Laboratorio de Investigación en Nutrición y Actividad Física (LABINAF), Instituto de Nutrición y Tecnología de Los Alimentos (INTA), Universidad de Chile, Santiago, 7830490, Chile.
Laboratory for Research in Functional Nutrition, Instituto de Nutrición y Tecnología de Los Alimentos (INTA), Universidad de Chile, Santiago, 7830490, Chile.
Food Chem Toxicol. 2022 Jul;165:113083. doi: 10.1016/j.fct.2022.113083. Epub 2022 May 13.
Hydrogen sulfide (H2S) has been known for its toxicity. However, recent studies have focused on the mechanisms involved in endogenous production and function. To date, the H2S role in insulin signaling and glucose homeostasis is unclear. This uncertainty is even more evident in skeletal muscle, a physiological niche highly relevant for regulating glycemia in response to insulin. This study aimed to investigate the role of HS on insulin signaling and glucose uptake in the L6 skeletal muscle cell line. We evaluated the endogenous synthesis with the fluorescent dye, 7-azido-4-methyl coumarin (7-AzMC). Glucose restriction-induced an increase in the endogenous levels of H2S, likely through stimulation of cystathionine γ-lyase activity, as its specific inhibitor, PAG (5 mM) prevented this increase, and mRNA levels of CSE decreased with glucose and amino acid restriction. Exogenous HS reduced insulin-induced glucose uptake at 0.5 up to 24 h, an effect dissociated from the level of Akt phosphorylation. Our results show that glucose restriction induces endogenous production of H2S via CSE. In addition, H2S disrupts insulin-induced glucose uptake independent of the Akt pathway. These results suggest that H2S antagonism over insulin-induced glucose uptake could help maintain the plasmatic glucose levels in conditions that provoke hypoglycemia, which could serve as an H2S-regulated mechanism for maintaining glucose plasmatic levels through the inhibition of the skeletal muscle insulin-depended glucose uptake.
硫化氢(H2S)一直以来都因其毒性而为人所知。然而,最近的研究重点则放在了内源性产生和功能的相关机制上。截至目前,H2S 在胰岛素信号和葡萄糖稳态中的作用尚不清楚。这种不确定性在骨骼肌中更为明显,因为骨骼肌在生理上与胰岛素调节血糖密切相关。本研究旨在探究 H2S 对 L6 骨骼肌细胞系中胰岛素信号和葡萄糖摄取的作用。我们用荧光染料 7-叠氮-4-甲基香豆素(7-AzMC)评估了内源性合成情况。葡萄糖限制会引起内源性 H2S 水平升高,这可能是通过刺激胱硫醚γ-裂解酶活性实现的,因为其特异性抑制剂 PAG(5 mM)可阻止这种升高,而且 CSE 的 mRNA 水平随葡萄糖和氨基酸限制而降低。外源性 H2S 可降低胰岛素诱导的 0.5 至 24 小时的葡萄糖摄取,这一效应与 Akt 磷酸化水平无关。我们的研究结果表明,葡萄糖限制通过 CSE 诱导内源性 H2S 产生。此外,H2S 可破坏胰岛素诱导的葡萄糖摄取,而不依赖 Akt 途径。这些结果表明,H2S 对胰岛素诱导的葡萄糖摄取的拮抗作用有助于在引起低血糖的情况下维持血糖水平,这可能是一种通过抑制骨骼肌胰岛素依赖的葡萄糖摄取来维持血糖水平的 H2S 调节机制。