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1.
Commun Biol ; 7(1): 699, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38849594

ABSTRACT

Caspase-4 (CASP4) is a member of the inflammatory caspase subfamily and promotes inflammation. Here, we report that CASP4 in lung adenocarcinoma cells contributes to both tumor progression via angiogenesis and tumor hyperkinesis and tumor cell killing in response to high interferon (IFN)-γ levels. We observe that elevated CASP4 expression in the primary tumor is associated with cancer progression in patients with lung adenocarcinoma. Further, CASP4 knockout attenuates tumor angiogenesis and metastasis in subcutaneous tumor mouse models. CASP4 enhances the expression of genes associated with angiogenesis and cell migration in lung adenocarcinoma cell lines through nuclear factor kappa-light chain-enhancer of activated B cell signaling without stimulation by lipopolysaccharide or tumor necrosis factor. CASP4 is induced by endoplasmic reticulum stress or IFN-γ via signal transducer and activator of transcription 1. Most notably, lung adenocarcinoma cells with high CASP4 expression are more prone to IFN-γ-induced pyroptosis than those with low CASP4 expression. Our findings indicate that the CASP4 level in primary lung adenocarcinoma can predict metastasis and responsiveness to high-dose IFN-γ therapy due to cancer cell pyroptosis.


Subject(s)
Adenocarcinoma of Lung , Caspases, Initiator , Interferon-gamma , Lung Neoplasms , Pyroptosis , Adenocarcinoma of Lung/genetics , Adenocarcinoma of Lung/pathology , Adenocarcinoma of Lung/metabolism , Animals , Interferon-gamma/metabolism , Interferon-gamma/pharmacology , Interferon-gamma/genetics , Humans , Lung Neoplasms/genetics , Lung Neoplasms/pathology , Lung Neoplasms/metabolism , Mice , Caspases, Initiator/metabolism , Caspases, Initiator/genetics , Cell Line, Tumor , Neoplasm Metastasis , Gene Expression Regulation, Neoplastic
2.
Biomolecules ; 14(5)2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38785927

ABSTRACT

Caspase-5 is a protease that induces inflammation in response to lipopolysaccharide (LPS), a component of the cell envelope of Gram-negative bacteria. The expression level of the CASP5 gene is very low in the basal state, but strongly increases in the presence of LPS. Intracellular LPS binds to the caspase activation and recruitment domain (CARD) of caspase-5, leading to the formation of a non-canonical inflammasome. Subsequently, the catalytic domain of caspase-5 cleaves gasdermin D and thereby facilitates the formation of cell membrane pores through which pro-inflammatory cytokines of the interleukin-1 family are released. Caspase-4 is also able to form a non-canonical inflammasome upon binding to LPS, but its expression is less dependent on LPS than the expression of caspase-5. Caspase-4 and caspase-5 have evolved via the duplication of a single ancestral gene in a subclade of primates, including humans. Notably, the main biomedical model species, the mouse, has only one ortholog, namely caspase-11. Here, we review the structural features and the mechanisms of regulation that are important for the pro-inflammatory roles of caspase-5. We summarize the interspecies differences and the evolution of pro-inflammatory caspases in mammals and discuss the potential roles of caspase-5 in the defense against Gram-negative bacteria and in sepsis.


Subject(s)
Caspases , Inflammation , Humans , Animals , Inflammation/metabolism , Inflammation/genetics , Caspases/metabolism , Caspases/genetics , Caspases/chemistry , Evolution, Molecular , Lipopolysaccharides , Caspases, Initiator/metabolism , Caspases, Initiator/genetics , Inflammasomes/metabolism , Gram-Negative Bacteria
3.
Genes (Basel) ; 15(5)2024 04 25.
Article in English | MEDLINE | ID: mdl-38790170

ABSTRACT

Caspase (CASP) is a protease family that plays a vital role in apoptosis, development, and immune response. Herein, we reported the identification and characterization of two CASPs, AjCASPX1 and AjCASPX2, from the sea cucumber Apostichopus japonicus, an important aquaculture species. AjCASPX1/2 share similar domain organizations with the vertebrate initiator caspases CASP2/9, including the CARD domain and the p20/p10 subunits with conserved functional motifs. However, compared with human CASP2/9, AjCASPX1/2 possess unique structural features in the linker region between p20 and p10. AjCASPX1, but not AjCASPX2, induced marked apoptosis of human cells by activating CASP3/7. The recombinant proteins of AjCASPX2 and the CARD domain of AjCASPX2 were able to bind to a wide range of bacteria, as well as bacterial cell wall components, and inhibit bacterial growth. AjCASPX1, when expressed in Escherichia coli, was able to kill the host bacteria. Under normal conditions, AjCASPX1 and AjCASPX2 expressions were most abundant in sea cucumber muscle and coelomocytes, respectively. After bacterial infection, both AjCASPX1 and AjCASPX2 expressions were significantly upregulated in sea cucumber tissues and cells. Together, these results indicated that AjCASPX1 and AjCASPX2 were initiator caspases with antimicrobial activity and likely functioned in apoptosis and immune defense against pathogen infection.


