Children's Medical Center Research Institute, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Department of Pediatrics, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Nat Commun. 2023 May 5;14(1):2610. doi: 10.1038/s41467-023-37567-w.
Severe COVID-19 is characterized by an increase in the number and changes in the function of innate immune cells including neutrophils. However, it is not known how the metabolome of immune cells changes in patients with COVID-19. To address these questions, we analyzed the metabolome of neutrophils from patients with severe or mild COVID-19 and healthy controls. We identified widespread dysregulation of neutrophil metabolism with disease progression including in amino acid, redox, and central carbon metabolism. Metabolic changes in neutrophils from patients with severe COVID-19 were consistent with reduced activity of the glycolytic enzyme GAPDH. Inhibition of GAPDH blocked glycolysis and promoted pentose phosphate pathway activity but blunted the neutrophil respiratory burst. Inhibition of GAPDH was sufficient to cause neutrophil extracellular trap (NET) formation which required neutrophil elastase activity. GAPDH inhibition increased neutrophil pH, and blocking this increase prevented cell death and NET formation. These findings indicate that neutrophils in severe COVID-19 have an aberrant metabolism which can contribute to their dysfunction. Our work also shows that NET formation, a pathogenic feature of many inflammatory diseases, is actively suppressed in neutrophils by a cell-intrinsic mechanism controlled by GAPDH.
严重的 COVID-19 的特征是先天免疫细胞(包括中性粒细胞)数量增加和功能改变。然而,目前尚不清楚 COVID-19 患者免疫细胞的代谢组如何变化。为了解决这些问题,我们分析了严重或轻度 COVID-19 患者和健康对照者中性粒细胞的代谢组。我们发现,随着疾病的进展,中性粒细胞的代谢广泛失调,包括氨基酸、氧化还原和中心碳代谢。严重 COVID-19 患者中性粒细胞的代谢变化与糖酵解酶 GAPDH 活性降低一致。抑制 GAPDH 可阻断糖酵解并促进磷酸戊糖途径活性,但会减弱中性粒细胞呼吸爆发。GAPDH 的抑制足以导致中性粒细胞胞外陷阱(NET)的形成,这需要中性粒细胞弹性蛋白酶活性。GAPDH 抑制会增加中性粒细胞的 pH 值,而阻止这种增加可以防止细胞死亡和 NET 的形成。这些发现表明,严重 COVID-19 中的中性粒细胞具有异常代谢,这可能导致其功能障碍。我们的工作还表明,NET 的形成是许多炎症性疾病的一种致病特征,它被一种由 GAPDH 控制的细胞内在机制积极抑制。