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      The mitochondrial redistribution of eNOS is involved in lipopolysaccharide induced inflammasome activation during acute lung injury

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          Abstract

          Acute lung injury (ALI) is a devastating clinical syndrome with no effective therapies. Inflammasome activation has been reported to play a critical role in the initiation and progression of ALI. The molecular mechanisms involved in regulating the activation of inflammasome in ALI remains unresolved, although increases in mitochondrial derived reactive oxygen species (mito-ROS) are involved. Our previous work has shown that the mitochondrial redistribution of uncoupled eNOS impairs mitochondrial bioenergetics and increases mito-ROS generation. Thus, the focus of our study was to determine if lipopolysaccharide (LPS)-mediated inflammasome activation involves the mitochondrial redistribution of uncoupled eNOS. Our data show that the increase in mito-ROS involved in LPS-mediated inflammasome activation is associated with the disruption of mitochondrial bioenergetics in human lung microvascular endothelial cells (HLMVEC) and the mitochondrial redistribution of eNOS. These effects are dependent on RhoA-ROCK signaling and are mediated via increased phosphorylation of eNOS at Threonine (T)-495. A derivative of the mitochondrial targeted Szeto‐Schiller peptide (SSP) attached to the antioxidant Tiron (T-SSP), significantly attenuated LPS-mediated mito-ROS generation and inflammasome activation in HLMVEC. Further, T-SSP attenuated mitochondrial superoxide production in a mouse model of sepsis induced ALI. This in turn significantly reduced the inflammatory response and attenuated lung injury. Thus, our findings show that the mitochondrial redistribution of uncoupled eNOS is intimately involved in the activation of the inflammatory response in ALI and implicate attenuating mito-ROS as a therapeutic strategy in humans.

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          Highlights

          • The mitochondrial redistribution of uncoupled eNOS is involved in LPS-mediated activation of the NLRP3 inflammasome.

          • Nitration-mediated activation of RhoA is involved in the activation of NF-κb signaling during sepsis.

          • Blocking RhoA nitration attenuates the increase in mitochondrial ROS required for NLRP3 inflammasome activation.

          • A mitochondrial targeted antioxidant reduces NLRP3 inflammasome activation and sepsis mediated lung injury.

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          Most cited references101

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          The inflammasomes.

          Inflammasomes are molecular platforms activated upon cellular infection or stress that trigger the maturation of proinflammatory cytokines such as interleukin-1beta to engage innate immune defenses. Strong associations between dysregulated inflammasome activity and human heritable and acquired inflammatory diseases highlight the importance this pathway in tailoring immune responses. Here, we comprehensively review mechanisms directing normal inflammasome function and its dysregulation in disease. Agonists and activation mechanisms of the NLRP1, NLRP3, IPAF, and AIM2 inflammasomes are discussed. Regulatory mechanisms that potentiate or limit inflammasome activation are examined, as well as emerging links between the inflammasome and pyroptosis and autophagy. 2010 Elsevier Inc. All rights reserved.
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            The NLRP3 Inflammasome: An Overview of Mechanisms of Activation and Regulation

            The NLRP3 inflammasome is a critical component of the innate immune system that mediates caspase-1 activation and the secretion of proinflammatory cytokines IL-1β/IL-18 in response to microbial infection and cellular damage. However, the aberrant activation of the NLRP3 inflammasome has been linked with several inflammatory disorders, which include cryopyrin-associated periodic syndromes, Alzheimer’s disease, diabetes, and atherosclerosis. The NLRP3 inflammasome is activated by diverse stimuli, and multiple molecular and cellular events, including ionic flux, mitochondrial dysfunction, and the production of reactive oxygen species, and lysosomal damage have been shown to trigger its activation. How NLRP3 responds to those signaling events and initiates the assembly of the NLRP3 inflammasome is not fully understood. In this review, we summarize our current understanding of the mechanisms of NLRP3 inflammasome activation by multiple signaling events, and its regulation by post-translational modifications and interacting partners of NLRP3.
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              The inflammasome: a molecular platform triggering activation of inflammatory caspases and processing of proIL-beta.

              Generation of Interleukin (IL)-1beta via cleavage of its proform requires the activity of caspase-1 (and caspase-11 in mice), but the mechanism involved in the activation of the proinflammatory caspases remains elusive. Here we report the identification of a caspase-activating complex that we call the inflammasome. The inflammasome comprises caspase-1, caspase-5, Pycard/Asc, and NALP1, a Pyrin domain-containing protein sharing structural homology with NODs. Using a cell-free system, we show that proinflammatory caspase activation and proIL-1beta processing is lost upon prior immunodepletion of Pycard. Moreover, expression of a dominant-negative form of Pycard in differentiated THP-1 cells blocks proIL-1beta maturation and activation of inflammatory caspases induced by LPS in vivo. Thus, the inflammasome constitutes an important arm of the innate immunity.
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                Author and article information

                Contributors
                Journal
                Redox Biol
                Redox Biol
                Redox Biology
                Elsevier
                2213-2317
                26 January 2021
                May 2021
                26 January 2021
                : 41
                : 101878
                Affiliations
                [a ]College of Veterinary Medicine, Northwest A&F University, Yangling, Shaanxi, China
                [b ]Department of Medicine, Division of Translational & Regenerative Medicine, University of Arizona, Tucson, AZ, USA
                [c ]Department of Internal Medicine, The University of Arizona Health Sciences, Phoenix, AZ, USA
                Author notes
                []Corresponding author. Division of Translational and Regenerative Medicine, Department of Medicine, The University of Arizona Health Sciences, Tucson, AZ, 85724, USA. steveblack@ 123456email.arizona.edu
                [∗∗ ]Corresponding author. College of Veterinary Medicine, Northwest A&F University, Yangling, Shaanxi, China. haiyangtang@ 123456arizona.edu
                Article
                S2213-2317(21)00026-4 101878
                10.1016/j.redox.2021.101878
                7879038
                33578126
                0b8c312d-7380-48d0-9241-edb9666f613a
                © 2021 Published by Elsevier B.V.

                This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 20 November 2020
                : 17 January 2021
                : 21 January 2021
                Categories
                Research Paper

                ali,enos uncoupling,mitochondrial ros,inflammasome activation,rhoa

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