Subject(s)
Apoptosis , Stichopus , Animals , Stichopus/genetics , Stichopus/microbiology , Stichopus/immunology , Humans , Caspases, Initiator/genetics , Caspases, Initiator/metabolism , Sea Cucumbers/genetics , Phylogeny
4.
Nature ; 629(8013): 893-900, 2024 May.
Article in English | MEDLINE | ID: mdl-38632402

ABSTRACT

The blood-brain barrier (BBB) protects the central nervous system from infections or harmful substances1; its impairment can lead to or exacerbate various diseases of the central nervous system2-4. However, the mechanisms of BBB disruption during infection and inflammatory conditions5,6 remain poorly defined. Here we find that activation of the pore-forming protein GSDMD by the cytosolic lipopolysaccharide (LPS) sensor caspase-11 (refs. 7-9), but not by TLR4-induced cytokines, mediates BBB breakdown in response to circulating LPS or during LPS-induced sepsis. Mice deficient in the LBP-CD14 LPS transfer and internalization pathway10-12 resist BBB disruption. Single-cell RNA-sequencing analysis reveals that brain endothelial cells (bECs), which express high levels of GSDMD, have a prominent response to circulating LPS. LPS acting on bECs primes Casp11 and Cd14 expression and induces GSDMD-mediated plasma membrane permeabilization and pyroptosis in vitro and in mice. Electron microscopy shows that this features ultrastructural changes in the disrupted BBB, including pyroptotic endothelia, abnormal appearance of tight junctions and vasculature detachment from the basement membrane. Comprehensive mouse genetic analyses, combined with a bEC-targeting adeno-associated virus system, establish that GSDMD activation in bECs underlies BBB disruption by LPS. Delivery of active GSDMD into bECs bypasses LPS stimulation and opens the BBB. In CASP4-humanized mice, Gram-negative Klebsiella pneumoniae infection disrupts the BBB; this is blocked by expression of a GSDMD-neutralizing nanobody in bECs. Our findings outline a mechanism for inflammatory BBB breakdown, and suggest potential therapies for diseases of the central nervous system associated with BBB impairment.


Subject(s)
Blood-Brain Barrier , Brain , Endothelial Cells , Gasdermins , Inflammation , Animals , Female , Humans , Male , Mice , Basement Membrane/metabolism , Basement Membrane/ultrastructure , Blood-Brain Barrier/metabolism , Blood-Brain Barrier/pathology , Blood-Brain Barrier/ultrastructure , Blood-Brain Barrier/virology , Brain/metabolism , Brain/pathology , Brain/ultrastructure , Caspases, Initiator/metabolism , Dependovirus , Endothelial Cells/metabolism , Endothelial Cells/ultrastructure , Gasdermins/antagonists & inhibitors , Gasdermins/metabolism , Inflammation/pathology , Inflammation/metabolism , Klebsiella pneumoniae/physiology , Lipopolysaccharide Receptors/metabolism , Lipopolysaccharides/blood , Lipopolysaccharides/pharmacology , Mice, Inbred C57BL , Pyroptosis , Sepsis/metabolism , Sepsis/pathology , Sepsis/microbiology , Single-Cell Analysis , Tight Junctions/metabolism , Tight Junctions/ultrastructure
5.
Immun Inflamm Dis ; 12(4): e1241, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38629728

ABSTRACT

BACKGROUND: Inflammation in adipose tissue, resulting from imbalanced caloric intake and energy expenditure, contributes to the metabolic dysregulation observed in obesity. The production of inflammatory cytokines, such as IL-1ß and IL-18, plays a key role in this process. While IL-1ß promotes insulin resistance and diabetes, IL-18 regulates energy expenditure and food intake. Previous studies have suggested that caspase-1, activated by the Nlrp3 inflammasome in response to lipid excess, mediates IL-1ß production, whereas activated by the Nlrp1b inflammasome in response to energy excess, mediates IL-18 production. However, this has not been formally tested. METHODS: Wild-type and caspase-1-deficient Balb/c mice, carrying the Nlrp1b1 allele, were fed with regular chow or a high-fat diet for twelve weeks. Food intake and mass gain were recorded weekly. At the end of the twelve weeks, glucose tolerance and insulin resistance were evaluated. Mature IL-18 protein levels and the inflammatory process in the adipose tissue were determined. Fasting lipid and cytokine levels were quantified in the sera of the different experimental groups. RESULTS: We found that IL-18 production in adipose tissue is independent of caspase-1 activity, regardless of the metabolic state, while Nlrp3-mediated IL-1ß production remains caspase-1 dependent. Additionally, caspase-1 null Balb/c mice did not develop metabolic abnormalities in response to energy excess from the high-fat diet. CONCLUSION: Our findings suggest that IL-18 production in the adipose tissue is independent of Nlrp3 inflammasome and caspase-1 activation, regardless of caloric food intake. In contrast, Nlrp3-mediated IL-1ß production is caspase-1 dependent. These results provide new insights into the mechanisms underlying cytokine production in the adipose tissue during both homeostatic conditions and metabolic stress, highlighting the distinct roles of caspase-1 and the Nlrp inflammasomes in regulating inflammatory responses.


