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1.
JCI Insight ; 7(2)2022 01 25.
Article in English | MEDLINE | ID: mdl-34908534

ABSTRACT

Acute respiratory distress syndrome (ARDS) is a life-threatening syndrome, constituted by respiratory failure and diffuse alveolar damage that results from dysregulated local and systemic immune activation, causing pulmonary vascular, parenchymal, and alveolar damage. SARS-CoV-2 infection has become the dominant cause of ARDS worldwide, and emerging evidence implicates neutrophils and their cytotoxic arsenal of effector functions as central drivers of immune-mediated lung injury in COVID-19 ARDS. However, key outstanding questions are whether COVID-19 drives a unique program of neutrophil activation or effector functions that contribute to the severe pathogenesis of this pandemic illness and whether this unique neutrophil response can be targeted to attenuate disease. Using a combination of high-dimensional single-cell analysis and ex vivo functional assays of neutrophils from patients with COVID-19 ARDS, compared with those with non-COVID ARDS (caused by bacterial pneumonia), we identified a functionally distinct landscape of neutrophil activation in COVID-19 ARDS that was intrinsically programmed during SARS-CoV-2 infection. Furthermore, neutrophils in COVID-19 ARDS were functionally primed to produce high amounts of neutrophil extracellular traps. Surprisingly, this unique pathological program of neutrophil priming escaped conventional therapy with dexamethasone, thereby revealing a promising target for adjunctive immunotherapy in severe COVID-19.


Subject(s)
COVID-19/immunology , Extracellular Traps/immunology , Neutrophil Activation , Neutrophils/immunology , Respiratory Distress Syndrome/immunology , SARS-CoV-2/immunology , Adult , Aged , Aged, 80 and over , COVID-19/pathology , Female , Humans , Male , Middle Aged , Neutrophils/pathology , Pneumonia, Bacterial/immunology , Pneumonia, Bacterial/pathology , Respiratory Distress Syndrome/pathology , Severity of Illness Index
2.
Redox Biol ; 49: 102225, 2022 02.
Article in English | MEDLINE | ID: mdl-34959099

ABSTRACT

BACKGROUND: Neutrophils play a role in innate immunity and are critical for clearance of Staphylococcus aureus. Current understanding of neutrophil bactericidal effects is that NADPH oxidase produces reactive oxygen species (ROS), mediating bacterial killing. Neutrophils also contain numerous mitochondria; since these organelles lack oxidative metabolism, their function is unclear. We hypothesize that mitochondria in human neutrophils contribute to the bactericidal capacity of S. aureus. METHODS: and Findings: Using human neutrophils isolated from healthy volunteers (n = 13; 7 females, 6 males), we show that mitochondria are critical in the immune response to S. aureus. Using live-cell and fixed confocal, and transmission electron microscopy, we show mitochondrial tagging of bacteria prior to ingestion and surrounding of phagocytosed bacteria immediately upon engulfment. Further, we demonstrate that mitochondria are ejected from intact neutrophils and engage bacteria during vital NETosis. Inhibition of the mitochondrial electron transport chain at Complex III, but not Complex I, attenuates S. aureus killing by 50 ± 7%, comparable to the NADPH oxidase inhibitor apocynin. Similarly, mitochondrial ROS scavenging using MitoTEMPO attenuates bacterial killing 112 ± 60% versus vehicle control. Antimycin A treatment also reduces mitochondrial ROS production by 50 ± 12% and NETosis by 53 ± 5%. CONCLUSIONS: We identify a previously unrecognized role for mitochondria in human neutrophils in the killing of S. aureus. Inhibition of electron transport chain Complex III significantly impairs antimicrobial activity. This is the first demonstration that vital NETosis, an early event in the antimicrobial response, occurring within 5 min of bacterial exposure, depends on the function of mitochondrial Complex III. Mitochondria join NADPH oxidase as bactericidal ROS generators that mediate the bactericidal activities of human neutrophils.


Subject(s)
Neutrophils , Staphylococcus aureus , Female , Humans , Male , Mitochondria/metabolism , NADPH Oxidases/metabolism , Neutrophils/metabolism , Phagocytosis , Reactive Oxygen Species/metabolism , Staphylococcus aureus/metabolism
3.
J Clin Invest ; 129(11): 4643-4656, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31545300

ABSTRACT

Essentially all Staphylococcus aureus (S. aureus) bacteria that gain access to the circulation are plucked out of the bloodstream by the intravascular macrophages of the liver - the Kupffer cells. It is also thought that these bacteria are disseminated via the bloodstream to other organs. Our data show that S. aureus inside Kupffer cells grew and escaped across the mesothelium into the peritoneal cavity and immediately infected GATA-binding factor 6-positive (GATA6+) peritoneal cavity macrophages. These macrophages provided a haven for S. aureus, thereby delaying the neutrophilic response in the peritoneum by 48 hours and allowing dissemination to various peritoneal and retroperitoneal organs including the kidneys. In mice deficient in GATA6+ peritoneal macrophages, neutrophils infiltrated more robustly and reduced S. aureus dissemination. Antibiotics administered i.v. did not prevent dissemination into the peritoneum or to the kidneys, whereas peritoneal administration of vancomycin (particularly liposomal vancomycin with optimized intracellular penetrance capacity) reduced kidney infection and mortality, even when administered 24 hours after infection. These data indicate that GATA6+ macrophages within the peritoneal cavity are a conduit of dissemination for i.v. S. aureus, and changing the route of antibiotic delivery could provide a more effective treatment for patients with peritonitis-associated bacterial sepsis.


