomics report robustly on their critical behaviors. We used intravital microscopy in level-3 containment to examine the pathogenesis of SARS-CoV-2 within 3 organs in mice expressing human angiotensin converting enzyme 2 (ACE-2) ubiquitously (CAG-AC-70) or on epithelium (K18-promoter). Using a neon-green SARS-CoV-2, we observed both the epithelium and endothelium infected in AC70 mice but only the epithelium in K18 mice. There were increased neutrophils in the microcirculation but not in the alveoli of the lungs of AC70 mice. Platelets formed large aggregates in the pulmonary capillaries. Despite only neurons being infected within the brain, profound neutrophil adhesion forming the nidus of large platelet aggregates were observed in the cerebral microcirculation, with many nonperfused microvessels. Neutrophils breached the brain endothelial layer associated with a significant disruption of the blood-brain-barrier. Despite ubiquitous ACE-2 expression, CAG-AC-70 mice had very small increases in blood cytokine, no increase in thrombin, no infected circulating cells, and no liver involvement suggesting limited systemic effects. In summary, our imaging of SARSCoV-2-infected mice gave direct evidence that there is a significant perturbation locally in the lung and brain microcirculation induced by local viral infection leading to increased local inflammation and thrombosis in these organs.
Our oral cavity has evolved a capacity for rapid healing without scarring. In this issue of JEM, Ko et al. (2022. J. Exp. Med.https://doi.org/10.1084/jem.20221350) identify a Prx1+ fibroblast progenitor that drives oral regeneration by summoning pro-healing TGFβ1+ macrophages.
Staphylococcus aureus (S. aureus) skin infection models have been widely used by researchers for decades in the fields of immunology and microbiology to study host-pathogen interactions. However, despite thousands of published articles on S. aureus skin infections, we still do not fully understand how infections resolve in vivo. Furthermore, the consensus is that most researchers most often infect mice using high doses of bacteria in planktonic or free form (summarised in Ref. 1), at concentrations (millions to billions of CFU) that cause enormous tissue damage. The high-dose infection causes a spectacular neutrophil response that is already well characterised.2 In this unrealistic infection scenario, neutrophils cause extensive bystander tissue damage while no or very few other myeloid cells including monocytes are recruited. The prevailing view is that the few monocytes somehow help neutrophils eradicate the infection. We decided to utilise a low inoculum of S. aureus (500 CFU) and attach it to an agar bead to model a foreign-body infection. This infection model formed a biofilm which is common for S. aureus during clinical infections and surprisingly recruited equal numbers of both neutrophils and monocytes to the infection site. While neutrophils were responsible for capturing and killing S. aureus, the functional role for recruited monocytes was not known. Our group had previously investigated the recruitment, fate and function of various immune cells during a sterile injury using a small thermal injury model in the liver.3, 4 Following liver injury, innate immune cells such as neutrophils and monocytes were recruited to the site of injury, and while neutrophils cleared debris from the injury site, monocytes surrounded the injury and were shown to convert from a classical to alternatively activated monocyte critical for tissue repair.5 Intravital microscopy of the bacterial infection in the skin revealed a revealed a differential localisation between neutrophils and monocytes: neutrophils inside and monocytes surrounding the infection site, and correspondingly only neutrophils interacting with S. aureus. By tracking the monocyte fate, we visualised the monocytes maturing to macrophages and identified these monocyte-derived cells moved into the injured site well beyond the time-course of bacterial clearance. In our study, we used complimentary methods of genetically modified mice, which lacked the chemokine receptor CCR2 involved in monocyte recruitment, as well as anti-CCR2 depletion which depleted monocytes from circulation, to interrogate the functional role of recruited monocytes. In these monocyte-deficient mice, bacterial clearance was equally efficient regardless of presence of absence of monocyte raising the question what are monocyte-derived macrophages doing at the wound. Imaging these wounds at 14 days post-infection revealed that the wounds of monocyte-deficient mice were hypervascularised, and wounds were unable to heal at 30 days post-infection indicative of a aberrant healing and a perpetual wound in monocyte-deficient mice. The delayed healing phenotype at 30 days post-infection with a thick collagen capsule was evident in the CCR2-deficient mice. Furthermore, many of the CCR2-deficient wounds were still hypervascularised at 30 days post-infection. This was an interesting observation since patients with chronic, hypertrophic scars or keloid scars are often hypervascularised compared to normal skin.6 We pursued this mechanism of dysregulated angiogenesis and delayed healing and found