Subject(s)
Adipose Tissue , Caspase 1 , Caspases, Initiator , Interleukin-18 , NLR Family, Pyrin Domain-Containing 3 Protein , Animals , Mice , Adipose Tissue/metabolism , Caspase 1/metabolism , Caspases/metabolism , Cytokines/metabolism , Inflammasomes/metabolism , Insulin Resistance , Interleukin-18/metabolism , Lipids , NLR Family, Pyrin Domain-Containing 3 Protein/genetics , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Caspases, Initiator/metabolism
6.
J Biol Chem ; 300(6): 107307, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38657868

ABSTRACT

African swine fever, caused by the African swine fever virus (ASFV), is a viral hemorrhagic disease that affects domestic pigs and wild boars. ASFV infection causes extensive tissue damage, and the associated mechanism is poorly understood. Pyroptosis is characterized by the activation of inflammatory caspases and pore formation in the cellular plasma membrane, resulting in the release of inflammatory cytokines and cell damage. How ASFV infection regulates pyroptosis remains unclear. Here, using siRNA assay and overexpression methods, we report that ASFV infection regulated pyroptosis by cleaving the pyroptosis execution protein gasdermin A (GSDMA). ASFV infection activated caspase-3 and caspase-4, which specifically cleaved GSDMA at D75-P76 and D241-V242 to produce GSDMA into five fragments, including GSDMA-N1-75, GSDMA-N1-241, and GSDMA-N76-241 fragments at the N-terminal end of GSDMA. Only GSDMA-N1-241, which was produced in the late stage of ASFV infection, triggered pyroptosis and inhibited ASFV replication. The fragments, GSDMA-N1-75 and GSDMA-N76-241, lose the ability to induce pyroptosis. Overall ASFV infection differentially regulates pyroptosis by GSDMA in the indicated phase, which may be conducive to its own replication. Our findings reveal a novel molecular mechanism for the regulation of pyroptosis.


Subject(s)
African Swine Fever Virus , African Swine Fever , Caspase 3 , Caspases, Initiator , Pyroptosis , African Swine Fever Virus/metabolism , Animals , African Swine Fever/metabolism , African Swine Fever/virology , African Swine Fever/pathology , Swine , Caspase 3/metabolism , Caspase 3/genetics , Caspases, Initiator/metabolism , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Intracellular Signaling Peptides and Proteins/genetics , Phosphate-Binding Proteins/metabolism , HEK293 Cells , Virus Replication
7.
Immunobiology ; 229(3): 152796, 2024 May.
Article in English | MEDLINE | ID: mdl-38484431

ABSTRACT

BACKGROUND: We have previously found that enhancer of zeste homolog 2 (EZH2) is correlated with inflammatory infiltration and mucosal cell injury in ulcerative colitis (UC). This study aims to analyze the role of X-inactive specific transcript (XIST), a possible interactive long non-coding RNA of EZH2, in UC and to explore the mechanisms. METHODS: C57BL/6N mice were treated with dextran sulfate sodium (DSS), and mouse colonic mucosal epithelial cells were treated with DSS and lipopolysaccharide (LPS) for UC modeling. The UC-related symptoms in mice, and the viability and apoptosis of mucosal epithelial cells were determined. Inflammatory injury in animal and cellular models were assessed through the levels of ACS, occludin, IL-1ß, IL-18, TNF-α, caspase-1, and caspase-11. Molecular interactions between XIST, EZH2, and GABA type A receptor-associated protein (GABARAP) were verified by immunoprecipitation assays, and their functions in inflammatory injury were determined by gain- or loss-of-function assays. RESULTS: XIST was highly expressed in DSS-treated mice and in DSS + LPS-treated mucosal epithelial cells. It recruited EZH2, which mediated gene silencing of GABARAP through H3K27me3 modification. Silencing of XIST alleviated body weight loss, colon shortening, and disease active index of mice and reduced inflammatory injuries in their colon tissues. Meanwhile, it reduced apoptosis and inflammation in mucosal epithelial cells. However, these alleviating effects were blocked by either EZH2 overexpression or GABARAP knockdown. Rescue experiments identified caspase-11 as a key effector mediating the inflammatory injury following GABARAP loss. CONCLUSION: This study suggests that the XIST-EZH2 interaction-mediated GABARAP inhibition activates caspase-11-dependent inflammatory injury in UC.


Subject(s)
Apoptosis Regulatory Proteins , Caspases, Initiator , Colitis, Ulcerative , Disease Models, Animal , Enhancer of Zeste Homolog 2 Protein , RNA, Long Noncoding , Animals , Colitis, Ulcerative/metabolism , Colitis, Ulcerative/chemically induced , RNA, Long Noncoding/genetics , Enhancer of Zeste Homolog 2 Protein/metabolism , Mice , Caspases, Initiator/metabolism , Apoptosis Regulatory Proteins/metabolism , Apoptosis Regulatory Proteins/genetics , Intestinal Mucosa/metabolism , Intestinal Mucosa/pathology , Mice, Inbred C57BL , Dextran Sulfate , Apoptosis , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Inflammation/metabolism , Humans , Male , Lipopolysaccharides , Colon/pathology , Colon/metabolism
8.
Sci Total Environ ; 926: 172036, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38554964