Subject(s)
GATA6 Transcription Factor/immunology , Macrophages, Peritoneal/immunology , Peritonitis/immunology , Sepsis/immunology , Staphylococcal Infections/immunology , Staphylococcus aureus/immunology , Animals , Female , Macrophages, Peritoneal/microbiology , Macrophages, Peritoneal/pathology , Male , Mice , Peritonitis/microbiology , Peritonitis/pathology , Sepsis/microbiology , Sepsis/pathology , Staphylococcal Infections/drug therapy , Staphylococcal Infections/pathology , Vancomycin/pharmacology
4.
J Clin Invest ; 128(7): 2894-2913, 2018 07 02.
Article in English | MEDLINE | ID: mdl-29863495

ABSTRACT

Radiographic contrast agents cause acute kidney injury (AKI), yet the underlying pathogenesis is poorly understood. Nod-like receptor pyrin containing 3-deficient (Nlrp3-deficient) mice displayed reduced epithelial cell injury and inflammation in the kidney in a model of contrast-induced AKI (CI-AKI). Unexpectedly, contrast agents directly induced tubular epithelial cell death in vitro that was not dependent on Nlrp3. Rather, contrast agents activated the canonical Nlrp3 inflammasome in macrophages. Intravital microscopy revealed diatrizoate (DTA) uptake within minutes in perivascular CX3CR1+ resident phagocytes in the kidney. Following rapid filtration into the tubular luminal space, DTA was reabsorbed and concentrated in tubular epithelial cells via the brush border enzyme dipeptidase-1 in volume-depleted but not euvolemic mice. LysM-GFP+ macrophages recruited to the kidney interstitial space ingested contrast material transported from the urine via direct interactions with tubules. CI-AKI was dependent on resident renal phagocytes, IL-1, leukocyte recruitment, and dipeptidase-1. Levels of the inflammasome-related urinary biomarkers IL-18 and caspase-1 were increased immediately following contrast administration in patients undergoing coronary angiography, consistent with the acute renal effects observed in mice. Taken together, these data show that CI-AKI is a multistep process that involves immune surveillance by resident and infiltrating renal phagocytes, Nlrp3-dependent inflammation, and the tubular reabsorption of contrast via dipeptidase-1.


Subject(s)
Acute Kidney Injury/etiology , Contrast Media/adverse effects , Dipeptidases/metabolism , Immunologic Surveillance , Kidney/enzymology , Kidney/immunology , Acute Kidney Injury/immunology , Acute Kidney Injury/metabolism , Animals , Contrast Media/pharmacokinetics , Disease Models, Animal , GPI-Linked Proteins/metabolism , Humans , Inflammasomes/drug effects , Inflammasomes/immunology , Inflammasomes/metabolism , Kidney/drug effects , Leukocytes/immunology , Leukocytes/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , NLR Family, Pyrin Domain-Containing 3 Protein/deficiency , NLR Family, Pyrin Domain-Containing 3 Protein/genetics , NLR Family, Pyrin Domain-Containing 3 Protein/immunology , Phagocytes/immunology , Phagocytes/metabolism
5.
J Clin Invest ; 127(6): 2249-2261, 2017 Jun 01.
Article in English | MEDLINE | ID: mdl-28463232

ABSTRACT

Pseudomonas aeruginosa is a major cause of severe infections that lead to bacteremia and high patient mortality. P. aeruginosa has evolved numerous evasion and subversion mechanisms that work in concert to overcome immune recognition and effector functions in hospitalized and immunosuppressed individuals. Here, we have used multilaser spinning-disk intravital microscopy to monitor the blood-borne stage in a murine bacteremic model of P. aeruginosa infection. P. aeruginosa adhered avidly to lung vasculature, where patrolling neutrophils and other immune cells were virtually blind to the pathogen's presence. This cloaking phenomenon was attributed to expression of Psl exopolysaccharide. Although an anti-Psl mAb activated complement and enhanced neutrophil recognition of P. aeruginosa, neutrophil-mediated clearance of the pathogen was suboptimal owing to a second subversion mechanism, namely the type 3 secretion (T3S) injectisome. Indeed, T3S prevented phagosome acidification and resisted killing inside these compartments. Antibody-mediated inhibition of the T3S protein PcrV did not enhance bacterial phagocytosis but did enhance killing of the few bacteria ingested by neutrophils. A bispecific mAb targeting both Psl and PcrV enhanced neutrophil uptake of P. aeruginosa and also greatly increased inhibition of T3S function, allowing for phagosome acidification and bacterial killing. These data highlight the need to block multiple evasion and subversion mechanisms in tandem to kill P. aeruginosa.


Subject(s)
Anti-Bacterial Agents/pharmacology , Antibodies, Monoclonal/pharmacology , Pseudomonas Infections/microbiology , Pseudomonas aeruginosa/immunology , Animals , Antibodies, Bispecific , Antigens, Bacterial/immunology , Bacterial Load , Bacterial Proteins/immunology , Bacterial Toxins/immunology , Complement System Proteins/metabolism , Drug Evaluation, Preclinical , Female , Kupffer Cells/microbiology , Lung/blood supply , Lung/microbiology , Male , Mice, 129 Strain , Mice, Inbred C57BL , Microvessels/microbiology , Neutrophils/immunology , Neutrophils/microbiology , Phagocytosis , Pore Forming Cytotoxic Proteins/immunology , Pseudomonas Infections/immunology , Receptors, Fc/metabolism
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