that leptin, a hormone involved in satiety and metabolism, was over-produced by adipocytes in the wounds of monocyte-deficient mice. Leptin was able to directly induce angiogenesis in the wounds of wild-type mice by acting on leptin receptor positive endothelial cells. The angiogenic response was able to be reduced in monocyte-deficient mice by administrating a leptin antagonist, as well as the counteracting hormone, ghrelin. Unexpectedly, the recruited monocytes were a source of ghrelin at the site of infection and by performing bone marrow transfers of ghrelin-deficient bone marrow into wild-type recipients, we showed that immune-derived ghrelin was critical for angiogenesis and healing. The results of this study may extend to cancer. Excessive angiogenesis is observed in solid tumours, where tumour progression from benign to malignant tumours can often be associated with an angiogenic switch from quiescent to proliferative vasculature.7 This angiogenic switch is often driven by VEGF but also other angiogenic mediators such as inflammatory cytokines, MMPs, and adipokines.7 In our protein screen for inflammatory mediators, MMPs and other angiogenic factors, we did not see any differences except for increased levels of leptin in wounds of CCR2-deficient mice compared to wild-type mice. Indeed, leptin-induced angiogenesis is a common occurrence in tumours and leptin levels are elevated in several types of cancers from human patients.8 Our findings that monocyte-derived ghrelin is critical for regulating angiogenesis in a mouse model of infection may be translatable to the human context considering human monocytes have been shown to express ghrelin at the mRNA level9 (Figure 1). However, more studies are needed to identify monocyte populations at sites of human S. aureus skin infections, and this can be done by collecting tissue biopsies of skin infections and performing immunostaining for monocytes and ghrelin. We would predict that patients with increased levels of leptin, for example obese patients or patients with metabolic disorders might be more likely to have less efficient wound healing. Indeed, it is well known that patients with chronic diseases and co-morbidities are at a higher risk for S. aureus infections.10 For example, these patients are more likely to develop diabetic foot ulcers which often leads to a chronic wound that does not heal. Future directions using the S. aureus bead infection model would be to determine whether co-morbidities such as diabetes or obesity would further delay bacterial clearance and/or tissue repair. The authors declare no conflict of interest.
During infection, inflammatory monocytes are thought to be key for bacterial eradication, but this is hard to reconcile with the large numbers of neutrophils that are recruited for each monocyte that migrates to the afflicted tissue, and the much more robust microbicidal functions of the neutrophils. However, unlike neutrophils, monocytes have the capacity to convert to situationally specific macrophages that may have critical functions beyond infection control 1 , 2 . Here, using a foreign body coated with Staphylococcus aureus and imaging over time from cutaneous infection to wound resolution, we show that monocytes and neutrophils are recruited in similar numbers with low-dose infection but not with high-dose infection, and form a localization pattern in which monocytes surround the infection site, whereas neutrophils infiltrate it. Monocytes did not contribute to bacterial clearance but converted to macrophages that persisted for weeks after infection, regulating hypodermal adipocyte expansion and production of the adipokine hormone leptin. In infected monocyte-deficient mice there was increased persistent hypodermis thickening and an elevated leptin level, which drove overgrowth of dysfunctional blood vasculature and delayed healing, with a thickened scar. Ghrelin, which opposes leptin function 3 , was produced locally by monocytes, and reduced vascular overgrowth and improved healing post-infection. In sum, we find that monocytes function as a cellular rheostat by regulating leptin levels and revascularization during wound repair.
Biofilms that form on implanted medical devices cause recalcitrant infections. The early events enabling contaminating bacteria to evade immune clearance, before a mature biofilm is established, are poorly understood. Live imaging in vitro demonstrated that Staphylococcus aureus sparsely inoculated on an abiotic surface can go undiscovered by human neutrophils, grow, and form aggregates. Small (~50 μm2) aggregates of attached bacteria resisted killing by human neutrophils, resulting in neutrophil lysis and bacterial persistence. In vivo, neutrophil recruitment to a peritoneal implant was spatially heterogenous, with some bacterial aggregates remaining undiscovered by neutrophils after 24 h. Intravital imaging in mouse skin revealed that attached S. aureus aggregates grew and remained undiscovered by neutrophils for up to 3 h. These results suggest a model in which delayed recruitment of neutrophils to an abiotic implant presents a critical window in which bacteria establish a nascent biofilm and acquire tolerance to neutrophil killing.