ABSTRACT

Fluoride, a ubiquitous environmental pollutant, poses a significant public health threat. Our previous study revealed a correlation between fluoride-induced testicular pyroptosis and male reproductive dysfunction. However, the underlying mechanism remains unclear. Wild-type and interleukin 17A knockout mice were exposed to sodium fluoride (100 mg/L) in deionized drinking water for 18 weeks. Bifidobacterium intervention (1 × 109 CFU/mL, 0.2 mL/day, administered via gavage) commenced in the 10th week. Sperm quality, testicular morphology, key pyroptosis markers, spermatogenesis key genes, IL-17A signaling pathway, and pyroptosis pathway related genes were determined. The results showed that fluoride reduced sperm quality, damaged testicular morphology, affected spermatogenesis, elevated IL-17A levels, and induced testicular pyroptosis. Bifidobacterium intervention alleviated adverse reproductive outcomes. Fluoride-activated testicular pyroptosis through both typical and atypical pathways, with IL-17A involvement. Bifidobacterium supplementation attenuated pyroptosis by downregulating IL-17A, inhibiting NLRP3 and PYRIN-mediated caspase-1 and caspase-11 dependent pathways in testis, thereby alleviating fluoride-induced male reproductive damage. In summary, this study uncovers the mechanism underlying fluorine-induced testicular pyroptosis and illustrates the novel protecting feature of Bifidobacterium against fluoride-induced harm to male reproduction, along with its potential regulatory mechanism. These results provide fresh perspectives on treating male reproductive dysfunction resulting from fluoride or other environmental toxins.


Subject(s)
Fluorides , Testis , Animals , Male , Mice , Caspase 1/metabolism , Fluorides/toxicity , Interleukin-17/metabolism , Pyroptosis/drug effects , Semen , Testis/metabolism , Caspases, Initiator/metabolism , Bifidobacterium
9.
Cell Rep ; 43(4): 114004, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38522070

ABSTRACT

During infections, host cells are exposed to pathogen-associated molecular patterns (PAMPs) and virulence factors that stimulate multiple signaling pathways that interact additively, synergistically, or antagonistically. The net effect of such higher-order interactions is a vital determinant of the outcome of host-pathogen interactions. Here, we demonstrate one such complex interplay between bacterial exotoxin- and PAMP-induced innate immune pathways. We show that two caspases activated during enterohemorrhagic Escherichia coli (EHEC) infection by lipopolysaccharide (LPS) and Shiga toxin (Stx) interact in a functionally antagonistic manner; cytosolic LPS-activated caspase-11 cleaves full-length gasdermin D (GSDMD), generating an active pore-forming N-terminal fragment (NT-GSDMD); subsequently, caspase-3 activated by EHEC Stx cleaves the caspase-11-generated NT-GSDMD to render it nonfunctional, thereby inhibiting pyroptosis and interleukin-1ß maturation. Bacteria typically subvert inflammasomes by targeting upstream components such as NLR sensors or full-length GSDMD but not active NT-GSDMD. Thus, our findings uncover a distinct immune evasion strategy where a bacterial toxin disables active NT-GSDMD by co-opting caspase-3.


Subject(s)
Caspase 3 , Gasdermins , Intracellular Signaling Peptides and Proteins , Macrophages , Phosphate-Binding Proteins , Pyroptosis , Pyroptosis/drug effects , Phosphate-Binding Proteins/metabolism , Macrophages/metabolism , Macrophages/microbiology , Intracellular Signaling Peptides and Proteins/metabolism , Caspase 3/metabolism , Humans , Animals , Mice , Apoptosis Regulatory Proteins/metabolism , Bacterial Toxins/metabolism , Caspases/metabolism , Lipopolysaccharides/pharmacology , Enterohemorrhagic Escherichia coli/metabolism , Enterohemorrhagic Escherichia coli/pathogenicity , Caspases, Initiator/metabolism , Inflammasomes/metabolism , Mice, Inbred C57BL , Escherichia coli Infections/metabolism , Escherichia coli Infections/microbiology , Escherichia coli Infections/immunology , Interleukin-1beta/metabolism
10.
Science ; 383(6686): eabm9903, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38422126

ABSTRACT

All living organisms deploy cell-autonomous defenses to combat infection. In plants and animals, large supramolecular complexes often activate immune proteins for protection. In this work, we resolved the native structure of a massive host-defense complex that polymerizes 30,000 guanylate-binding proteins (GBPs) over the surface of gram-negative bacteria inside human cells. Construction of this giant nanomachine took several minutes and remained stable for hours, required guanosine triphosphate hydrolysis, and recruited four GBPs plus caspase-4 and Gasdermin D as a cytokine and cell death immune signaling platform. Cryo-electron tomography suggests that GBP1 can adopt an extended conformation for bacterial membrane insertion to establish this platform, triggering lipopolysaccharide release that activated coassembled caspase-4. Our "open conformer" model provides a dynamic view into how the human GBP1 defense complex mobilizes innate immunity to infection.


