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Charavaryamath, C.

Publications and source records attributed to Charavaryamath, C..

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Organic dust induced mitochondrial dysfunction could be targeted via cGAS-STING or mitochondrial NOX-2 inhibition

ABSTRACTOrganic dust (OD) exposure in animal production industries poses serious respiratory and other health risks. OD consists of microbial products and particulate matter and OD exposure induced respiratory inflammation is under intense investigation. However, the effect of OD exposure on brain largely remains unknown. Recently, we have shown that OD exposure of brain microglial cells induces an inflammatory phenotype with the release of mitochondrial DNA (mt-DNA). Therefore, we tested a hypothesis that OD-exposure induced secreted mt-DNA signaling drives the inflammation. OD samples were collected from commercial swine operations and a filter sterilized OD extract (ODE) was prepared. Mouse (C57BL/6) microglial cell line was treated with medium or ODE (5%) for 48 hours along with either PBS or mitoapocynin (MA, 10 μM, NOX-2 inhibitor). Microglia treated with control or anti-STING siRNA were exposed to medium or ODE. Next, mouse (C57BL/6) pups were euthanized under an approved protocol, organotypic brain slice cultures (BSCs) were prepared and exposed to medium or ODE with or without MA treatment daily for five days. Culture supernatant, cell pellets and mt-free cytosolic fractions were processed to quantify mt-superoxide, mt-DNA, cytochrome C, TFAM, mitochondrial stress markers and mt-DNA induced signaling via cGAS-STING and TLR9. Data were analyzed using one-way ANOVA and post-hoc tests. A p value of ≤ 0.05 was considered significant. ODE exposure increased the mt-superoxide formation andMA treatment decreased the ODE-induced mt-DNA release into cytosol. ODE exposure increased the cytochrome C and TFAM levels. ODE increased MFN1/2 and PINK1 but not DRP1 and MA treatment decreased the MFN2 expression. MA treatment decreased the ODE-exposure induced mt-DNA signaling via cGAS-STING and TLR9. Anti-STING siRNA decreased the ODE-induced increase in IRF3, IFN-β and Iba1 expression. In BSCs, MA-treatment decreased the ODE induced TNF-α, IL-6 and MFN1. Taken together, OD exposure induced mt-DNA signaling could be curtailed through mitochondrial NOX-2 inhibition or STING suppression to reduce neuroinflammation.Competing Interest StatementAGK has an equity interest in PK Biosciences Corporation located in Ames, IA. The terms of this arrangement have been reviewed and approved by Iowa State University per its conflict of interest policies. All other authors have declared no potential conflicts of interest.View Full Text

cell biology

Organic Dust Exposure Induces Stress Response and Mitochondrial Dysfunction in Monocytic Cells

Exposure to airborne organic dust (OD), rich in microbial pathogen-associated molecular patterns, has been shown to induce inflammatory responses in the lung resulting in changes in airway structure and function. A common manifestation in lung inflammation is the occurrence of altered mitochondrial structure and bioenergetics, consequently regulating mitochondrial ROS (mROS) and creating a vicious cycle of mitochondrial dysfunction.The role of mitochondrial dysfunction in airway diseases such as COPD and asthma is well known. However, whether OD exposure induces mitochondrial dysfunction largely remains unknown. Therefore, in this study, we tested a hypothesis that OD exposure induces mitochondrial stress using a human monocytic cell line (THP-1). We examined the mechanisms of organic dust extract (ODE) exposure-induced mitochondrial structural and functional changes in THP-1 cells.In addition, the effect of co-exposure to ethyl pyruvate (EP), a known anti-inflammatory agent, or mitoapocynin (MA), a mitochondria targeting NOX2 inhibitor was examined. Transmission electron microscopy images showed significant changes in cellular and organelle morphology upon ODE exposure. ODE exposure with and without EP co-treatment increased the mtDNA leakage into the cytosol. Next, ODE exposure increased the PINK1 and Parkin expression, cytoplasmic cytochrome c levels and reduced mitochondrial mass and cell viability, indicating mitophagy. MA treatment was partially protective by decreasing Parkin expression, mtDNA and cytochrome c release and increasing cell viability.Competing Interest StatementAGK has an equity interest in PK Biosciences Corporation located in Ames, IA. The terms of this arrangement have been reviewed and approved by Iowa State University per its conflict of interest policies. All other authors have declared no potential conflicts of interest. AbbreviationsODOrganic DustODEOrgaic Dust ExtractEPEthyl PyruvateMAMitoapocyninLPSLipopolysaccharidePGNPeptidoglycanPAMPsPathogen Associated Molecular PatternsCOPDChronic Obstructive Pulmonary DiseaseAHRAirway hyperresponsivenessROSReactive Oxygen SpeciesRNSReactive Nitrogen SpeciesATPAdenosine TriphosphateOXPHOSOxidative PhosphorylationHMGB1High Mobility Group Box 1STATSignal Transducer and Activator of TranscriptionTPPTriphenylphosphoniumMPTP1-Methyl-4-Phenyl-1,2,3,6-TetrahydropyridineiNOSinducible Nitric Oxide SynthaseNOXNADPH OxidaseMTT3-[4,5-dimethylthiazole-2-yl]-2,5-diphenyltetrazolium bromideTEMTransmission Electron MicroscopyDMSODimethyl SufoxidemtND1mitochondrial NADH dehydrogenase 1MFNMitofusinOPA1Optic Atrophy 1DRP1Dynamin-related protein 1EREndoplasmic ReticulumPINK1PTEN- induced kinase 1BNIP3Bcl-2 Homology 3 (BH3)-onlyMPTMitochondrial Permeability TransitionCOX4i2Cytochrome C Oxidase subunit 4 isoform 2ETCElectron Transport ChainSOD2Superoxide Dismutase 2mtDAMPsmitochondrial Damage Associated Molecular PattersmtTFAmitochondrial Transcription Factor AMGCMultinucleated Giant CellFBRForeign Body ReactionsOMMOuter Mitochondrial MembraneIMMInner Mitochondrial MembraneIMSIntermembrane SpaceILInterleukincGAScyclic GMP-AMP synthaseTLRToll-like receptorRAGEReceptor for advanced glycation end productsVDACVoltage-dependent anion channelView Full Text

cell biology