Staphylococcus aureus virulence has been associated with the production of phenol-soluble modulins (PSMs). These PSMs have distinct virulence functions and are known to activate, attract and lyse neutrophils. These PSM-associated biological functions are inhibited by lipoproteins in vitro. We set out to address whether lipoproteins neutralize staphylococcal PSM-associated virulence in experimental animal models. Serum from both LCAT an ABCA1 knockout mice strains which are characterised by near absence of high-density lipoprotein (HDL) levels, was shown to fail to protect against PSM-induced neutrophil activation and lysis in vitro. Importantly, PSM-induced peritonitis in LCAT-/- mice resulted in increased lysis of resident peritoneal macrophages and enhanced neutrophil recruitment into the peritoneal cavity. Notably, LCAT-/- mice were more likely to succumb to staphylococcal bloodstream infections in a PSM-dependent manner. Plasma from homozygous carriers of ABCA1 variants characterized by very low HDL-cholesterol levels, was found to be less protective against PSM-mediated biological functions compared to healthy humans. Therefore, we conclude that lipoproteins present in blood can protect against staphylococcal PSMs, the key virulence factor of community-associated methicillin resistant S. aureus.
Intracellular infection with the parasite Leishmania major features a state of concomitant immunity in which CD4+ T helper 1 (Th1) cell-mediated immunity against reinfection coincides with a chronic but sub-clinical primary infection. In this setting, the rapidity of the Th1 response at a secondary site of challenge in the skin represents the best correlate of parasite elimination and has been associated with a reversal in Leishmania-mediated modulation of monocytic host cells. Remarkably, the degree to which Th1 cells are absolutely reliant upon the time at which they interact with infected monocytes to mediate their protective effect has not been defined. In the present work, we report that CXCR3-dependent recruitment of Ly6C+ Th1 effector (Th1EFF) cells is indispensable for concomitant immunity and acute (<4 days post-infection) Th1EFF cell-phagocyte interactions are critical to prevent the establishment of a permissive pathogen niche, as evidenced by altered recruitment, gene expression and functional capacity of innate and adaptive immune cells at the site of secondary challenge. Surprisingly, provision of Th1EFF cells after establishment of the pathogen niche, even when Th1 cells were provided in large quantities, abrogated protection, Th1EFF cell accumulation and IFN-γ production, and iNOS production by inflammatory monocytes. These findings indicate that protective Th1 immunity is critically dependent on activation of permissive phagocytic host cells by preactivated Th1EFF cells at the time of infection.
Paracoccidioidomycosis is a systemic fungal disease, considered endemic in Latin America. Its etiological agents, fungi of the Paracoccidioides complex, have restricted geographic habitat, conidia as infecting form, and thermo-dimorphic characteristics. Polymorphonuclear neutrophils (PMNs) are responsible for an important defense response against fungus, releasing Neutrophil Extracellular Traps (NETs), which can wrap and destroy the yeasts. However, it has been described that some pathogens are able to evade from these DNA structures by releasing DNase as an escape mechanism. As different NETs patterns have been identified in PMNs cultures challenged with different isolates of Paracoccidioides brasiliensis, the general objective of this study was to identify if different patterns of NETs released by human PMNs challenged with Pb18 (virulent) and Pb265 (avirulent) isolates would be correlated with fungal ability to produce a DNase-like protein. To this end, PMNs from healthy subjects were isolated and challenged in vitro with both fungal isolates. The production, release, and conformation of NETs in response to the fungi were evaluated by Confocal Microscopy, Scanning Microscopy, and NETs Quantification. The identification of fungal DNase production was assessed by DNase TEST Agar, and the relative gene expression for hypothetical proteins was investigated by RT-qPCR, whose genes had been identified in the fungal genome in the GenBank (PADG_11161 and PADG_08285). It was possible to verify the NETs release by PMNs, showing different NETs formation when in contact with different isolates of the fungus. The Pb18 isolate induced the release of looser, larger, and more looking like degraded NETs compared to the Pb265 isolate, which induced the release of denser and more compact NETs. DNase TEST Agar identified the production of a DNase-like protein, showing that only Pb18 showed the capacity to degrade DNA in these plates. Besides that, we were able to identify that both PADG_08528 and PADG_11161 genes were more expressed during interaction with neutrophil by the virulent isolate, being PADG_08528 highly expressed in these cultures, demonstrating that this gene could have a greater contribution to the production of the protein. Thus, we identified that the virulent isolate is inducing more scattered and loose NETs, probably by releasing a DNase-like protein. This factor could be an important escape mechanism used by the fungus to escape the NETs action.
Skin is one of the most common sites of host immune response against Staphylococcus aureus infection. Here, through a combination of in vitro assays, mouse models, and intravital imaging, we find that S. aureus immune evasion in skin is controlled by a cascade composed of the ArlRS two-component regulatory system and its downstream effector, MgrA. S. aureus lacking either ArlRS or MgrA is less virulent and unable to form correct abscess structure due to de-repression of a giant surface protein, Ebh. These S. aureus mutants also have decreased expression of immune evasion factors (leukocidins, chemotaxis-inhibitory protein of S. aureus [CHIPS], staphylococcal complement inhibitor [SCIN], and nuclease) and are unable to kill neutrophils, block their chemotaxis, degrade neutrophil extracellular traps, and survive direct neutrophil attack. The combination of disrupted abscess structure and reduced immune evasion factors makes S. aureus susceptible to host defenses. ArlRS and MgrA are therefore the main regulators of S. aureus immune evasion and promising treatment targets.