Subject(s)
Bacteria , Bacterial Infections , Cell Membrane , GTP-Binding Proteins , Innate Immunity Recognition , Humans , Cytokines/chemistry , Electron Microscope Tomography , GTP-Binding Proteins/chemistry , Guanosine Triphosphate/chemistry , Hydrolysis , Immunity, Cellular , Cryoelectron Microscopy , Gasdermins/chemistry , Phosphate-Binding Proteins/chemistry , Protein Conformation , Cell Membrane/chemistry , Cell Membrane/immunology , Caspases, Initiator/chemistry , Bacterial Infections/immunology , Bacteria/immunology
11.
Alzheimers Res Ther ; 16(1): 29, 2024 02 08.
Article in English | MEDLINE | ID: mdl-38326859

ABSTRACT

Alzheimer's disease (AD) is the sixth leading cause of death in the USA. It is established that neuroinflammation contributes to the synaptic loss, neuronal death, and symptomatic decline of AD patients. Accumulating evidence suggests a critical role for microglia, innate immune phagocytes of the brain. For instance, microglia release pro-inflammatory products such as IL-1ß which is highly implicated in AD pathobiology. The mechanisms underlying the transition of microglia to proinflammatory promoters of AD remain largely unknown. To address this gap, we performed reduced representation bisulfite sequencing (RRBS) to profile global DNA methylation changes in human AD brains compared to no disease controls. We identified differential DNA methylation of CASPASE-4 (CASP4), which when expressed promotes the generation of IL-1ß and is predominantly expressed in immune cells. DNA upstream of the CASP4 transcription start site was hypomethylated in human AD brains, which was correlated with increased expression of CASP4. Furthermore, microglia from a mouse model of AD (5xFAD) express increased levels of CASP4 compared to wild-type (WT) mice. To study the role of CASP4 in AD, we developed a novel mouse model of AD lacking the mouse ortholog of CASP4 and CASP11, which is encoded by mouse Caspase-4 (5xFAD/Casp4-/-). The expression of CASP11 was associated with increased accumulation of pathologic protein aggregate amyloid-ß (Aß) and increased microglial production of IL-1ß in 5xFAD mice. Utilizing RNA-sequencing, we determined that CASP11 promotes unique transcriptomic phenotypes in 5xFAD mouse brains, including alterations of neuroinflammatory and chemokine signaling pathways. Notably, in vitro, CASP11 promoted generation of IL-1ß from macrophages in response to cytosolic Aß through cleavage of downstream effector Gasdermin D (GSDMD). Therefore, here we unravel the role for CASP11 and GSDMD in the generation of IL-1ß in response to Aß and the progression of pathologic inflammation in AD. Overall, our results demonstrate that overexpression of CASP4 due to differential DNA methylation in AD microglia contributes to the progression of AD pathobiology. Thus, we identify CASP4 as a potential target for immunotherapies for the treatment and prevention of AD.


Subject(s)
Alzheimer Disease , Amyloid beta-Peptides , Caspases, Initiator , Animals , Humans , Mice , Alzheimer Disease/metabolism , Alzheimer Disease/pathology , Amyloid beta-Peptides/metabolism , Disease Models, Animal , DNA Methylation , Inflammation/pathology , Mice, Transgenic , Microglia/metabolism , Caspases, Initiator/metabolism
12.
Int J Biol Sci ; 20(4): 1413-1435, 2024.
Article in English | MEDLINE | ID: mdl-38385085

ABSTRACT

Caspase-11 detection of intracellular lipopolysaccharide mediates non-canonical pyroptosis, which could result in inflammatory damage and organ lesions in various diseases such as sepsis. Our research found that lactate from the microenvironment of acetaminophen-induced acute liver injury increased Caspase-11 levels, enhanced gasdermin D activation and accelerated macrophage pyroptosis, which lead to exacerbation of liver injury. Further experiments unveiled that lactate inhibits Caspase-11 ubiquitination by reducing its binding to NEDD4, a negative regulator of Caspase-11. We also identified that lactates regulated NEDD4 K33 lactylation, which inhibits protein interactions between Caspase-11 and NEDD4. Moreover, restraining lactylation reduces non-canonical pyroptosis in macrophages and ameliorates liver injury. Our work links lactate to the exquisite regulation of the non-canonical inflammasome, and provides a basis for targeting lactylation signaling to combat Caspase-11-mediated non-canonical pyroptosis and acetaminophen-induced liver injury.


Subject(s)
Chemical and Drug Induced Liver Injury, Chronic , Pyroptosis , Humans , Acetaminophen/toxicity , Caspases, Initiator/metabolism , Caspases/metabolism , Lactic Acid
13.
Nature ; 624(7991): 451-459, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37993712

ABSTRACT

Inflammatory caspases are key enzymes in mammalian innate immunity that control the processing and release of interleukin-1 (IL-1)-family cytokines1,2. Despite the biological importance, the structural basis for inflammatory caspase-mediated cytokine processing has remained unclear. To date, catalytic cleavage of IL-1-family members, including pro-IL-1ß and pro-IL-18, has been attributed primarily to caspase-1 activities within canonical inflammasomes3. Here we demonstrate that the lipopolysaccharide receptor caspase-4 from humans and other mammalian species (except rodents) can cleave pro-IL-18 with an efficiency similar to pro-IL-1ß and pro-IL-18 cleavage by the prototypical IL-1-converting enzyme caspase-1. This ability of caspase-4 to cleave pro-IL-18, combined with its previously defined ability to cleave and activate the lytic pore-forming protein gasdermin D (GSDMD)4,5, enables human cells to bypass the need for canonical inflammasomes and caspase-1 for IL-18 release. The structure of the caspase-4-pro-IL-18 complex determined using cryogenic electron microscopy reveals that pro-lL-18 interacts with caspase-4 through two distinct interfaces: a protease exosite and an interface at the caspase-4 active site involving residues in the pro-domain of pro-IL-18, including the tetrapeptide caspase-recognition sequence6. The mechanisms revealed for cytokine substrate capture and cleavage differ from those observed for the caspase substrate GSDMD7,8. These findings provide a structural framework for the discussion of caspase activities in health and disease.


