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Role of succinate in airway epithelial cell regulation following traumatic lung injury
Madathilparambil V. Suresh, Sinan Aktay, George Yalamanchili, Sumeet Solanki, Dily Thazhath Sathyarajan, Manikanta Swamy Arnipalli, Subramaniam Pennathur, Krishnan Raghavendran
Madathilparambil V. Suresh, Sinan Aktay, George Yalamanchili, Sumeet Solanki, Dily Thazhath Sathyarajan, Manikanta Swamy Arnipalli, Subramaniam Pennathur, Krishnan Raghavendran
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Research Article Inflammation Pulmonology

Role of succinate in airway epithelial cell regulation following traumatic lung injury

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Abstract

Lung contusion and gastric aspiration (LC and GA) are major risk factors for developing acute respiratory distress following trauma. Hypoxia from lung injury is mainly regulated by hypoxia-inducible factor 1α (HIF-1α). Published data from our group indicate that HIF-1α regulation in airway epithelial cells (AEC) drives the acute inflammatory response following LC and GA. Metabolomic profiling and metabolic flux of Type II AEC following LC revealed marked increases in glycolytic and TCA intermediates in vivo and in vitro that were HIF-1α dependent. GLUT-1/4 expression was also increased in HIF-1α+/+ mice, suggesting that increased glucose entry may contribute to increased intermediates. Importantly, lactate incubation in vitro on Type II cells did not significantly increase the inflammatory byproduct IL-1β. Contrastingly, succinate had a direct proinflammatory effect on human small AEC by IL-1β generation in vitro. This effect was reversed by dimethylmalonate, suggesting an important role for succinate dehydrogenase in mediating HIF-1α effects. We confirmed the presence of the only known receptor for succinate binding, SUCNR1, on Type II AEC. These results support the hypothesis that succinate drives HIF-1α–mediated airway inflammation following LC. This is the first report to our knowledge of direct proinflammatory activation of succinate in nonimmune cells such as Type II AEC in direct lung injury models.

Authors

Madathilparambil V. Suresh, Sinan Aktay, George Yalamanchili, Sumeet Solanki, Dily Thazhath Sathyarajan, Manikanta Swamy Arnipalli, Subramaniam Pennathur, Krishnan Raghavendran

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Figure 3

HIF-1α on activating the pentose phosphate pathway following LC.

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HIF-1α on activating the pentose phosphate pathway following LC.
HIF-1α+...
HIF-1α+/+ and HIF-1α–/– mice were subjected to LC, and Type II AEC were collected (n = 4). Type II AEC extracts were subjected to liquid chromatography–MS analysis. (A–C) The pentose phosphate pathway intermediates were analyzed as follows: ribose 5-phosphate (R5P/X5P) (A), glucose 6-phosphate (G6P) (B), and guanosine diphosphate (GDP) (C). (D) The volcano plot shows the difference in metabolite levels between the HIF-1α+/+ and HIF-1α–/– groups at a specific time organized by P value. All metabolites were higher in the HIF-1α+/+ group than in the HIF-1α–/– group. HIF-1α+/+ and HIF-1α–/– mice were subjected to LC and Type II AEC collected at 24 hours (n = 4). *P < 0.05, **P < 0.01, ***P < 0.001, and ****P < 0.0001. The statistical significance of data was analyzed using 2-way ANOVA with Tukey’s multiple-comparison tests.

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