Leishmania is an appealing model organism to study CD4+ T cell-mediated protective immunity against phagosomal pathogens which features localized primary and secondary infection sites with defined innate and adaptive responses. Upon secondary challenge of chronic L. major-infected C57Bl/6 mice, rapid CD4+T effector (TEFF) function via IFN-g-mediated activation of infected monocytes is associated with optimal immunity. However, the requirement for immediate effector function has yet to be demonstrated. Thus, we isolated time as a variable in the delivery of CD4+ TEFF effector function. We adoptively transferred (AT) chronic mouse-derived Ly6C+CD4+TEFFs into naïve recipients immediately (D0) or 4 days (D4) post-L. major challenge. In this time window Leishmania establishes an intracellular niche but does not proliferate. At day 21 post-challenge, D4 AT resulted in a total loss of the parasite control mediated by D0 transfer. To address whether parasite niche establishment modulated Th1 TEFF cell recruitment, we employed intravital imaging. Ag-sp T cells were present in the infected dermis at significantly lower numbers following D4 vs D0 transfer at 4 days post-T cell transfer, indicating a recruitment deficit. Rapid CD4+ Th1 effector function was required for circulating Th1 TEFF cells to capitalize on an early recruitment window associated with cxcl9 and cxcl10 expression and to prevent parasite niche establishment through altered cell recruitment, gene expression, and functional capacity of both innate and adaptive immune cells. Thus, acute TEFF cell availability is required to prevent host immunomodulation by Leishmania and is a key consideration for vaccination against phagosomal pathogens reliant on Th1 immunity.
The impact of T helper (Th) 1 versus Th2 immunity on intracellular infections is attributed to classical versus alternative activation of macrophages leading to resistance or susceptibility. However, observations in multiple infectious settings demonstrate deficiencies in mediators of Th1-Th2 immunity, which have paradoxical or no impact. We report that prior to influencing activation, Th1/Th2 immunity first controls the size of the permissive host cell reservoir. During early Leishmania infection of the skin, IFN-γ- or STAT6-mediated changes in phagocyte activation were counteracted by changes in IFN-γ-mediated recruitment of permissive CCR2+ monocytes. Monocytes were required for early parasite expansion and acquired an alternatively activated phenotype despite the Th1 dermal environment required for their recruitment. Surprisingly, STAT6 did not enhance intracellular parasite proliferation, but rather modulated the size and permissiveness of the monocytic host cell reservoir via regulation of IFN-γ and IL-10. These observations expand our understanding of the Th1-Th2 paradigm during infection.
Every day, megakaryocytes produce billions of platelets that circulate for several days and eventually are cleared by the liver. The exact removal mechanism, however, remains unclear. Loss of sialic acid residues is thought to feature in the aging and clearance of platelets. Using state-of-the-art spinning disk intravital microscopy to delineate the different compartments and cells of the mouse liver, we observed rapid accumulation of desialylated platelets predominantly on Kupffer cells, with only a few on endothelial cells and none on hepatocytes. Kupffer cell depletion prevented the removal of aged platelets from circulation. Ashwell-Morell receptor (AMR) deficiency alone had little effect on platelet uptake. Macrophage galactose lectin (MGL) together with AMR mediated clearance of desialylated or cold-stored platelets by Kupffer cells. Effective clearance is critical, as mice with an aged platelet population displayed a bleeding phenotype. Our data provide evidence that the MGL of Kupffer cells plays a significant role in the removal of desialylated platelets through a collaboration with the AMR, thereby maintaining a healthy and functional platelet compartment.
It has long been appreciated that understanding the interactions between the host and the pathogens that make us sick is critical for the prevention and treatment of disease. As antibiotics become increasingly ineffective, targeting the host and specific bacterial evasion mechanisms are becoming novel therapeutic approaches. The technology used to understand host-pathogen interactions has dramatically advanced over the last century. We have moved away from using simple in vitro assays focused on single-cell events to technologies that allow us to observe complex multicellular interactions in real time in live animals. Specifically, intravital microscopy (IVM) has improved our understanding of infection, from viral to bacterial to parasitic, and how the host immune system responds to these infections. Yet, at the same time it has allowed us to appreciate just how complex these interactions are and that current experimental models still have a number of limitations. In this review, we will discuss the advances in vivo IVM has brought to the study of host-pathogen interactions, focusing primarily on bacterial infections and innate immunity.