Subject(s)
Caspases, Initiator , Interleukin-18 , Interleukin-1beta , Animals , Humans , Caspase 1/metabolism , Caspases, Initiator/metabolism , Cryoelectron Microscopy , Gasdermins/metabolism , Inflammasomes/metabolism , Interleukin-18/chemistry , Interleukin-18/metabolism , Interleukin-1beta/metabolism , Lipopolysaccharides/metabolism , Protein Precursors/chemistry , Protein Precursors/metabolism , Catalytic Domain
14.
Life Sci Alliance ; 6(10)2023 10.
Article in English | MEDLINE | ID: mdl-37558421

ABSTRACT

The noncanonical inflammasome is a signalling complex critical for cell defence against cytosolic Gram-negative bacteria. A key step in the human noncanonical inflammasome pathway involves unleashing the proteolytic activity of caspase-4 within this complex. Caspase-4 induces inflammatory responses by cleaving gasdermin-D (GSDMD) to initiate pyroptosis; however, the molecular mechanisms that activate caspase-4 and govern its capacity to cleave substrates remain poorly defined. Caspase-11, the murine counterpart of caspase-4, acquires protease activity within the noncanonical inflammasome by forming a dimer that self-cleaves at D285 to cleave GSDMD. These cleavage events trigger signalling via the NLRP3-ASC-caspase-1 axis, leading to downstream cleavage of the pro-IL-1ß cytokine precursor. Here, we show that caspase-4 first dimerises then self-cleaves at two sites-D270 and D289-in the interdomain linker to acquire full proteolytic activity, cleave GSDMD, and induce cell death. Surprisingly, caspase-4 dimerisation and self-cleavage at D289 generate a caspase-4 p34/p9 protease species that directly cleaves pro-IL-1ß, resulting in its maturation and secretion independently of the NLRP3 inflammasome in primary human myeloid and epithelial cells. Our study thus elucidates the key molecular events that underpin signalling by the caspase-4 inflammasome and identifies IL-1ß as a natural substrate of caspase-4.


Subject(s)
Caspases, Initiator , Gasdermins , Inflammasomes , NLR Family, Pyrin Domain-Containing 3 Protein , Animals , Humans , Mice , Caspase 1/metabolism , Inflammasomes/metabolism , Interleukin-1beta/metabolism , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/genetics , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Phosphate-Binding Proteins/metabolism , Caspases, Initiator/metabolism , Gasdermins/metabolism
15.
Proc Natl Acad Sci U S A ; 120(15): e2218469120, 2023 04 11.
Article in English | MEDLINE | ID: mdl-37014865

ABSTRACT

Pyroptosis is an inflammatory form of cell death induced upon recognition of invading microbes. During an infection, pyroptosis is enhanced in interferon-gamma-exposed cells via the actions of members of the guanylate-binding protein (GBP) family. GBPs promote caspase-4 (CASP4) activation by enhancing its interactions with lipopolysaccharide (LPS), a component of the outer envelope of Gram-negative bacteria. Once activated, CASP4 promotes the formation of noncanonical inflammasomes, signaling platforms that mediate pyroptosis. To establish an infection, intracellular bacterial pathogens, like Shigella species, inhibit pyroptosis. The pathogenesis of Shigella is dependent on its type III secretion system, which injects ~30 effector proteins into host cells. Upon entry into host cells, Shigella are encapsulated by GBP1, followed by GBP2, GBP3, GBP4, and in some cases, CASP4. It has been proposed that the recruitment of CASP4 to bacteria leads to its activation. Here, we demonstrate that two Shigella effectors, OspC3 and IpaH9.8, cooperate to inhibit CASP4-mediated pyroptosis. We show that in the absence of OspC3, an inhibitor of CASP4, IpaH9.8 inhibits pyroptosis via its known degradation of GBPs. We find that, while some LPS is present within the host cell cytosol of epithelial cells infected with wild-type Shigella, in the absence of IpaH9.8, increased amounts are shed in a GBP1-dependent manner. Furthermore, we find that additional IpaH9.8 targets, likely GBPs, promote CASP4 activation, even in the absence of GBP1. These observations suggest that by boosting LPS release, GBP1 provides CASP4-enhanced access to cytosolic LPS, thus promoting host cell death via pyroptosis.


Subject(s)
Lipopolysaccharides , Shigella , Bacteria/metabolism , GTP-Binding Proteins/genetics , GTP-Binding Proteins/metabolism , Inflammasomes/metabolism , Lipopolysaccharides/metabolism , Pyroptosis , Shigella/metabolism , Caspases, Initiator/metabolism
16.
Proc Natl Acad Sci U S A ; 120(15): e2216028120, 2023 04 11.
Article in English | MEDLINE | ID: mdl-37023136

ABSTRACT

The gamma-interferon (IFNγ)-inducible guanylate-binding proteins (GBPs) promote host defense against gram-negative cytosolic bacteria in part through the induction of an inflammatory cell death pathway called pyroptosis. To activate pyroptosis, GBPs facilitate sensing of the gram-negative bacterial outer membrane component lipopolysaccharide (LPS) by the noncanonical caspase-4 inflammasome. There are seven human GBP paralogs, and it is unclear how each GBP contributes to LPS sensing and pyroptosis induction. GBP1 forms a multimeric microcapsule on the surface of cytosolic bacteria through direct interactions with LPS. The GBP1 microcapsule recruits caspase-4 to bacteria, a process deemed essential for caspase-4 activation. In contrast to GBP1, closely related paralog GBP2 is unable to bind bacteria on its own but requires GBP1 for direct bacterial binding. Unexpectedly, we find that GBP2 overexpression can restore gram-negative-induced pyroptosis in GBP1KO cells, without GBP2 binding to the bacterial surface. A mutant of GBP1 that lacks the triple arginine motif required for microcapsule formation also rescues pyroptosis in GBP1KO cells, showing that binding to bacteria is dispensable for GBPs to promote pyroptosis. Instead, we find that GBP2, like GBP1, directly binds and aggregates "free" LPS through protein polymerization. We demonstrate that supplementation of either recombinant polymerized GBP1 or GBP2 to an in vitro reaction is sufficient to enhance LPS-induced caspase-4 activation. This provides a revised mechanistic framework for noncanonical inflammasome activation where GBP1 or GBP2 assembles cytosol-contaminating LPS into a protein-LPS interface for caspase-4 activation as part of a coordinated host response to gram-negative bacterial infections.


Subject(s)
GTP-Binding Proteins , Lipopolysaccharides , Humans , Capsules , Carrier Proteins , GTP-Binding Proteins/genetics , GTP-Binding Proteins/metabolism , Inflammasomes/metabolism , Interferon-gamma/metabolism , Lipopolysaccharides/metabolism , Pyroptosis , Caspases, Initiator/metabolism
17.
Molecules ; 28(7)2023 Mar 23.
Article in English | MEDLINE | ID: mdl-37049646

ABSTRACT

Septic shock is defined as a subset of sepsis, which is associated with a considerably high mortality risk. The caspase-11 non-canonical inflammasome is sensed and activated by intracellular lipopolysaccharide (LPS) leading to pyroptosis, it plays a critical role in septic shock. However, there are few known drugs that can control caspase-11 non-canonical inflammasome activation. We report here that goitrin, an alkaloid from Radix Isatidis, shows protective effects in LPS-induced septic shock and significant inhibitory effect in caspase-11 non-canonical inflammasome pathway. Male C57BL/6J were injected intraperitoneally with LPS (20 mg/kg) to induce experimental septic shock. The results demonstrated that the survival rates of mice pretreated with goitrin or Toll-like receptor 4 (TLR4) inhibitor TKA-242 increased, and LPS-induced hypothermia and lung damage improved by inhibiting inflammatory response. Elucidating the detailed mechanism, we surprisingly found goitrin is really different from TAK-242, it independent of the TLR4 signal activation, but significantly inhibited the activation of caspase-11 non-canonical inflammasome, including cleaved caspase-11 and N-terminal fragment of gasdermin D (GSDMD-NT). Furthermore, with a nonlethal dose of the TLR3 agonist poly(I:C)-primed and subsequently challenged with LPS to induce caspase-11-mediated lethal septic shock, the efficacy of goitrin had been verified. Those results revealed the effect of goitrin in protective against LPS-induced septic shock via inhibiting caspase-11 non-canonical inflammasome, which provided a new therapeutic strategy for clinical treatment of septic shock.


Subject(s)
Inflammasomes , Shock, Septic , Male , Mice , Animals , Inflammasomes/metabolism , Caspases/metabolism , Shock, Septic/chemically induced , Shock, Septic/drug therapy , Shock, Septic/metabolism , Lipopolysaccharides/toxicity , Lipopolysaccharides/metabolism , Toll-Like Receptor 4/metabolism , Macrophages , Mice, Inbred C57BL , Caspases, Initiator/metabolism , Pyroptosis
18.
Int J Mol Sci ; 24(4)2023 Feb 14.
Article in English | MEDLINE | ID: mdl-36835212

ABSTRACT

To study the relationship between caspase-1/4 and reperfusion injury, we measured infarct size (IS) in isolated mouse hearts undergoing 50 min global ischemia/2 h reperfusion. Starting VRT-043198 (VRT) at reperfusion halved IS. The pan-caspase inhibitor emricasan duplicated VRT's protection. IS in caspase-1/4-knockout hearts was similarly reduced, supporting the hypothesis that caspase-1/4 was VRT's only protective target. NLRC4 inflammasomes activate caspase-1. NLRC4 knockout hearts were not protected, eliminating NLRC4 as caspase-1/4's activator. The amount of protection that could be achieved by only suppressing caspase-1/4 activity was limited. In wild-type (WT) hearts, ischemic preconditioning (IPC) was as protective as caspase-1/4 inhibitors. Combining IPC and emricasan in these hearts or preconditioning caspase-1/4-knockout hearts produced an additive IS reduction, indicating that more protection could be achieved by combining treatments. We determined when caspase-1/4 exerted its lethal injury. Starting VRT after 10 min of reperfusion in WT hearts was no longer protective, revealing that caspase-1/4 inflicted its injury within the first 10 min of reperfusion. Ca++ influx at reperfusion might activate caspase-1/4. We tested whether Ca++-dependent soluble adenylyl cyclase (AC10) could be responsible. However, IS in AC10-/- hearts was not different from that in WT control hearts. Ca++-activated calpain has been implicated in reperfusion injury. Calpain could be releasing actin-bound procaspase-1 in cardiomyocytes, which would explain why caspase-1/4-related injury is confined to early reperfusion. The calpain inhibitor calpeptin duplicated emricasan's protection. Unlike IPC, adding calpain to emricasan offered no additional protection, suggesting that caspase-1/4 and calpain may share the same protective target.


Subject(s)
Caspase 1 , Caspases, Initiator , Ischemic Preconditioning, Myocardial , Myocardial Reperfusion Injury , Animals , Mice , Calpain/metabolism , Caspase 1/metabolism , Myocardial Reperfusion Injury/enzymology , Myocardial Reperfusion Injury/prevention & control , Myocardium/enzymology , Caspases, Initiator/metabolism
19.
FASEB J ; 36(9): e22525, 2022 09.
Article in English | MEDLINE | ID: mdl-36004615

ABSTRACT

Mechanisms and consequences of gasdermin D (GSDMD) activation in cigarette smoke (CS)-associated inflammation and lung disease are unknown. GSDMD is a downstream effector of caspase-1, -8, and -4. Upon cleavage, GSDMD generates pores into cell membranes. Different degrees of GSDMD activation are associated with a range of physiological outputs ranging from cell hyperactivation to pyroptosis. We have previously reported that in human monocyte-derived macrophages CS extract (CSE) inhibits the NLRP3 inflammasome and shifts the response to lipopolysaccharide (LPS) towards the TLR4-TRIF axis leading to activation of caspase-8, which, in turn, activates caspase-1. In the present work, we investigated whether other ASC-dependent inflammasomes could be involved in caspase activation by CSE and whether caspase activation led to GSDMD cleavage and other downstream effects. Presented results demonstrate that CSE promoted ASC-independent activation of caspase-1 leading to GSDMD cleavage and increased cell permeability, in the absence of cell death. GSDMD cleavage was strongly enhanced upon stimulation with LPS+CSE, suggesting a synergistic effect between the two stimuli. Noteworthy, CSE promoted LPS internalization leading to caspase-4 activation, thus contributing to increased GSDMD cleavage. Caspase-dependent GSDMD cleavage was associated with mitochondrial superoxide generation. Increased cleaved GSDMD was found in lung macrophages of smokers compared to ex-smokers and non-smoking controls. Our findings revealed that ASC-independent activation of caspase-1, -4, and -8 and GSDMD cleavage upon exposure to CS may contribute to macrophage dysfunction and feed the chronic inflammation observed in the smokers' lung.


Subject(s)
Caspases, Initiator/metabolism , Cigarette Smoking , Inflammasomes , Phosphate-Binding Proteins/metabolism , Pore Forming Cytotoxic Proteins/metabolism , Caspase 1/metabolism , Caspases/metabolism , Humans , Inflammasomes/metabolism , Inflammation/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Lipopolysaccharides/metabolism , Lipopolysaccharides/toxicity , Macrophages/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Nicotiana/metabolism
20.
Arch Oral Biol ; 142: 105517, 2022 Oct.
Article in English | MEDLINE | ID: mdl-35988500

ABSTRACT

OBJECTIVE: This study investigated the main mechanism and role of caspase-11/4 as a pattern recognition receptor (PRR) in periodontitis through caspase-11 inhibition. DESIGN: Clinical tissue samples were collected from patients with periodontitis and healthy volunteers and evaluated through hematoxylin-eosin (HE) staining, immunohistochemical (IHC) staining, and real-time quantitative PCR (RT-qPCR). In the rat periodontitis model, both these staining procedures, RT-qPCR, and western blotting were used to evaluate the histological, mRNA, and protein levels of caspase-11, interleukin-1ß (IL-1ß), and tumor necrosis factor-α (TNF-α). In vitro, the role of caspase-11, inhibited by siRNA, was investigated by analyzing the mRNA and protein levels of IL-1ß and TNF-α in Porphylinomonas gingivalis (P. gingivalis) lipopolysaccharide (LPS)-stimulated Raw264.7 macrophages. RESULTS: Histological and molecular biological results of clinical and experimental animal periodontitis samples indicated that caspase-11/4 mRNA and protein levels significantly increased in inflammatory tissues. Caspase-11 is mainly distributed in leukocytes, which are labeled by CD45 in the submucosa. In vitro results further confirmed that the expression of caspase-11/4, IL-1ß, and TNF-α significantly increased in LPS-stimulated macrophages, and these changes were significantly attenuated by inhibiting caspase-11/4 expression. CONCLUSIONS: The function of caspase-11 in rat periodontitis models is similar to that of caspase-4 in human clinical periodontitis. IL-1ß and TNF-α release in periodontitis depends on the recognition of P. gingivalis LPS by caspase-11/4.


Subject(s)
Periodontitis , Tumor Necrosis Factor-alpha , Animals , Caspases , Caspases, Initiator , Humans , Interleukin-1beta/metabolism , Lipopolysaccharides/metabolism , Lipopolysaccharides/pharmacology , Periodontitis/metabolism , Porphyromonas gingivalis/metabolism , RNA, Messenger/metabolism , Rats , Tumor Necrosis Factor-alpha/metabolism
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